Document mBXVkNno74X92D7n2prOJqXgO
SEHR _ 0800 _ 373
AR126-0962
Comte; yy By
-_ COMPOSITE ANALYTICAL LABORATORY REPORT
ON THE
Quantitative Analysis of Fluorochemicals in
Environmental Samples
LE 2 22
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_ ' REPORTLNRo.N--FWA2C4T7 9G1E,N-W022814,5G,EP WN-3012947,,E GEE0N0--01303,86GEN-033
ANALYTICAL STUDY INITIATION
GENO021: 08/25/99 GENO024: 10/12/99 GENO30: 12/13/99 `GENO33: 03/14/00
A@RERpRaI-ToIrNReE
0008137992
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-
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ReportNo.Gan021, SGM EGn2va 4i,roGnamen nn0ta3l0,LGabaornat0o3ry3
TABLE OF CONTENTS
Analytical Study Personnel and Contributors ----------
I,
PuTersptosaned.Control ATCLa..n...r..--..--...--..--. ------------
--ac--------------------
Sample Collection and Analysis
----------------------
SAMPIE RECEIPt ANA MBIMENANCE .......cornsnnnimsssn3
ChePmiAcOaGlUCERMAErNA.E.T.Z.A.O.Noo. cceatm----------------------------------m--rs--s----------------
MethodPrSeupmarmaatroiryesa.n.d.ANGIVICAI MEIN-- OGS ...-- .........-- ..... ---- amm-- ----) rr
Analytical EQUPMENT...............
m------r"
5
o
Data`SSuSumUmmMmaMararyIyYoo,ff QSAuMaaBmlIpiYtlSyeeSCR,OeNSAIuNOl.I.A..N.I.Y..S.E.S..R.OSRULOS.S..U..L..S.........orr........... e.-- oes sn-- s--nn
:
Data Qualty Objectivs.......
so------------
2
SB OfCOO MIUSIOE N inn
mmo
REOIONCES.....r
"
was
AEC...
----------
10
Report Signature.....
------------
LisT OF TABLES
Table 1.DeSCOfHSApMPIHES,IBYOSHUNOY rrr
mnt
Table 2.ELProcurement Information for Reference Materialns int--he--Anal--ysi--s of--Environmental 3
Table 3. Ions Monitored in the Analyses of EXIFacs of GOUNGWGIer.......... --
Table 4. RangeOf LOGS fOrS81,BY SWAY.
menses
Table 5. RaonfLOgQSfeor Liver andOther TISSbUyESASY.,..
PropoContr
000004
rages
Report No. Gen021, SGManEan, eGamn a30,LGabeornat0o3ry3
ANALYTICAL STUDY PERSONNEL AND CONTRIBUTORS
Analytical Chemistry Laboratories 33MM EEnnvviirroonnmmeennttaall TLaebcohrnaotolroyg.y and Safety Services (ETASS) F2i3or.i0n0e Analytical Chemisiry Team (FACT) 9St3.5PBauuls,hMANve5n5u1e06
KHrairsolHdanJsoehnn,soPnh,.DA.nalPyAtiIcal Chemist LMiasrakA.ElClelfesmoen,n,AnAanlayltyitciaclalChCehmeimsitst
Sponsor
:
mETass
.
BStu.ilPdaiunlg, 2M3N-0559133
Dale Bacon, Sponsor Representative
000005
Page 10110
Report. Gencar, GMoenonstSeonninLaSboonrisnady
INTRODUCTION
Purpose
T3thuMedseptsuudraipreoessGeteiosnfs-uh0ei2ss1a,cmopGmelpne-sa0sc2i4at,ercGeetpneo-r0rt3so0L,moafpinrsdho,vGibednre.s0a,3s3m.uammAmlmlaarolyfsot,hfetahnsedamaapnmlaplehysitbiicinaaclnlsdu;adetOda.cInoJltolhheencsteeGdeifsory
ocfonMdiucchtiegdantoStsautpepUonrivsetrusdiileyshdaessiugpnpeldlbdy Oarl. sGamepyles (0 3. These analyses have oan
T3).hpetarrfguectroaoncaltyatneessuflorfonneyslaefmoidue s(tPuFdiOeSsA;weCrAeSpHer7f5l4u.c9r1o.o6c)t.anpeefsluulofronoaotceta(nPcFatOe;(CPAFSOA# o2f78P5O.A3A6-:
`CASH 3625-26-1), and perfluorohexane sulfonate (PFHS; no CASH available).
Deqvuuoaelnvi0itnatgthieaonnvala(yLrtiOicQea)lomwfelmrheoiduesi,stsvaoanmraielaybazlneea.dlyA(twisiclauhlmrdmeaastrpaeyqcutoaf0ltlhbyeootabhcjhseipceeivcveiedess,LsaOunGcdhi(bsayssusehpsee)c,iieam,nidisodfsuuee taond
"t
asptrtueadpyacroneludlmebcmtaeitror)nixiqsuppaoiksyeersoianmepdolei,ns.TsaMabomirpel2esopfpertceipiscqrudoaaplotlray.qcuToanhitetroyslaso,tbjeaednctddiavrteeascuoavnaedrlypaofr1satmbaeartsgeeerdsaonfnoarlrhyeesssufssoomf
. Znatyical studies aro oulined ater in hs report
Test and Control Article Tbapehpleroowtp,eritiantaeTr.taibcRllaeebsb1firtFoseraucaehl sssttuwudediyreesc,ocnthshoiessetcneodaiosfltvhaaerriciooulnstcotoilnssasiucsesteefdsroofbmervcaaabrubisioeusseprrsaepveaicnoiduessrsaaubncbdiiaevseerns,atveaesd icnodnitcoalteadrtviecrleyslwoewrleeveplrsovoifdeedndbyogtehneo3uMs EflnuvairroocnhmeemnitcaallsLaIbnohraetsoery.matrices, Samples of the oTbhtiasirneepdorftrdomoeDsr.noGteinsc.iude details or the collection ofthe est articles; these details should be Table 1.Descriopf Stamiploesn, byStudy
|om
|
[--r---- rman
CHaaocsSSooa,GooniSMepktarRoSveel| [FERRIER
cSoma BamnSa oo Otnt Key|
ri Ecerpaet .HHeTre SoGoaE| |,wnsmPt bien Comin Fae Sats
Abstoss veeyr, =Comarartyok,Gut
tSnESAtRgEuiD. || NPAMeTre t=Sp oinr Soeek|| S P CaptnFP ogCFopoTI eAGoi
tn
Trees Tk
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ei eSon,SeT vron
600006
Pageza1t0
Reporte. Gen021,GSoMn0E2n4v,iGonemne0n30a,aGboarnst3o3ry3
Following analysis, extracts generated from these samples have been retained in cold storage. `Sample Collection and Analysis ``TTiesasmuebsyamKuprluenstwheacrheasluanbmKiatnendatnootfheMiEcnhviigraonnmSetnattealUnLiavbeorrsiattyo.ryD-eFtlauiosrionfetAhnealsyatmipcalleCrheecmeiipsttrayre documented on the chain of custody forms located in appendices of this ropor.
SAMPLE RECEIPT AND MAINTENANCE
(`@S/a2m6p/l9e9)s,wGeerne-r0e2c4ei(v1e0d/1i1n/t9h9)e,EGnevinr-o0n3m0en(t12a/l13L/a9b8)c,oladndorGferno-z0en33on(3t/h13e/0f0o)l.lowSianmgpdlaeterse:ceGiepnt,-021 fidoelndteirfsicaarteiolno,caanteddcihnaitnheof3Mcuasrtcohdiyveisn.formation are located in the study folder for each report; the
.
tThheeqsuaalmiptyleofexptrreapcatrsatviilolnbneomlaoinngtearinafefdorindscoplredssertvoartaigoen.at the 3M Environmental Laboratory until
.
CHEMICAL CHARACTERIZATION
`PTrhoectuarregmetenatnadleyttaeislscohfartahceterreifzeerdenicnetshteasnadamrpdlsesusiendclfuodreaPnaFlOySs,isPaFreOSsAu,mmPaFrOiAze,dabnedloPwF.HS.
Procurement
re ERE| wens Table 2 Procurement Information for Reference Materials inthe Analysis of Environmental Samples
--
Lor Nuseer
Source
Gonar: L2383,
Gen026. 245;
Gen-024 3M Specialty Chemicals
`Fuclolmpclheetmeidcaatlhcihsartaicmtee.riUzpatoinoncostmupdlieetsi,oinncolfutdhinegsepusrtiutdyieasn,dastraebpoirlttyvidleltebremianracthiiovne,d hinavtehen3otMbeen Environmental Lab.
METHOD SUMMARIES
EFonlvliorwoinnmgenistaalbrLiaebfordaetsocrryi.ptiCoonpioefstohfetmheethacotdusalusmeedthdoudrisngustehidsfaonraltyhteiscealstsutduideysbayrethleoc3aMted in attachment H.
N
60606007
Page3etio
ReportNo.Gen-021,G3eMnE2n4vi,oGnemnen-t0a3l0,LaGbeonra.t0or3y3
PREPARANADATNALOYTRICYAL METHODS
+ AEnTaSl-y8s:i0s04u.s1in,g"EHxPtLrCa-cEtlioenctorfoPspFrOaSy MorasOsthSeprecFtlruoomreotcrhye"miwciatlh CsoommpeomuonddifsicfartoimonSs,erduesmcrfoirbed below.
Because possible
ttoheprmeaptarrieceesxtwrearcetesdosvtaarnidaabrlde
caunrdvess.amApllleexstirzaectesxtwreermeeleyvalliumiatteedd,
it was not versus
iunneexatcrhacttiesdsusetsaandmaprlde
cfurrovmese.aWchhesnpecsiaemptelsetesdizteo
permitted, two provide some
lmeavterlixofsepxitkreasctwieorneepfrfiecpiaernecyd
determination.
For some available
vsoalmupmleesw,alsesesxttrhaacnte1dmaLccoofrsdianmgptloe
twhaesmaevtahioladblwei.thFothretehxecseepstaimopnltehsa,t
the. the
final
`volume of extraction solvent was adjusted to match the volume of the initial sample.
`This method was used for the extraction of sera, plasma, and whole blood samples.
.
+ UETsSi-n8g:H0P0L5C.-1E,l"eAcntarloysspirsaoyf MPaFsOsSSporecOttrhoemretFrlyu"orwoicthhesmoicmael mCoodimfpiocautniodnss,indSesecrruimbeEdxtbrealcotws.
.
Because possible
the matrices weresovariable to prepare extracted standard
caunrdvess.amAplll eexstirzaectesxtwreermeeleyvalliumiatteedd,
it was not versus
oufn1e.x2tr5actoteaddjsutsatndfoarrdthceurrveemso;vaals
a result, all sample of 4/5 of the MTBE
cfornocmentthreaetxitornacst.weTrheeafdajcutsotredibs y
a
factor
unnecessary when an extracted curve is used for evaluation.
HEPTLSC--8E:l0e0c6t,r"oAsnparlayysiMsaosfsPSFpOecStroromOetlhreyr" FwliuthorsoochmeemimcoadlifCicoamtpioonus,nddsesicnriLbievderbEexltorwa.cts using
pBoescsaiubslee ttoheprmeaptarrieceesxtwrearcteesdosvtaarnidaabrlde caunrdvessa.mApllleexstirzaectesxtwreermeeleyvalliumaitteedd, viterwsauss.not
iunneexatcrhacttiesdsusetsaandmaprlde
curves. When sample size from each specie tested to
permitted, two provide some
matrix spikes were prepared level of extraction efficiency
determination.
tFhoersseosmaempslaemsp,lethse,
less than available
1 g of sample mass of tissue
(waasscaelxlterdacftoredinatchceormdeitnhgotdo)twheasmeatvhaoidla.ble.
For
`Samples of kidney, brain, egg, and muscle were extracted by this method.
+ AEnTaSl-y8s-i0s0u7s,in"gExHtrPaLcCt-iEolneocftrPoFsOprSayorMOatshserSpFelcutorroomcehtermyi"cawlitChosmopmoeunmdodsiffircoamtiLoinvse,rdfeosrcribed
below.
Because possible
ttoheprmeaptarrieceesxtwrearcetesdosvtaarnidaabrlde
caunrdvess.amAplll eexstirzaectesxtwreermeeleyvalliumiatteedd,
it was not versus
oufne1x.t2r5actoteaddjsutsatndfoarrdthceurrveemso;vaals oafr4e/su5lto,f atlhlesMamTpBlEe cfornocmentthreaetxitornacst.weTrheeadfjacutsotredibs y a factor
unnecessary when an extracted curve is used for evaluation.
dFeovreGleonp-me0n3t0,aanldl sGaemnp-l0e3s3doentlye:rmDiuneedttootchoenltaacikn ogfreeaxtceerstshatenst0.m0a1t5ergiailgfoorfmPeFtOhoSdwere.
wsiulbhjercetstpoecatntoadtdhieti4on9a9l >PF9O9Strvaenrsiiftiicoantiaonndprtohcee4ss9.9 E>ac8h0 staramnpsliteiownas.sTahnealqyuzaendtisteaptaivreatreelsyults
600008
Pagedof10
Repro. Gen021,3GMemEnsvi.roGnmoennt0a3l0.LaCon458
o3b0t%a,intehde firdeonmtietaycohf tPrFanOsiStiwoansancaolnyfsiisrmweedre(sceoemRpeafreerd.encWeh1e).nTthhoessee rseasmupltlsesagwrheeerdettohweith identity of PFOS could not be confirmed are noted in the data tabi. PInFGHeSn-w0a2s1,connoduPcFtHeSd sbtaasneddarodnwraeassaovnaaibllaeblree.teInnttihoensteismaemapnldesa, kqnuaolwtnatPiFveHdSetterarnmsiintaitonio(n39of9 > 99).
`ESnpveicirfoincmiennsttarlumLeanbtaalrcphairvaemse.ters are available in appendix IL of this report, stored in the 3M
Anavyncat EquemenT For HPLC-Electrospray Tandem Mass Spectrometry: `LAinqauliydtiCcahlrocmoaltuomng:raph: Hewlett-Packard Series 1100 Liquid Chromatograph system Column 1txem3p0ermatmurCe:183B0edteagsrieleTMs C Cycle Time: 10 minutes
:
Mobil*e p"hCaosmepcoonmpeonnAte:nt2sm:M ammonium acetate
Flow rateC:o3m0p0onpeLnmtin8: Methyl alcohol
Injection volume: 10 pL Solvent Gradient:
Time (min) %8
01
1100
55
95
[7]5
510
1
10
FMoarssDeStpeeccttiroonm:eter: Micromass API/Mass Spectrometer Quattro Ultima Triple Quadrapole
``AscyqsutiesmitoironMMiocdreo:maMssRMAP(Ire/fMearstso TSapbelcetr3o)meter Quattro Il Triple Quadrapole system
SMoofdtew:areE:lecMtarsosspLryanyx"Neg3a.t3ive
SSoouurrccee:
Block Temperature: Z-spray
125-150C
000009
Pagesot 10
ReportNo.Gen21, SGMaEnn,GeemnGa30,LGaboornst0o5r3y
Table3. ons Monitored ntheAnalysesofExtractsofGroundwater Er
|_pros | ww0 [we|
[es"Indi| cates the fwon uosedf| orquanttation
Racetfuearltaonatlhyetiacnaallyetqicuailpmmeentthosdesttianngds euqsueidpimnetnhtelporgessefnotunsdtuidny.thTerhaeswedsaettaiongrsdmetaayilshaovnetvhaeried Snoolmeadwvheartsedluyrianfgfeacctttuhaelqdautaa ycololfectthieond.atHa.owEexvaecrt,sseltitgihntgvsadriuartiinognsallinpthhaeseisnsoifrudmaetnatcsoellteicntgisonwialre recorded and presented in the appendixofthis report,
:
DATA SUMMARY, ANALYSES, AND RESULTS
Summary of Quality Control Analyses Results. + SbprrtaoacvnkidedateirandgbCueutsrteevarebsflt:eoTdvaheteractwohaeefslfii>ncei0ae.rn9rt6a2o.nfgdHeeitgaehprpmorifonpalrtoiiwaotcneu(rtvo)etfhpoeoriaanlttlas.1m/aXHiywgehhiagovhfetlebodewcecunurrvevexesclpuadinetdsto
wmeorreedtehaacnti3v0a%t.edAicfctehpetacabllceudlaatteadwcaosnceevnatlruaattioend vvaerriseudsfarosmtatnhdeartdhecourertviecaclonctoanicneinntgraattiloenasbty 5cuprovinetss.usAeldatcotieovnasluaarteeaqcucaentpittaabtlieveadnadtaarweedroecaucmceenpttaebdlei.n specific data sets. All standard CoenvteirynufiivengsamCpalleisb.ratAicocnepVtearbilfiecdaattiaoniss:bOanckaeveerdagbey,coanliebrcaatliiobnractihoenckcsheqcukaniisiaantaeldyzteodbef.or wdiatthainis3b0r%ackofettehde tbhyeoarcecteipctaalbvlaelucea,ibervaatliuoantcehdeactksl,easatserveequriyretde.n samples. All quantitative Bloafnqkuasn:titEaxttiroanct(iLoOnGb)lfaonrkas wsepreceifciocmpanlailayntte.ifInnothtiasrgsettudayn,aleyxttreawctaisondebtleacntkesdwaebroevoefttehne hliimgihter tbhyadneflaouwltc,uralvlelpaoninktss.weBreecaduesteeramnianleydtetolebveelbseilnotwhethbellairmkitaorfequusaentdittaotdieontefromritnheethe LOQ, compounds of interest. Intonelyr.naInlteSmtaalndsatranddsa:rdInrteesmpaolnssteawndaasrdrerqeusiproendsteobweaws imlonhito5re0d%ionfGtehne-t0h3e0oralnidcaGlevna-lu0e3.3 If wsearmeplreesansahlyozweedd. afntihnetdeemvailasnttaInSdarredsproensspeonwsaesthcaotnfdiervmieadt,edthmeoarnealtyhtaend1a5t0a%w,atsherespaormtpelde,s but noted in the data table.
606010
Paget 10
Repro. Genc21 aGawnEazneo,meennoi%Go0n3.
`Summary of Sample Results
GENo21:
PLiFoOnSfivwera,sHdaertbeocrteSdeailn iavtelre,asGtooznzle sIvaemrp,lMeinfrkovmetrh,eRfiovlelorwOitntgemraItvreirc.esT:urCtalelfIovemri.a Sea
Cormorant blood, Oter blood, and Caspian Seal biood
CPaFliOfSorAniwaaSsetaenLtiaotnivievleyr,idReintviefrieOdttienratlievears,tSoenaeOsttaemrpvleerf,roSmeathOetfeorllborwaiinng,maantdriOctetse:r
blood
+ CPaFliOfAornwiaasSteeantLaitiovneliyveirdeantnidfiCeadsipniaatnlSeaesatlobnleoods.ample from the following matrices:
CPaFliHfSornwiaasSteeantaLtiiovneliyveird,enGtiofzieid iivneart,lMeiasntkovneer,saRmipvleer Ofrtotmrtihveerf,olSleoawiOngttmaetriivceers.:Turtle
fiver, Cormorant bood, Caspian Seal blood, and Otter blood.
GENO:
":
PARlObaStrowsasspldaestmeac,teAdlbiadelnrtoisfsiesderina,atColeramsotroannet spalmaspmlae,fCroormmtohreafnotlboiwoiondg,mHaetrriicnegs:Gull plasma, Herring Gull blood, Bald Eagle plasma, Loon ver, Albatross iver, Brown
.
Pelican iver, Albatross kidney, Cormorant yolk. and Gul yolk.
`PCForOmSoArawntasbltoeondt,atBiavleldyEiadgenlteifpiledasimnaa,tLeoaosnt iovneer,sBarmopwlne Pfeolmictahneffivoelrl,oawinndgAmlabtartirceoss:s
iver
+ `PCormoF wraansttO ebnltoaotdi,AvAellbyatirdeonstsifiiveedr,inCaotremaosrtanotneyolska,mapnlde Gfruolmytolhke. following matrices:
+ HPeFrHiSngwaGuslltepntlaatsimvealyaniddenBtailfdieEdaignlaet plleaasstmao,neLosoanmpIlveerf,rAolmbatthreosfsolvoewri,ngBmraotwrincePse:lican
fiver, Albatross Kidney, Cormorant yolk, and Gul yolk.
+ GENO:
+ PblFooOdS, wPoalsardeBteeacrteidveirn,aMtilnekasitvoern,eNsoarmtphleemfFruorm Stehaelfiovlleorw,iMngapmatTruirctelse:iPvoel.aTruBneaariver,
GCarrepe,nFFrrooggmluisvecrl,eC,hLiankoeokWhSiatlemfiosnhveegrg,s,LBarkoewWnhiTrloeuftshgigvse,rC,aBrrpowmnusTcrloeu,t Cihviern,ooWkh.ole
`Salman muscle, Lake Whitefish muscle, and Brown Trout muscle.
+ PMiFnOkSvAerw.as tentatively dentiid in at least one sample from the following matrices:
+ PFOA was not tentatively identified in any sample analyzed.
+ PFHS was not tentatively identified in any sample analyze.
+ GENO:
+ BFSoeOlaplShliinwveavr,serCd,oetmSewocotrredadfniinsihvateLril,veeaBrs,ottToutnneNasoiasvmeepdrl,DeaofnlrdpohBimlntahicevkefrTo,aliGlloaewdnignGgeulsmlaDtIorvilecprehsi:n Mivierk, vSetrri,peBdaikal
+ PMiFnOkSlAivewr,asCotrenmtratainvtelyfidveer,ntainfddBoitntaletlNeaosstedonDeolspahmipnlveefr.rom the folowing matrices:
000011
Page7ol 10
Repo fe. Gen021, GSaMnE26n,Goann03,LGaosans0o3r%y
+ CPoFrOmAorwaanst itveenrt.atively identified in at least one sample from the following matrices: + lPivHerS, SwtraispetdenDtoaltpihveilnyfiidveenr,tiafniedd Sinwoardlfeiassht Loinveer.sample from the folowing matrices: Mink Appendices contain data summary tables.
DATA QUALITY OBJECTIVES
Ninotecgriirtcyuomfstthaencdeatsa.exiTshteeddadtuariqngutahye porbejseecnttivsetsu(dyDQthOast)wofoullldowheadvdeuraiffnegcttheed tphreesqeunatlatryeor indicated below.
Lintheaanri0.t9y8:5 Twhileh caoeflfeiacsiten5taocftidveetepromiinntastuisoinng()a loifnetahre rsetgarnedsasridoncucruvrevewawistheq1u/axlwteoigohrtgirnegater
+ tIhnestcarluimberanttioQnuacnutrivtea(taicocnepLtiambilte1sQtLa)n:daTrhdeisIdGeLfiisneedqausaatosttahnedlaorwdeswtitahcince3p0ta%bloef tshteandard in
"
wthaesorentoitcsaplecviafliuce)a.llyASdettheirsmvianleude oirs snottatuesdeffuorl einvecroynssitduedry.ation of the sample data, the 10L
.
+ cLailmiibtrsatoiofnQcuuarnvteit(adteifoinne(dLaOsG)a:sTtahnedaLrOdQwitishienqu3a0l%toofthtehelotwheesortetaicccaelptvaalbulee),staannddasrdainletahset
tthweoatmiomeusntthoefasnaamlpytleepaevaaiklaabrleea fdoertaencatleydsiisn t(hpearetixcturlaacrtliyonforbasnakmsp.leTsheexLtrOaGctemdaayccvoarrdyidnugetoto
vEaTrSi-o8u.s0i0s6s)uoerstaordealyi-sttoed-dianyTvaabrlieat4io(nsserian,tphleaasnmaal,ytaicnadl bslyosotde)m.anTdheTarbalneg5es(voferL,OkGiSdnfeoyr.
muscle, egg, and brain).
Table 4. Range of LOG for Sera, by Study
[Aver |rooGo nene0s21ms.| o[co=rirsyom. | oocm[o=trsmppmt |t[rae |
ow sont | oor pm.
Goossen | 00208 ygimL__| 006240000858 pgm
Tabl5e. RanofLgOGeS fo Liver and Other Tissues,bySty
AvaLre
[re
[=
Gen-030
[er
PFOS
Prosn
|
00348pg
oowmsus |
o0c03o4r8suo9ufgo | 0.00606-0.g06y% |0.006096c-0.10699419
[rms| ww | coos | somos| uoomums
00359pig 0.180pg/g 00180007g1/9g _| 0.00718-0.07g1i8g
NA = not applicae
600012
Pageot 10
Report Ho. Gen021, SGMenE2n4r,oGnemne0n3a0,LGaboonra0tory
tiDsuspuleiscawteerleacrceepprtoadbulceibpleretcoiwsiitohnin(e1x5tr%action): Spikes conducted on samples of control
Qu5a-l1i0tsyamCpolnetsr.oAlcRceesptpaobnlseeC:CAVcronetsipnounisneg wcaalsibwriatthiionn ve3r0if%icoaftitohne(tChCeoVr)etwiacaslavnaaluley.zeNdoevmeorrye
than 10 samples were analyzed between acceptable CCV.
+ gSrpeiaktefvaarcicaebpilttayblinesrpeickoeverercioevse:riDesu.e Ftoorthaenynugmivbeenrmoaftdriifxfe(rsepnetcmiaetarnicdessuaena)l,yzsepdi,kethere was
re3c0o%v)e;risepsikweitrheicno7v0er-i1e3s0b%etowfetehne 5e0xp-e1c5t0e%d cionndicceantterasteimoin-qiunadnitciattaetqiuvaendtiattaatifvoer tdhaattam(agtroioxd to
(ugsoeoddffoor q2u5a0l%i)t.aiSvpeipkuerrpeocsoevseroinleys.oDutuseidteo osfatmhpilseralnimgietaitnidoincsa,tematthraitxssapmipkleestduadtiaesshwoeurlednboet
cspoinkdeucsttueddiefosrsahlolumladtrbiececs.onFsiodrePreFdOfSoraqnuaallyisteast,ivseapmuprlpeosdeastaontlhya.tSiisnncoet nsoupipdoernttietdy by matrix
valelriafniacaltyisoensetxhpaetrairmeennotts swueprpeorpteerdfobrymmeadtfroirxPsFpiOkAe,StPuFdHiSes,sahnodulPdFbOeScAo,nsfiodetrheedsetoapnarloyvtiedse,
unconfirmed qualitative data only.
"
Usinteo tohfeIenxtterrancatlsSptoastn-deaxridrasc:tiToentraanhdydursoe-dpearsflaunorionotcetmaanlesstualnfdoanradtefo(rTsHaPmFpOlSe)s winaGsesnp-i0k3e0d
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aannadlyGteinca-l03s3o.unFdonresalsl sofamthpeledsatai.n tTheHsPeFsOtuSdileesv,elTsHtPhaFtOwSerleevdeeltsewremrienemdontiotboereddevtioavnetriffryotmhe
`ceoxnpfeicttmeedd,vaalnuaeslbyylmevoerles wteharne 5re0po%rtweedrbeutreaarnealnyozteedd. IinftthheerdeesvuilatnttaTblHe.PFOS levels were
+ UEsSeMSofMSco)nfainrdmalatcokryofmaetvihaobdlse:alGtievmeantitvheefsoerlaenctailvyistiys,ofntohceoannfailrymtaitcaolrytomoeltuhsoedds(wHePrLeC-used.
Detmiomnes(tmartacthieodntoosftsapnedcairfidcsittoy:wiStpheicnif3i%ci)tyawndasthdeemroenssptornasteoefdabty cleharsotomanteocghraarpahcitecrriestteinction
product ion arising from cllisions of an analyte-specic parent ion.
`mAastsriuxmisnpgiksepiskteudrieecsohvaervyesbteuedniesusfeodrmasaasnuiitnadbilceaitnodriocfatdiaotnaoqfuaelnidtoyg(esneoeuasboavnea)l.ytTehreecvoalviedriyt,y of
ths assumption has not been verified by other techniques.
STATEMENT OF CONCLUSION
qUunadnetirttahteivecoanndailtyisoinssooffathseelpercetsieonntosftuedniveisr,otnhmeenptraelsemnaciecoefs.fluorochemicals was observed in the
REFERENCES 1Q)ua"iAcacteipvteaDnecteeCrrmiitnearitaifoonroUflSturlatfroancyeluHrPeLaCH.eTrabincdideems MinaSsosirS;peLci,trLoYm.e;trCya:mpQbuealnlt,itaDtAiv;e aBenndnet, PK: Henion, J. Anal. Chem., 68 (19), 3397-3404, 1696
600013
Pagegal 10
Report No. Gen21,SGaMnE0n2v4t,oGnemann0t3l0,LaGboonrsGtoory
ATTACHMENTS
AttachmenAt: Gen-021 SeralPlasma/Blood Results
AttachmenBt: Gen-021 Liver/Miscellaneous Results
Attachment C: Gen-024 SeralPlasmalBlood Results
Attachment D: Gen-024 Liver/Miscellaneous Results
Attachment E: Gen-030 Sera/Plasma/Blood Results
Attachment F: Gen-030 Liver/Miscellaneous Results
Attachment G: Gen-033 Liver Results
+ Attachment H: Analytical Methods.
" :
Atatrachcihvems)e:ntAn|al-ytLic(aadldDiteitoanlals fbooruGnednd-o0c21u,meGnetn-a0v2ai4l,abGleen-in03t0he, 3andEGnevni-r0o3n3m.ental Lab
REPORT SIGNATURE
yA) He
KastenJ. Hansen, Ph.D., Principal Analytical Investigator /
Dale L. 8dcon, Spnsor Representative
5/10/00
Date 5 feo [nem D
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3M ENVIRONMENTAL LABORATORY
" .
METHOD
EXTRACTION OF POTASSIUM PERFLUOROOCTANESULFONATE OR OTHER FLUOROCHEMICAL COMPOUNDS FROM SERUMFOR ANALYSIS USING HPLC-
ELECTROSPRAY/MASS SPECTROMETRY
Method Number: ETS-8-4.1
`Adoption Date: 03/01/99
Author: Lisa Clemen, Glenn Langenburg. &,
Approved By:
Revision Date:
Laboratory Manager
Date
Group Leader
Date
`Technical Reviewer
Date
LO_SCOPE AND APPLICATION
11 Scope: This method is for the extraction of potassium perfluorooctanesulfonate (PFOS)
or other fluorochemical compounds from serum. 12 Applicable compounds: Fluorochemical surfactants or other fluorinated compounds.
13 Matrices: Rabbit, rat, bovine, monkey, and human serum or other fluids as designated in
the validation report.
Word 6195
ExtractionoEfTPSFeOaSlfrom Serum 000047
Page Lf 14
2.0 SUMMARY OF METHOD
2.1 This method describes the procedure for extracting potassium perfluorooctanesulfonate
(paPiFrOinSg)roeragoetnhteranfdlumoertohcyhle-mfiecrat-lbsuutryflacettahnetrs(fMrtoBmE)s.eruImn,thoirs
other fluids, using an ion
method, seven fluorochemi
c
al
s
.
`were extracted: PFOS, PFOSA, PFOSAA, EtFOSE-OH, PFOSEA, M556, and surrogate
standard (see 3.0 Definitions). An ion pairing reagent is added to the sample and the
anniatlryotgeenioenvappaoirraitsoprarutnititliodnrey.d inEtaocMhteBxEt.ractThiserMec(oBnsEtietxuttreadctinis1r.0emmoLveodf amnedthpauntolo,nttohean
filtered through a 3 ce plastic syringe attached to a 0.2 pm nylon filter into glass autovials.
22 These sample extracts are analyzed following method ETS-8-5.1 or other appropriate
`method.
3.0 DEFINITIONS
-
3.1 PFOS: perfluorooctanesulfonate (anionof potassium salt) CyF1;SO5
"
32 PFOSA: perfluorooctane sulfonylamide CiF:SO;NH;
:
33 PFOSAA: perfluorooctane sulfonylamido (ethyl)acetate CsF17SO;N(CH,CH:)CH,CO;
"34 ECiFFO1SSE0-;ONH(:CH2:(NC-He;th)yClHpe,rCfHlu,oOrHooctane sulfonamido)-cthyl alcohol
3.5 PFOSEA: perfluorooctane sulfonyl ethylamide CyF1sSO:N(CH:CHy)H
3.6 M556: CsFiiSON(H)(CH.COOH)
3.7 Surrogate standard: 1H-1H-2H-2H perfluorooctane sulfonic acid
4W 0 ARNINGSANDCAUTION 4.1 Health and safety warnings 4.1.1 Use universal precautions, especially laboratory coats, goggles, and gloves when handling animal tissue, which may contain pathogens.
S0 OIve0 meeme0 vces0000000000 5.1 There are no interferences known at this time.
6.0 EQUIPMENT
6.1 Tachceepftoalblleo.wing equipment is used while performing this method.
6.1.1 Vortex mixer, VWR, Vortex Genie 2 6.1.2 Centrifuge, Mistral 1000 or [EC 6.1.3 Shaker, Eberbach or VWR 6.1.4 Nitrogen evaporator, Organomation
Equivalent equipment is
Ext.ractionEofTSFO$S41from Serum
Page20f14
000048
6.1.5 Balance (+ 0.100 g)
7.0 SUPPLIESANDMATERIALS 71 Gloves
7.2 Eppendororf disposable pipettes
7.3 Nalgene bottles, capableofholding 250 mL and 1 L
7.4 Volumetric flasks, glass, type A
7.5 1-CHEM vials, glass, 40 mL glass
7.6 Centrifuge tubes, polypropylene, 15 mL.
7.7 Labels
7.8 Oxford Dispenser ~3.0 to 10.0 mL
7.9 Syringes, capableofmeasuring 5 uL to 50 uL.
7.10 Graduated pipettes
"
7.0L Syringes, disposable plastic, 3 cc
. 712 Syringe filters, nylon, 0.2 pm, 25 mm
713 Timer
7.14 Crimp cap autovials and caps 7.15 Crimpers
Note: Prior to using glassware and bottles, rinse 3 times with methanol and 3 times with Msielplaira-tQeTMvwiaatlser. Rinse syringes a minimumof 9 times with methanol, 3 rinses from 3
8.0 REAGENTS AND STANDARDS 81 TbeypMeilrle-QaTMgenwtagtreardaenwdatmeary, Mbeilplro-vQiTMdeodrbeyquaivMaillelnit-;QalTlOwCatePlrusuTMsedsiynsttheims method should 82 Sodium hydroxide (NaOH), J.T Baker or equivalent 83 Tetrabutylammonium hydrogen sulfate(TBA), Kodak or equivalent 84 Sodium carbonate (Na:COs), J.T. Baker or equivalent 8.5 Sodium bicarbonate (NaHCO3), IT. Baker or equivalent 86 Methyl-T-Butyl Ether, Omnisolv, glass distilled or HPLC grade 87 Methanol, Omisolv, glass distilled or HPLC grade 88 Serum or blood, frozen from supplier 89 Fluorochemical standards
8.9.1 PFOS (3M Specialty Chemical Division), molecular weight = 538 8.9.2 PFOSA (3M Specialty Chemical Division), molecular weight = 499 8.9.3 PFOSAA (3M Specialty Chemical Division), molecular weight = 585
Ex-tractionoEfTFSO8S41from Serum
Page3of 14
60U049
8.9.4 E(FOSE-OH (3M Specialty Chemical Division), molecular weight = 570 8.9.5 PFOSEA (3M Specialty Chemical Division), molecular weight = 527 8.9.6 MSS6 (3M Specialty Chemical Division), molecular weight = 557 8.9.7 CSuarFriozgSaOtseHs)tamnodlaerdc:ula4r-Hw,eipgehrtfl=uo4r2o8octane sulfonic acid (1-H, 1-H, 2-H, 2-H 8.9.8 Other fluorochemicals, as appropriate 810 Reagent preparation
NOTE: Wphreepnarparteiopna,riandgjulsatrgaecrcovrodliungmleys. than listed in reagent, standard, or surrogate
8.10.1 1100N00 smoLdibuemakheyrdrcoonxtiadieni(nNgaO5H0)0:mLWeiMiglhlaip-pQrTMoxwiamtaetre,lmyi2x0u0ntgilNaallOHso.lidPsouarreinto a.
dissolved. Store ina | L Nalgene bottle.
8.102
1 N sodium hydroxide (NaOH): N NaOH solution into a 100 mL
vDoilluumteet1r0icNflNaaskOaHnd1:d1i0l.uteMteoasvoulruem1e0umsiLngofM1il0li-
B
QTM water. Store in a 125mL Nalgene bottle.
LE "
8",+103o0f.5TMBAteitnrtoabaut1 yLlavmomlourmieutrmihcycdornotgaeinnisnuglf5a0t0e (mTLBAM)i:lliW-eQi" ghwaapteprr.oxAidmjautsetlyto16p9Hg10
NusaiOnHg,apapdrdoxsilmoawtleylybe4c4autsoe5t4hempLoHfch1a0nNgesNaabOruHptl(yW)h.ilDeialudtdeintgo vthoelluamstemwiLthofMilli-
QTM water. Storeina 1 L Nalgene bottle.
8.10.3.1
TBA requires needed using
1aNchNecakOpHrisoorluttoioena.ch
use
to
ensure
pH
=
10.
Adjust as
8.10.4 `0a.p2p5roMxismaotdeiluym26c.a5rbgoonfatseo/sdoiduimumcabribcoanrabtoena(tNeab:uCf0f5e)r (aNnda:2C1O.y0/gNaoHfCsOoyd)i:umWeigh
bicarbonate (NaHCO) into a 1 L volumetric flask and bring to volume with Milli-
QTM water. Storeina I L Nalgene bottle.
8.11 Standards preparation
8.11.1 Prepare PFOS standards for the standard curve. 8.11.2 Pflrueopraorceheotmhiecralflsutoarnodcahredmsiacraelasctcaenpdtaarbdlse, (afsorapepxraopmrpilaet,e.onMeuwlotrikcionmgposnteanntdard
s1o.l1u0tipopnmcoEnFtaOiSnEin-gO1H..0)0 ppm PFOS, 1.02 ppm PFOSA, 0.987 ppm PFOSAA, and 8.11.3 tWheeiagchtuaaplpwreoixgihmtately 100 mgof PFOS into a 100 mL volumetric flask and record
8.11.4 Bring to volume with methanol for a stock standardofapproximately 1000 ppm
(ng/mL).
8.11.5 Daiplpurtoexitmhaetsetloyck50soplpumt.ion with methanol for a working standard 1 solution of 8.11.6 aDpiplruotxe.wo5r.k0ipnpgmstandard 1 with methanol for a working standard 2 solution of
Ex-tractionoEfTPSF$O4S1from Serum
Page dof 14
000050
8.11.7
Dilute working standard approx. 0.50 ppm.
1
with
methanol
for
aworking
standard
3
solution
of
812 Surrogate stock standard preparation
8.12.1 WCieFiyg:hSaOpspHroixnitomaate5l0ym5L0-v6o0lmumgeotfriscurflraosgkaatnedstraencdoarrddth1e-Ha,ct1u-aHl, w2e-iHg,ht2-H,
8.12.2 Bring to volume with methanol for a surrogate stockof approximately 1000-1200
ppm.
8.12.3 Psrteocpkarteoaas1u0rrmoLgatveolwuomrektirnicg fsltaasnkdaarndd. brTirnagnstfoervoalpuprmoexwiimtahtemleyth1amnoLlofforsuarrogate
`working standard of 100 ppm. Record the actual volume transferred.
9.0 SAMPLE HANDLING 9.1 All samples are received frozen and must be kept frozen until the extraction is performed. 9.2 Allow samples to thaw to room temperature prior to extraction.
%
10.0 QUALITY CONTROL
, 10.1 Solvent Blanks, Method blanks and matrix blanks
10.1.1 An aliquot of 1.0 mL methanol is used as a solvent blank.
10.1.2 Eaxstmreactthotdwobla1.n0ksm. L aliquots of Milli-QTM water following this procedure and use
10.13 Emxattrraicxtbtlawnoks.1.0mSeLea1l1i.1q.u4o.tsof the serum following this procedure and use as 10.2 Matrix spikes
10.2.1
Prepare and analyze matrix spike the accuracyofthe extraction.
and
matrix
spike
duplicate
samples
to
determine
102.2
Prerceepiavreedewaicthh sepaickhe
using a sample sample set.
chosen
by
the
analyst,
usually
the
control
matrix
10.2.3 EAdxdpietcitoendalcospnickeenstrmaatiyonbsewiinlclfuadleldinatnhdemmaiyd-fraalnlgineotfhtehleowi-nritainalgecoalfitbhraetiionnitciaulrve.
calibration curve.
10.2.4 P`rmeipnairmeumonoef2mamtartirxisxpsipkiekaensdpemratbraitxchs.pike duplicateper40 samples, with a
103 Continuing calibration checks
10.3.1 Pcarleipbarraeticononctuirnvue,ing calibration check samples to ensure the accuracy of the initial
103.2 Perxeapmaprlee,,aitf aa msaimnpilmeumse,to=ne34c,onftouirnucihnegcckhseacrkepperrepgarroeudpaonfd1e0xtsraamcptleeds.. For
10.3.3 Pthreepianirteialcaccuhrvce.ontinuing calibration check from the same matrix used to prepare
Ex.tractionEofTFSOSaS1from Serum
Page sof 14
600051
10.3.4 Tcuhrevee.xpAedcdtietdiocnoanlcesnptirkaetsiomnasywiblelifnalclluwidtehditnhatthefamlidi-nrtahnegleoowf-rtahnegienoitfitalhcaliinbirtaiatlion claolwibernatdioofntchuervec.aliTbhraitsioisn nceucrevsesa(rfoyriftexhaempalnea,ly5stpmpubs--t 1qu0a0ntpiptba,terautshienrgtohnalny the. 5 ppb ~ 1000 ppb)
11.0 CALIBRATION AND STANDARDIZATION
111 Prepare matrix calibration standards
11.11 Transfer 1 mL ofserum to a 15mLcentrifuge tube.
11.1.2Ivfomlousmtesseaqmupalletvootlhuemessamaprleelvesoslutmheasn.1.D0omLn,otexetxrtarcatctstleasnsdatrhdasn w0i.t5h0mmaLtroifxmatrix.
Record each sample volume on the extraction sheet.
11.1.3
While preparing a between aliquots.
totaloftwenty
aliquots
in
15
mL
centrifuge
tubes,
mix
or
shake
11.1.4
uTsweoth1e mstLanadlairqudoctso,ncoerntortahteiroanpsparnopdrsipaitkeivnoglaummoeu,nstesrvleisatesdmiantrTiaxblbela1n,ksa.t
Typically the end of
" :
tshtiasndsaercdtsi,on,twtoo
spike, matrix
ibnldaunpklsi,caatned,
two two
msettanhdoadrdblcaunrkvs.es,
foar
total
of
eighteen
*
1115 RreafnegrestoanvdaltihdeatLiionneraerpCoarltiEbrTaSt-i8o-n4R.a0n&geE(TLSC-R8)-5fo0r-cVa-l1i,brawthiiocnhculrisvtess.the working
11.1.6 sUtsaendAatrtdsa.chmSeenetSDecatsioann1a3i.d0itnoccaallccuullaattiengactthuealcocnocnecnetnrtartaitoinosnosftofhPeFwOoSrkiinng
calibration standards.
112 Twoorkeaicnhg ssttaannddaarrdd, fbolrantkh,e ocronccoennttirnautiinogncthoecfakl,l waidtdhianpptrhoepcrailaitberaatmioonunctuorvfesurrarnoggeat5e:ppb-
1000 ppb.
11.3
Extract spiked matrix standards to establish each initial curve on
following the mass
12.6-12.16 of spectrometer.
this
method.
Use
these
standards
Ex.tractionEofTSPSR4OlS from Serum
Page of 1s
000052
Table 1
Approximate spiking amounts for standards and spikes
Using 1.0 mLofmatrix
Working standard
WL
"Approx. final conc. of
(approx. conc.
analyte in matrix
[00pm[10 1 | 00B0aSpkpm
| |
[00pm[20 |ooloppm [--sooppmTs1 oo2Sppm
| |
-
12.0PROCCEDURE
12.1 Obtain frozen samples and allow to thaw at room temperature or in a lukewarm
waterbath.
12.2 Vpoolrytperxopmyilxenfoerce1n5tsriefcuognedst,ubte.hen transfer 1.0 mL or other appropriate volume to a 15 mL. 12.3 Return unused samples to freezer after extraction amounts have been removed.
12.4 Record the initial volume on the extraction worksheet.
12.5 `Lwaobreklsthheeettufbore dwoictuhmtehnetsitnugdythneurmebmeari,nisnagmpslteepsI.D, date and analyst initials. See attached
12.6 Spike all samples, including blanks and standards, ready for extraction withsurrogate standard as described in 11.2.
12.7 LSpiinktehaetacshecmtaiotnr,ixfowritthhetchaelaipbrpartoiporniactuervaemostuanntdaorfdsst.anAdlasrodparsepdaersecrmiabterdixinsp1i1k.1e,s oarndTable continuing calibration standards.
12.8 Vortex mix the standard curve samples, matrix spike samples, and continuing calibration
samples for 15 seconds.
12.9 Check to ensure the 0.5 M TBA reagent is at pH 10. Ifnot, adjust accordingly.
12.10 To each sample, add 1 mL 0.5 MTBA and 2 mL of 0.25M sodium carbonate/sodium bicarbonate buffer.
12.11 Using an Oxford Dispenser, add 5 mL methyl-fert-butyl ether. 12.12 Cap each sample and put on the shaker at a settingof 300 rpm, for 20 minutes. 12.13 Centrifuge for 20 to 25 minutes ata setting of 3500 rpm, or until layers are well separated.
Ex.tractionoEfrPsFsOaSlfrom Serum G0VOS3 Pagel 14
12.14 Label a fresh 15 mL centrifuge tube with the same information as in 12.5
12.15 Remove 4.0 mLofthe organic layer to this clean 15 mL centrifuge tube.
12.16 Put each sample on the analytical nitrogen evaporator until dry, approximately 1 to 2 hours.
12.17 Add 1.0 mLofmethanol to each centrifuge tube usinag graduated pipette.
12.18 Vortex mix for 30 seconds.
12.19 Attach 0.2 ym nylon mesh filter to a 3 cc syringe and transfer the sample to this syringe. Filter into a 1.5 mL glass autovial or low-volume autovial when necessary.
12.20 Label the autovial with the study number, animal number and gender, sample timepoint, `matrix, final solvent, extraction date, and analyst(s) performing the extraction.
12.21 Cap and store extracts at room temperature or at approximatel4y C until analysis. 12.22 Complete the extraction worksheet, attached to this document, and tape in the study
notebook or include in study binder, as appropriate.
"
13.0 DATA ANALYSISAND CALCULATIONS
13.1 Calculations
~
13.1.1 CcaallicburlaattieonacsttuaanldacrodnsceunstirnagtitohnesfoofllPoFwOinSg,eoqruaottihone:r applicable fluorochemical, in
mL of standard x concentrationofstandard (ug /m
=
`mL of standard + mL of surrogate standard + initial matrix volume (mL)
Final Concentration (ug/mL)of PFOS in matrix
14.0 METHOD PERFORMANCE
14.1 The method detection limit (MDL) is analyte and matrix specific. Refer to MDLreport for specific MDL and limitofquantitation (LOQ) values (see Attachments B and).
14.2 Tthheeqfuoalliltoywoifntghqeualeixttyraccotnitornolansdamapnalleyssiasr.e extracted with each batchofsamples to evaluate 14.2.1 Method blanks and matrix blanks 14.2.2 Mpraetcriisxiosnpoifketahnedexmtartacrtiixons.pike duplicate samples to determine accuracy and 14.2.3 Continuing calibration check samples to determine the continued accuracyofthe
initial calibration curve. 14.3 Refer to section 14 of ETS-8-5.1 for method performance criteria.
15.0 POLLUTION PREVENTION AND WASTE MANAGEMENT
15.1 Sample waste is disposed in biohazard containers, flammable solvent waste is disposed in `high BTU containers, and used glass pipette waste is disposed in broken glass containers located in the laboratory.
Ext.raction oEfTPSF8O4S1from Serum
Pagesof 14
000054
160 Recorns 16.1 Cnootmepbloeotke otrheinecxlturdaectiinonthweor3k-srhienesttautdtyabcihneddert,o at5hiaspmperotphroida,tea.nd tape in the study
17.0 ATTACHMENTS 17.1 Attachment A, Extraction worksheet 17.2 Attachment B, MDLILOQ values and summary 17.3 Attachment C, Calibration standard concentration worksheet
18.0 Rersrences 18.1 The validation report associated with this method is ETS-8-4.0 & 5.0-V-1. 182 HPFALCTC-ME-le3c.t1r,os"pArnaaylyMsaissosfSSpeecrturmoomretOrtyh"er Fluid Extracts or Fluorochemicals using
i
19.0 AFFECTED DOCUMENTS
4 19.0 EETlSec-t8r-o5s.p1r,ay"MAanaslsysSipsecoftrSoemreturmy"or Other Fluid Extracts for Fluorochemicals using HPLC-
200 Revisions
:
RNeuvmisbieorn
Reason For Revision
ReDvaistieon
1" SSeeccttiioonn 1122..2113 AChdadnegdetdhetoshinackleurdsepseeadm.ple storage at room temperature. 04/02/99
tSheacnti1o.n01m2L..17 Final volume is 1.0 mL; not adjusted for intial volumes less
Ex.tractionoEfsPsFOaSrfrom Serum
Page gate
000055
4.12
When handling and clothing.
samples
or
solvents
wear
appropriate
protective
gloves,
eyewear,
42 Cautions: 4.2.1 Oprpeesrsautreetehxecesoeldvsen4t00pubamrp,sthbeelHoPw11a 0b0acwkilplreinsistuirateeoafut4o0m0abtairc (s5hu8t0d0owpsn).. Ifthe back 422 Do not run solvent pumps to dryness.
5.0 INTERFERENCES 5.1 Tstoormaigneiomrizaenyinptaerrtfoerfenicnesstwruhmeenntaantailoynztihnagtscaommpleess,inTceofnltoanctshwaillthnotthebesaumspeldefoorr esxatmrapclte.
6.0 EQUIPMENT
*
6.1 Emoqduiifpimcaetnitonlsisitnedtbheelroawwmdaatyabaesmmoedtihfoiedddienvioartdioenrs.to optimize the system. Document any
.
6.11 eMlieccrtoromsapsrsayQiuoantitzraotiIoIntrsiopulreceq.uadrupole Mass Spectrometer equippedwithan
6.1.2
HP1100 low pulse and autosampler
solvent
pumping
system,
solvent
degasser,
column
compartment,
7.0 SUPPLIES AND MATERIALS
7.1 Supplies
7.1.1 High purity grade air regulated to approximately 100 psi (house air system)
7.12
HPLC analytical in the raw data
column,
specifics
to
be
determined
by
the
analyst
and
documented
7.13 Capped autovials or capped 15 ml centrifuge tubes
8.0 REAGENTS AND STANDARDS 81 Reagents
8.11 Methanol, HPLC grade or equivalent
8.12 M1,iolrle-qQuiTMvawlaetnte,r a(nAdSTbeMptryopveidIe,dalblywaatMeirlluis-eQdTiOn tChiPslmuestshyosdtesmhoourlodthbeerAvTenSdMortype 8.13 Ammonium acetate, reagent grade or equivalent
8.13.1 When preparing different amounts than those listed, adjust accordingly. 8.13.2 2.0 mM ammonium acetate solution: Weigh approximately 0.300 g
a20m0m0onmiLumMialcletia-tQe.TM Pwaotuerr,inmtioxau2nt0i0l0amllLsolviodlsumareetrdiicsscoolvnetda.ineSrtcoornetaatinrionogm temperature.
Analy.sisofLivEerTESxstraac0t Using ESMS.
Page 3af10
000056
82 Standards
8.2.1
Typically prepared
dtuwroinmgetthheoedxtbrlaacntkiso,ntpwroocmeadturriex.
blanks, Refer
taondETeSi-g8h-t6e.e0n.matrix
standards
are
9.0 SAMPLE HANDLING
9.1
Fresh matrix are stored in
csatapnpdeadrdasutaorveiaplrsepoarrceadpwpietdh
each 15 ml
acnealnytsriisf.ugeExtturbaecsteundtisltaannadlayrsidss.
and
samples
9.2 Itfeamnpaelryastiusrew,illorberedferliagyereadt,edexattraacptperdoxsitmaantdealryds4anCd,suanmtiplleansamlyasyisbceasntboreepdeartforromoemd.
10.0 QuaurTy ConTroOL 10.1 Method Blanks and Matrix Blanks
10.1.1 cSaoclvhebnattbclhantkosd,emteertmhiondebcloanntkasm,iannadtimoantroirxcbarlraynokvsera.re prepared and analyzed with
"
10.1.2 Analyze a method blank and a matrix blank prior to each calibration curve.
+ 102 Matrix Spikes
10.2.1 Mreactorviexrsypeifkfeisciaernecyp.repared and analyzed to determine the matrix effect on the
10.2.2
Matrix spike duplicates are recovery for each analyte.
prepared
and
analyzed
to
measure
the
precision
and
the
10.2.3 Amnianliymzuemaoma2ftrsipxiskepsikpeearnbdatmcah.trix spike duplicate per forty samples. With a
10.2.4 Mthaetriinixtaslpickaeliabnradtmioantrciuxrvsep.ikAeddduiptliiocnaatlescpoinkceenctornacteinotnrsatwiiolnlsfamllaiynftahlelimnitdh-eralnogwe-of rangeofthe initial calibration curve.
10.3 Continuing Calibration Checks
103.1
Continuing calibration the calibration curve.
verifications are
analyzed
to
verify
the continued
accuracy
of
103.2
Analyze a per batch.
mid-range
calibration
standard
every
tenth
sample,
with
a
minimumof one
1.0 CALIBRATION AND STANDARDIZATION 11.1 TAnhaelayvzeertahgeeeoxftrtawcotesdtamnadtarridx csutravndeasrwdislprbieorpltoottaenddbfyolllionweairngreegarcehsssieotno(fys=ammpxle+bex)t,racts.
weighted 1/x, not forced through the origin, using MassLynx or other suitable software 11.2 Isfttahnedacrudrcvuerdvoe(eisfnnoetcemseseatryr)eqaunidrermeeannatlsyzpee.rform routine maintenance or reextract the
. ETSe0 AnalysisofLiver Extract Using ESMS.
000057
Page 4010
113 uFsoer tphuerplooswesenodfoafcctuhreaccayliwbhraetnioqnucanutrivteatriantghelrotwhalnevtehles ofuflalnralayntgeeo,fittmhaeystbaendnaercdescsuarrvye.to
cEaxlaimbprlaet:ionwchurevneactotnesmipsttiinnggotfotqhueansttiatnatdearadpspfrorxoimm5atpeplby t1o0 1p0p0bopfpabnarlayttheer,tgheannertahteefuall
rangeofthe curve (5 regression weighting
opfpbhitgoh
1co0n0c0enpptbr)a.tioTnhisstawnidlalrdrse.duce
inaccuracy
attributed
to
linear
12.0 PROCEDURES 12.1 Acquisition Set up
eer
12.1.1 Set up the sample list
12.1.1.1 lAeststiergnofathseamapllpehalbsettfistlaerntaimneg uwsiitnhgaMO-DAY-ast digitofyear-increasing 12.1.12 Assign a method (MS file) or acquiring 12.113 Assign an HPLC program (Inlet file) 12.1.1.4 Type in sample descriptions and vial position numbers
:
12.12 sTpoecctrreoatmeetaermehtehaodidngclsicakndonsemleectthoSdIRin(StihnegAlceqTuoinsiRteicoonrcdoinntgr)olorpaMneRl Mthe(nMumlatsisple
"
* Reaction Monitoring). Set Ionization Mode as appropriate and mass to 499 or
other appropriate masses. "A full scan is usually collected along with the SIRs. Save
acquisition method. IfMS/MS instruments are employed, additional product ion
fragmentation inforrnation may be collected. Refer to Micromass MassLynx
GUIDE TO DATA ACQUISITION for additional information and MRM.
12.1.3 Typically the analytical batch run sequence begins and ends with a setofextracted matrix standards.
12.1.4 Samples are analyzed with a continuing calibration verification injected standard after every tenth sample. Solvent blanks should be analyzed periodically to monitor possible analyte carryover and are not considered samples but may be included as such.
122 Using the Autosampler
12.2.1 Set up sample tray according to the sample lst prepared in Section 12.1.1
12.2.2
Set-up analyst
tchoensHiPd1e1r0s0a/papurtooprsiaamtpeleforratoptthiemaflolrleoswpionngsec.onRdeictoirodnsaocrtuaatlccoonnddiittiioonnsstihnethe
instrument logbook:
12.2.2.1 Sample size = 10 uL injection
12.2.2.2 Inject/sample = 1
12.2.2.3 Cycle time = 9 minutes
Analy.sisofLivEerTESx8tr7ac0t Using ESMS 00058 Page sof 10
12.2.2.4 Solvent ramp conditions
Time
20mM
Ammonium acetate
[ooomin|[TM6a 0% 0%|
[lOmin TT"7a%[60%|
[[6455mmiinn| "ooss%[ | 5 5% %||
[Zomin 1""a | 60% |
Loom --T| a0 6%%|
12.2.2.5 Press the "Start" button.
123 Instrument Set-up -
123.1 RTreifpelretQouEaTdSr-u9p-o2l4e.M0a,s"sOpSepreacttiroonmaetnedrMFaiitnttedenwaintcheoanftAhtmeoMsipchreroimcasPsreQsusuartet:ro II
.
Tonization Source," for more details.
:
12.3.2 Check the solvent level in reservoirs and refilif necessary.
hd
12.3.3
Check the tip.
thTehsetatiinplsehssousltedebl ecafplialtlwairythatnothjeaegngdeodfedtghees.prIobfet.heUtsipe iasnfeoyuenpditeocebet.o
check
unsatisfactory, disassemble the probe and replace the stainless steel capillary.
12.3.4 Tum on the nitrogen
12.3.5
Open the heaters.
tune
page.
Clicks on operate to initiate source block and desolvation
12.3.6 Open the Inlet Editor.
123.6.1 Set HPLC pump to "On"
12.3.6.2 Set the flow to 10 - 500 uL/min or as appropriate
12.3.6.3
Observe expelled
droplets coming with no nitrogen
outofthe tip ofthe leaking around the
tpirpoobfet.heApfrionbee.misRteasdhjouusltd
be the
tipofthe probe ifno mist is observed
123.64 Allow to equilibrate for approximately 10 minutes.
123.7 Tchhaenginesitnruomrednetrustoesoptthiemsiezepatrhaemreetseprosnsaet:the following settings. These settings may
12:3.7.1 Drying gas 250-400 liters/hour
12.3.7.2 ESI nebulizing gas 10-15 liters/hour
12.3.7.3 HPLC constant flow mode flow rate 10 - 500 uL/min
12.3.7.4
Pressure HPLC is
<op4e0r0atbianrg(cTohrirsecptalyr.a)meter
is
not
set,
it
is
a
guide
to
ensure
the
12.3.7.5 Source block temperature 150 12.3.7.6 Desolvation temperature 250
- ETS$70 AnalysisofLiver Extract Using ESMS.
Pages of 10
000059
12.3.8
tPraipnetd tihnetotutnhee piangset,ruwmietnht
its parameters, log.
and
store
itin
the
study
binder
with
a
copy
12.3.9 CMlaiscskLoynnxstavretrsbiuotntso,nrienfetrhetoAacpqpuriospirtiioanteCoMnatsrsoLlyPnaxneUlse(rth'issGmuaidye)v.aryEnasmuornegstart and
`end sample number includes all samples to be analyzed.
13.0 DATA ANALYSIS AND CALCULATIONS 13.1 Calculations:
13.1.4 Calculate matrix spike percent recoveries using the following equation % Recovery = OBbsearvecdReEksxupletgc-terd ReosultunResudlt x 100 13.15 Calculate pesent difference using the following equation:
% Difference = ExpCoEnxe cp.e-ctc CealdcCutolnact.eedCodnc. x 100
k4
13.1.6 Calculate actual concentrations in matrix (g/g):
"
o
(ng of PFOS calc. from std. Curvxe Dilution Factor) x Lug
(Initial Weight of Liver (g)
1000 ng
Final Volume (mL)
14.0 METHOD PERFORMANCE. 14.1 MmaettrhioxdspDeceitfeicc.tioRnefLeirmitto(EMTSD-L8)-6a.n0d,LAitmtiatocfhmQueannttiBtaftoiroanl(sLtOinQg)ofacruermreetnhtovda,liadnaaltyetdeM, DanLd
and LOQ values.
14.2 Solvent Blanks, Method Blanks and Matrix Blanks 14.2.1 Sinoltvheenctalbilbarnaktsi,onmecutrhvoe.d blanks, and matrix blanksmust be below the lowest standard
143 Calibration Curves
14.3.1 The r* value for the calibration must be 0.980 or better.
14.4 Matrix Spikes
14.4.1 Matrix spike percent recoveries must be within + 30%ofthe spiked concentration. 145 Continuing Calibration Verification
14.5.1 sCpoinkteidnucionngcecnatlriabtriaotni.on verification percent recoveries must be within 30%of the 14.6 pIfcerriftoerrmieadliosntetdhienstyhsetmeemtahnoddspaemrpfloersmraenacnealseyczteidonoraroethneortamcetti,onmsaaisntdeentaenrcmeinmeadybybethe
analyst. Document all actions in the appropriate logbook.
Analy.sis ofLiveErTESxstr7ac0t Using ESMS
G0VO60
Page Taf 10
14.7 fIfodoattnaotaerdeotno btaeblreespoarntdeddiwshcuesnsepderifnotrhmeatnecxetocfrittehreiarehpaorvte,not been met, the data must be
15.0 POLLUTION PREVENTION AND WASTE MANAGEMENT
15.1
Sample pipette
extract waste is
waste and disposed
ifnlbarmomkaebnleglsaoslsvecnotnitaidniesrspolsoecdatiendhiinghthBeTlaUbocroanttoariyn.ers,
and
glass
16.0 RECORDS
_
_
16.1 Eheaacdherpaogrehgaennderwartietdtefnoornatshteudpyagme:uststhuadvyeotrheprfoojlelcotwniungmbienrf,oramcaqtuiiosnitiinocnlmudeetdhoedi,ther in the
integration analyst.
method,
sample
name,
extraction
date,
dilution
factor(ifapplicable),
and
16.2 Parpipnrtoptrhieattuensetupdagyef,olsdaerm.pleColspty, atnhedseacpqaugiseistiaonndmteatpheoidntfortohmeMinasstsruLmyennttrounilnocgl.ude in the
"
16.3 sPtloortetihnetchaelisbtruadtiyonfolcduerr.ve by linear regression, weighted 1/x, then print these graphs and
16.4. Print data integration summary, integration method, and chromatograms from MassLynx
"
and store in the study folder.
16.5 AStutmamcarhimzeentdaAtafuosrianngesxuiatmapblleesooffatwsaurmem(aErxcyeslp5r.e0a+d)shaenedt store in the study folder, refer to
16.6
Back up electronic data to appropriate medium. and locationofbackup electronic data.
Record in study notebook the file name
17.0 TABLES, DIAGRAMS, FLOWCHARTS, AND VALIDATION DATA 17.1 Attachment A: ETS-8-7.0 Data summary spreadsheet
18.0 REFERENCES
_
18.1 FCAoCmTp-oMu-n2d.s1,fr"oEmxtLriavcetrifoonor fAnPaolytsaisssiUusminPgerHfPlLuCo-roEolcetcatnreossulpfroanya/tMeaosrsOStpheecrtFrloumoerroyc"hemical
18.2 EToTnSi-z9a-t2i4o.n0/,Ma"sOspeSrpaetcitornomaentderMaQiunattetnraonIcIeotrfiptlheequMaidcrruopmoalsesSAytsmteomssp"heric Pressure
183 The validation report associated with this method is ETS-8-6.0 & 7.0-V-1
19.0 AFFECTED DOCUMENTS 19.1 E`TCSo-m8p-6o.u0n,ds"EfxrtormacLtiivoenorforPFoltuaisdsfiourmAPnearlfylsuiosrUosoictnagnHesPuLlCf-oEnlaetectorroOstphreary/FMlausosrochemical
Spectrometry"
Analy.sisofLivEerTEsxstraac0t Using ESMS
000061
Page 8of 10
woRevSNs RNeuvimsbieorn
0000000000 ReasonForRevision
ReDvaitsieon
5
An. aofLlivEeyrTExSts8ra0citUsisng ESIMS 000062
Page9o1f0
Laboratory Study #
STeusdtyMaterial
MMaettihxoFdiRneavlisSioolnvent
IAnnasltyrtuimceanltSEoqfutiwpamreentVeSryssiotnm Number:
.
FRielSeqnuaamreed Value:
SloIpnetercept
DDaattee ooff AExntsryascitisoAnn/lAynsalty:st +
"
DGosre
rop e [P SFacetoE r ] "
GSiroopuep:/DToaskee:n fTaokmenlirneoarmrteghresstsuidoynfeoqludeart.ion `SCaomnpcelnet:ratTiaoknen(nrg/og)m:thTeaksetnyfrfoomldtehre MassLyn integration summary. IDniiltuitailoWneF.ac(2t)o:r:TaTkaeknenfrformotmhtehsetsutduydfyolfdoelrd.er Final Cone. (g/g): Calculated by dividing he initial volume rom the concentration
Atzchment A: Summary Spreadsh`eAenatl.ysisof LivEerTESx$tr7ac0t Using ESMS
. Page 100610
000063
SE 3MM EN NVIV RONMI ENTR AL LAO BORN ATTOOM RRYY ENT ~~A ~ L
METHOD
FLEUXOTRROACCTHIEOMNICOAFLPCOTOAMSPSOIUUNMDPSEFRRFOLMUOLRIOVOECRTFAONREASNUALLFYOSNIASTUESOINRGOHTPHLECRELECTROSPRAY/MASS SPECTROMETRY
Method Number: ETS-8-6.0
| Author: Lisa Clemen, Robert Wynne
Approved By:
Adoption Date:
Revision Date:
Laboratory Manager
Date
Group Leader
Date
`Technical Reviewer
Date
1.0 SCOPE AND APPLICATION
1.1 Scope: This method is for the extractionof potassium perfluorooctanesulfonate (PFOS) or other fluorochemical compounds from liver.
1.2 Applicable Compounds: Fluorochemical surfactants or other fluorinated compounds.
1.3 Matrices: Rabbit, rat, bovine, and monkey livers or other tissues as designated in the validation report.
Word 6.095
Ex.tractionEoTf sPsOeSofrom Liver
Page lof 14
000064
2.0 SUMMARY OF METHOD
2.1 (ThPiFsOSme)tohroodtdheesrcfrliuboesrotchheempircoacledsuurrfeacftoarnetxstfrarcotminlgivpero,taosrsoituhmerpetrifssluueosr,ooucstianngeasnulifoonnaptaeiring reagent and methyl-fert-butyl ether (MtBE). In this method, seven fluorochemicals can be esxttarnadcatredd.: APnFOiSon,pPaiFrOiSngA,reaPgFeOntSAisAa,ddEe{dFtOoStEh-eOsHa,mpPlFeOaSnEdAt,heMa5n5a6ly,teanidonspuarirrogisate partitioned into MtBE. The MIBE extract is transferred to a centrifuge tube and put onto a nitrogen evaporator until dry. Each extract is reconstituted in 1.0 mL methanol then filtered through a 3 cc plastic syringe attached to a 0.2 um nylon filter into glass autovials.
22 These sample extracts are analyzed following method ETS-8-7.0 or other appropriate
methods.
3.0 DEFINITIONS
3.1 PFOS: perfluorooctanesulfonate (anion of potassium selt) CiFyrSOs
tr
3.2 PFOSA: perfluorooctane sulfonylamide CsF1;SO:NH,
+ 33 PFOSAA: perfluorooctane sulfonylamido (ethyl)acetate CiFirSON(CH,CH:)CH:CO
3.4 ECtaFFO1S7ES-OO0H::N(2C(HN-;eCtHhsyl)pCeHr:flCuHoOrHooctane sulfonamido)-ethyl alcohol 3.5 PFOSEA: perfluorooctane sulfony ethylamide CaF17SO;N(CH;CHy)H
3.6 MSS6: CaF SON(H)(CH,COOH)
3.7 Surrogate standard: 1H-1H-2H-2H perfluorooctane sulforic acid
4.0 WARNINGS AND CAUTIONS
4.1 Health and Safety Warnings:
4.1.1 Uhasnedluinnigvearnsiamlaplreticsasuutei,onwsh,iceshpemcaiyallcyonltaabionraptaotrhyogceonast.s, goggles, and gloves when
5.0 INTERFERENCES
5.1 There are no interferences known at this time
6.0 EQUIPMENT
6.1 The following equipment is used while performing this method. Equivalent equipment is acceptable.
6.1.1 Ultra-Turrax T25 Grinder for grinding liver samples
6.1.2 Vortex mixer, VWR, Vortex Genie 2
6.1.3 Centrifuge, Mistral 1000 or IEC
6.1.4 Shaker, Eberbach or VWR.
E.xtractionoEfsPsFOeS fiom Liver
_
00VO6S
Page 20f 1s
6.15 Nitrogen Evaporator, Organomation 6.1.6 Balance (sensitivity to 0.100 g)
7S .0 UPPLIESANDMATERWAL 00S 0
7.1 Gloves
7.2 Dissecting scalpels
7.3 Eppendororf disposable pipettes
7.4 Nalgene bottles, capableofholding 250 mL and 1 L
7.5 Volumetric flasks, glass, type A
7.6 T-CHEM vials, 40 mL glass.
7.7 Plastic sampule vials, Wheaton, 6 mL (or appropriate size)
7.8 Centrifuge tubes, polypropylene, 15 mL
7.9 Labels
7.10 Oxford Dispensor ~3.0 to 10.0 ml
"
7.11 Syringes, capableofmeasuring 5 uL 10 50 pL
:
7.12 Graduated pipettes
7.13 Syringes, disposable plastic, 3 cc
7.14 Syringe filters, nylon, 0.2 um, 25 mm
7.15 Timer
:
7.16 Crimp cap autovials and caps
7.17 Crimpers
Note: Prior to using glassware and bottles, rinse 3 times with methanol and 3 times with Milli-
va ias. water. Rinse syringes a minimum of9 times with methanol, 3 rinses from 3 separate
8.0 REAGENTS AND STANDARDS 8.1 Type reagent grade water, Mill-QTM or equivalent; all water used in this method should
be Milli-Q water and be provided by a Milli-Q TOC PlusTM system 82 Sodium hydroxide (NaOH), J.T Baker or equivalent 83 Tetrabutylammorium hydrogen sulfate(TBA), Kodakor equivalent 84 Sodium carbonate (Na;COx), J.T. Baker or equivalent 8.5 Sodium bicarbonate (NaHCO), J.T. Baker or equivalent 8.6 Methyl-tert-butyl ether, Omnisolv, glass distilled or HPLC grade 8.7 Methanol, Omnisoly, glass distilled or HPLC grade 88 Liver, frozen from supplier 89 Dryice from supplier 8.10 Fluorochemical standards
8.10.1 PFOS (3M Specialty Chemical Division), molecular weight = 538
E. ximEoTfSFSF8O6S0fom Liver 0060 Page 3of 14
8.10.2 PFOSA (3M Specialty Chemical Division), molecular weight = 499
8.10.3 PFOSAA (3M Specialty Chemical Division), molecular weight = 585
8.10.4 E{FOSE-OH (3M Specialty Chemical Division), molecular weight = 570
8.10.5 PFOSEA (3M Specialty Chemical Division), molecular weight = 527
8.10.6 MSS6 (3M Specialty Chemical Division), molecular weight = 557
8.10.7 Surrogate standard: 4-H, perfluorooctane sulfonic acid (1-H, 1-H, 2-H, 2-H
C4F;5SO5H) molecular weight = 428
8.10.8 Other fluorochemicals, as appropriate
811
Reagent preparation
NOTE: When preparinglarger volumes than listed in reagent, standard, or surrogate
preparation, adjust accordingly
8.11.1 10N sodium hydroxide (NaOH): Weigh approximately 200 g NaOH. Pour into a
1000 mL beaker containing 500 mL Mill-QTM water, mix untilal solids are
dissolved. Store ina 1 L Nalgene bottle.
1
8.1"1.2101 NNs'oNdaiOumHhsyodlruotixoindein(tNoaaOH1)0:0 mDLilvutoelu1m0etNriNcaflOasHk a1:n1d0.dilMuetaestuorveol1u0mmeLusoifng
*
Milli-QTM water. Store in a 125mLNalgene bottle.
8.11.3 0o.5fTMBAteitnrtaobautIyLlavmomlounmieutmrihcycdornotgaeinnisnuglf5a0te0(mTLBA)Mi:lliW-eQi"ghwaaptperr.oxAidmjautsetlyto169 g
PH 10 using approximately 44 to 54 mLof 10 N NaOH (While adding the last mL.
ofNaOH, add slowly because the pH changes abruptly). Dilute to volume with
Mill-QTM water. Store ina 1 L Nalgene bottle.
8.1.3.1 TBA requires a check prior to each use to ensure pH = 10. Adjust as,
needed using 1 N NaOH solution.
8.11.4
0a.p2p5roMximsaotdeiluym2c6a.r5bgoonaftes/osdoiduimumcabribcoanrabtoena(tNeab:uCfOfse)r
(Na;COy/NaHCO): Weigh and 21.0 gofsodium
bicarbonate (NaHCO5) into a 1 L volumetric flask and bring to volume with Milli-
QTM water. Storeina 1 L Nalgene bottle.
512
Standards preparation
8.12.1 Prepare PFOS standards for the standard curve.
8.12.2 Prepare other fluorochemical standards, as appropriate. Multicomponent.
fluorochemical standards are acceptable (for example, oneworking standard
solution containing 1.00 ppm PFOS, 1.02 ppm PFOSA, 0.987 ppm PFOSAA, and
1.10 ppm EtFOSE-OH.)
8.12.3 Weigh approximately 100 mg of PFOS into a 100 mL volumetric flask and record
the actual weight.
8.12.4 Bring to volume with methanol for a stock standardof approximately 1000 ppm
(ng/mL).
8.12.5 Dilute the stock solution with methanol for working standard 1 solution of approximately 50 ppm.
E. ximEolTsEsOeSoonLive (00.0677 Page dof 14
8.12.6 Dilute the stock solution with methanol for a working standard 2 solution of approx. 5.0 ppm.
8.12.7 Dilute the stock solution with methanol for a working standard 3 solution of approx. 0.50 ppm.
813
Surrogate stock standard preparation
8.13.1 Weigh approximately 0-60 mg of surrogate standard 1-H,1-H, 2-H, 2-H, `CaF:5SOsH into a 50 ml volumetric flask and record the actual weight
8.13.2 Bring to volume with methanol for a surrogate stockof approximately 1000-1200 ppm.
8.13.3 Prsetpoacrketaosaur1r0ogmaltevowlourmkeitnrigcsftlaansdkaradn.d Tbrrianngsfteorvaoplpurmoxeiwmiatthelmyet1h.a0nmollofforsuarrogate working standard of 10-20 ppm. Record the actual volume transferred.
9.0 SAMPLE HANDLING " 9.1 All samples are received frozen and must be kept frozen unil the extraction is performed.
:
10.0 OuALITY ConTROL
"10.1 Matrix blanks and method blariks
10.1.1 An aliquot of 1.0 mL methanol is used as a solvent blank
10.1.2 Extract two 1.0 mL aliquots of Milli-QTM water following this procedure and use
as method blanks. 10.1.3 Extract two 1.0 mL aliquotsof iver homogenate following this procedure and use:
as matrix blanks. Refer to 11.16. 102 Matrix spikes
10.2.1 Prepare and analyze matrix spike and matrix spike duplicate samples to determine the accuracyofthe extraction
10.2.2 Prepare each spike using a sample chosen by the analyst, usually a control liver received with each sample set.
10.2.3 Expected concentrations will fallin the mid-rangeof the initial calibration curve. `Additional spikes may be included and may fal in the low-rangeofthe initial calibration curve,
10.2.4 Prepare one matrix spike and matrix spike duplicate per 40 samples, with a minimum of2 matrix spikes per batch.
10.3 Continuing calibration verifications
10.3.1 Prepare continuing calibration verification samples to ensure the accuracyofthe initial calibration curve.
10.3.2 Prepare, at a minimum, one continuing calibration verification sample per group of 10 samples. For example, ifa sample set = 34, four verifications are prepared and extracted.
E.xtractionoEfTSPF8O6S0from Liver
COVES
Page Sof 14
10.3.3 Prepare each continuing calibration verification from the same matrix used to prepare the initial curve.
10.3.4 The expected concentrations will fall within the mid-rangeof the initial calibration curve. Additional spikes may be included that fall in the low-rangeofthe initial
calibration curve. This is necessaryifthe analyst must quantitate using only the l1o0w00enppdob)f. the calibration curve (for example, 5 pp--b 100 ppb, rather than 5 ppb --
11.0 CALIBRATION AND STANDARDIZATION
11.1 Prepare matrix calibration standards
11.1.1 Weigh approximately 40 gofliver into a 250mLNalgene bottle containing 200 `mLs Milli-QTM water. Grind to a homogeneous solution.
11.1.2 Irfat4io0. g is not available, use appropriate amounts of liver and water to ensure a 1:5
11.1.3 Refer to 13.0 to calculate the actual densityofliver homogenate and the
"
concentrationofsolid liver tissue dispersed in 1.0 mLof homogenate solution.
11.1.5 Add 1 mLof homogenate to a 15 mL centrifuge tube. Re-suspend solution by
-
shaking between aliquots while preparing a totalofeighteen 1 mL aliquots of
homogeneous solution in 15 mL centrifuge tubes.
11.1.6 Two 1 mL aliquots, or other appropriate volume, serve as matrix blanks.
11.1.7 Typically use the standard concentrations and spiking amounts listed in Table 1, at
the endofthis section, to spike, in duplicate, two standard curves, fora total of eighteen samples, two matrix blanks, and two method blanks.
11.1.8 Refer to validation reports ETS-8-6.0 and ETS-8-7.0-V-1 or Attachment B,
`which lists the working ranges and the Linear Calibration Range (LCR) for
calibration curves.
11.19 Use Attachment C as an aid in calculating the concentrationsofthe working
ssttaannddaarrddss.. Refer to 13.0 to calculate actual concentrationsof PFOS in calibration 11.2. Tsuorreoagcahtewowrokriknigngstsatnadnadradr,dbfloarnkt,heorcocnocnetnitnruaitnigonvetroiffiacaltiwoint,hianddthaepcparloipbrriaattieonacmuoruvnetroanfge
ppb -- 1000ppb.
E.xtractonoEfTsFsOeSofrom Liver G0005y Page of 14
11.3 Extract spiked liver homogenates following 12.14-12.25ofthis method. Use these standards to establish each inital curve on the mass spectrometer.
Table 1
Approximate Spiking Amounts for Calibration Standards
Working Standard
Wl
"Approx. final conc. of
(Approx. Con.
PFOS in liver
rT Bak |
[oso|pp 10 m[ 0025pn
[_o|s4o 0 | p01p 00ppmm|
'
[ Soppm | 10 | 0250ppm
of
sopm 120 | 0500pm
"
[Soppm | 30 | 0.750 ppm
(C_|S4 o | p1p 00ppmm|
12.0 PROCEDURE
12.1 Obtain frozen liver samples.
12.2 Cut approximately 1 gof liverusing a dissecting scalpel. This partofthe procedure is best `performed quickly, not allowing the liver to thaw.
12.3 Weigh the sample directly into a tared plastic sampule vial. 12.4 Record the liver weight in the study notebook. 12.5 Return unused liver portions to freezer. 12.6 Add 2.5 mLs ofwater to sampule vial. 12.7 Grind the sample. Put the grinder probe in the sample and grind for about 2 minutes, or
until the sample is homogeneous. 12.8 Rinse the probe into the sample with 2.5 mLs water usinag pipette.
12.9 Take the grinder apart and clean it with methanol after each sample. Refer to AMDT-EP-
22.
12.10 Cap the sample and vortex for 15 seconds. Label the sampule vial with the study number,
weight, liver ID, date and analyst initials.
Ea xtractiono) fPFOS from Liver
060070
Page Tor 14
12.11 cPeinptertitfeug1e.0tumbeL.,Loarbeotlhtehreacpepnrtorpirfiuagteetvuobleuwmiet,hotfhehoimdeongteicnaaltienfinotromati1o5nmasLtphoelsyapmrpoupylleevnieal Refer to attached worksheet for documenting the remaining steps.
12.12 mPeitpehtotde btlwaonks1. mL aliquotsofMilli-QTM water to centrifuge tubes. These will serve as
12.13 sStpainkdearadllassadmepslcersi,biendclinudsiencgtibolnar1i1k.s2.and standards ready for extraction with surrogate
12.14ofSptihkaet esaeccthiomna,tfionr twhiethcatlhiebraaptpiroonpcruiartvee astmaonudanrtdos.f sAtlasnodaprrdepasardeesmcartirbiexdsipnik1e1s.1a,nodr Table 1 continuing calibration standards.
12.15`Vsoamrptleexs mfoirx 1t5hessetcaonnddasrd curve samples, matrix spike samples, and continuing calibration
12.16 Check to ensure 0.5 M TBA reagent is at pH 10. Ifnot, adjust accordingly.
.
12.17bTiocaerabocnhastaembpulfef,eradd 1 mL 0.5 M TBA and 2 mLofthe 0.25 M sodium carbonate/sodium
:
12.18 Using an Oxford Dispenser, add mL methyl-tert-butyl ether.
. 12.19 Cap each sample and put on the shaker at a setting of 300 rpm, for 20 minutes.
12.20 Centrifuge for 20 to 25 minutes at a settingof 3500 rpm, or until layersarewell separated.
12.21 Label a fresh 15 mL centrifuge tube with the same information as in 12.10.
12.22 Remove 4.0 mLofthe organic layer to the fresh 15 mL centrifuge tube. 12.23 Put each sample on the analytical itrogen evaporator until dry, approximately 1 to 2 hours. 12.24 Add 1.0mLto each centrifuge tube using a graduated pipette. 12.25 Vortex mix for 30 seconds.
12.26 FAitlttearcihntao0a.21.u5mmnLylgolnasmseasuhtofviilatlerotrolao3w-cvooslyurmiengaeutaonvdiatlrawnhsfeenr ntehceesssaamrpyl.e to ths syringe. 12.27 mLaatbreixl,tfhienaalutsoovlivaelntw,ietxhtrtahcetsitounddyatneu,mabnedr,anaanliymsatl(sn)upmebrefroramnidnggetnhdeeerx,trsaactmipolne. timepoint, 12.28 Cap and store extracts at room temperature or at approximately 4 C until analysis 12.29oCroimnpclleutdee itnhesteuxdtyrabcitnidoenr,woarskasphpereotp,riaattet.ached to this document, and tape in study notebook
E.xtractionEoTfSPF8O6S0from Liver
000071
Pages of 1s
13.0 DATAANALYSISAND CALCULATIONS 13.1 Calculations:
13.1.1 Cseaplacrualtaete1t.h0emaLvearlaigqeuodtesnosfithyoomfotgheenaltivee.r homogenatebyrecording each massoften
Average density (mg/mL) = Avme ass(r mg)oa ftheg aliqe uots
1.0 mL aliquot
13.1.2 Cdailscpuelrasteed tsholeiadmtoisusnuteopferlimveLro(fmgh)ompoegre1n.a0tmeLsuhsopmenosgieonna)tuesi(nogr ctohnecfeonltlroawtiinogn of equation
fLiver x
* of homogenate (mg/mL)
(8ofLiver + gofWater)
*refer t0 13.1.1 for details.
13.1.3 Calculate actual concentrationsof POS and other fluorochemicals in calibration
~
standards using the following equation:
uCl oofSntmangcdLairevdexrn/ 1tmLrhaomotgen(iuagto.emLn) =oFifnaPlFCOoSnceinntLriavteiron (ug/g or mg/kg)
*refer t0 13.1.2 for details
14.0 METHOD PERFORMANCE 14.1 TspheecimfiectMhoDdLdeatnecdtliiomnitolifmitqu(aMntDiLt)atiiosnan(aLlyOtQe)avnadlumeastr(irxefseprectiofiAc.ttRaecfhemrentotsMBDLanrdepCo)r.t for 14.2 Tthheeqfuoalllitoywoifngthqeualeixttyraccotnitornolansdamapnlaelyssaisre extracted with each batchofsamples to evaluate
14.2.1 Method blanks and matrix blanks. 14.2.2 Matrix spike and matrix spike duplicate samples to determine accuracy and
precisionofthe extraction. 14.2.3 Continuing calibration verification samples to determine the continued accuracy of
the iniial calibration curve. 143 Refer to section 14of ETS-8-7.0 for method performance criteria
15.0 POLLUTION PREVENATNDIWAOSTNE MANAGEMENT 15.1 hSiagmhplBeTwUasctoentiasindeirssp,osaenddinubseidohgalzasasrdpicpoentttaeiwnearsst,efilsadmimsapbolseedsoilnvberntokweanstgelaisssdciosnptoasienderisn
Tocated in the laboratory.
Ext. ractionoEfTSPF8O6Sf0romLiver
-
600072
Pager 14
160 REcorps
------
16.1 oCromipnlcleutdeetihnetehxet3r-arcitnigonstwuodryksbhinedeetr,atatsaacphperdoptroitahties.method, and tape in the study notebook
17.0 TABLES. DIAGRAMS, FLOWCHARTS, AND VALIDATION DATA 17.1 Attachment A, Extraction worksheet 17.2 Attachment B, MDL/LOQ values and summary 17.3 Attachment C, Calibration standard calculation and concentration worksheet
18.0 REFERENCES 18.1 The validationreportassociated with this method is ETS-8-6.0 & 7.0-V-1. 182 AMDT-EP-22, "Routine MaintenanceofUltra-Turrax T-25"
"
183 LFiAvCeTr-fMo-r1A.n1al,ys"iEsxtUrsaicntigoHnoPLfC-PEFlOeSctorrosOtphreary/AMnaisosniScpeFclturoormoecthremyi"cal Surfactants from
19.0 AFFECTED DOCUMENTS
19.1 LEiTvSe-r8-E7x.t0r,act"sAnuasliynsgiHsoPLfCP-oEtlaescstiruomspPrearfylMuoarsosocStpaencetsruolfmoentartye"or other Fluorochemicals in
20.0 REVISIONS
Revision
Revision
Number.
ReasonForRevision
Date
E.xtractionEoTf BSR8O6S0from Liver
600073
Page 10of 14
Study #_
Surrogate Std
FC Mix Std
FC Mix Std
FC Mix Std `Comments
Matrix |approx. ppm| approx. 0.5 ppm| approx. S ppm | approx. 50 ppm
Box#,
actual ppm| actual ppm | actual ppm | actual ppm
WkDaDteaSypi_ked_/A_na_ly_st |#______\#
(#0(#4
r eo p r r r
Y ws [r T r
r rr r
r r r T r
rr
rr
EE
|
r rr T
r rr Tr ]
rr
SSSS ESTrEE
r rr r rr rr
rr
rr
rr
rr rT 1
r > rr
rrr
--r ------ rrr rrT
--rrr11
`Cont. Cal. Verifiucsadtthieosanmse matasrfoirtxh standardcurve. AtschmenAt: Extraction Worksheet.ExtracEotfTiSF8oO6Snf0rom Liver
Page 110f14
000074
MDL/LOQ values for rabbit liver
Compound| MDL | LOQ| Linear Calibration Range (LCR)
(ppb) | (ppb)| Approximate concentrations to be used for preparing the
Standard Calibration Curve
PFOS | 845 [269[30ppb 1200 ppb
PPFFOOSSAAA |35 | 10 1.1[1320 ppppb --b1122000ppp0pbb
EtFOSE-OH|_108__|345 | 60 ppb -- 900 ppb*
[Mss6
PFOSEA
T78|22632 |
|33 | 19 08 |
60
30
pp=b 1200 ppb
ppb- 1200 ppb
MinDeLac/hLoOfQthevasleumeastirnicraets, wboevrienee,xtarnadctmedonaknedyanlaivleyrzweedrweitnhotthsetartaibsbtiictallliyvedretceurrmviensedt.o deTtweormicnuerves
reqeusipvoanlseensc,et.heRreefsoproen,stehseiirnMthDeLrata,nbdoLviOneQ, wainldl bmeonaksesuymleidvetrocbureveeqsuiwvearleenetqutiovtahloenste tvoaltuheesraasbbit
.
determined for the rabbit liver.
[on ear Be | om mo | * *REe{tFfoOLSeEOr-QOHSuesmtmiamartyesanodnlyMfDoLrsMtDudLyianndELTOQS. -Di8d&-n7o6t.0m.-eVe0-t1fcroirtefruiratfhoerrivnalfiodramtaitoinon
Compound: PFOS
Liver | Prraempgaeroefd|| Raavnegregoef aLCwRfieom|| Rlaonwgsedof | LClRoFwsodm|| Rhaingghosodf | LOhiRghEeOtdW
matrix| standards| curve
ave ane ane uve.
[me eam]ea |ee Compound: PFOSA
Liver | Prraenpgaeroefd|| Raavngregof| LaCeRamfvoem|| Rlaonwgseodf | LOlRwfsodm|| Rhaingghosodf | LhOiRgEhSsH
matsix| sandarss| curve
ane are aire ave
[un]S i B |Tn] Compound: PFOSAA Liver | Prrnegpaeroefd|| Raawnrgegoef matrix |62st)andaarmds || ee)curvent)
LaOwRafrnoem|| Rlaonwgsodo 0) oxa) ne
LlCoRwfsodm|| Rhaimgghewodf|| LhOiRgEhosm a2)r0e 6a2)ngemt) (o)curevpe )
Attachment B: MDLILOQ Values Ex.tractionoEfTSPF8O6S0from Liver 600O7S Page 120114
aoe|| 2 | Se Compound: EtFOSE-OH Prepared Rangeof
LCR from
Rangeof
maT Eer : LCRfrom Rangeof LCRfrom
F or | Emo ETrER Compound: PFOSEA Prepared. Rangeof
LCR from
Rangeof
LCR from
erRangeof
LCR from
cm] EEE Compound: M556
Liver |Prreapnagreeofd|Raanvegreaogef
REE LCaRvefcruvoem||Ralnogwesodf LCRlofwrsdom| Rhaingghesodf LChRifgrhosm
mss.oweT e
es
000076
Ton Pair Standard Curves -- Tissue
Prep date(s):
Analyte(s):
Sample matrix:
Methodrevision: Targetanalyte(s): FFCCmmiixxssttddaappppr50r..o05o000pxpxppm.m:.: SFuCrrmoigxatsetdsatdpparpopxr.ox5.0.010p0pmp:pm:
Standard number:
Equipment number:
Final solvent and TN:
Blank liver/identifier:
ASctPtdFucOaoSln|ec|oncSPeuFndtOcroSanAtci||onsPSotOfdsSctoAnaAc|n|dESaitIrdnFcOtdoShnsEce||FCPSFimdOicxSoEncA|| SiMdSco%nc | Sidconc |AmtIspiked| DenAsiity
ug| ugnl | wpm | uml | ym | ugmi | ugm nL
g
:
[0500T0500 [0500 [0500 "0.500 T0500
"0500| 050 | 050 | 0.50
|050|_| |0500 |_|
0002 000s
| 0167] | 0167]
ose
[0500TT0o5s0e0[T0o.5s0o0
0500|os00|0500 || "0500 | 050 |0500 |__|
ooo 0020
|oisr| | 0167|
[050 T0500T0500 | 050 |050 | 0500 | [300T7500T7500 |"s00 | 500 | 500 |
| 000 | 0167| | ooo | oie
[500T7500 [500T7500
"500 "500
| |
500 500
| |
500 s00
| |
500 500
| |
| 000 |0167 | | oo
[500T7500 "500 "500 | s00 | 500|
| 0004 | 0167|
CaPFlRicnOaulSla||tedPcFFoiOnnaScleA|n|trFaPitFaiOlooSnosAnAoc|f|stEa(FniFdnOaaSlrEd||s iPnFFtiOhnSealEsA|a|mplMFeiSnmaSalt|rix Sweonc | SSurcroognaete|| AAmNt cnc | conc | ong | com | conc | come | ng | ngml | spiked
[590 T7599 T7590 | s90 | 599 |se9 |
|
Pasteur
busfaefT
oo | 000s|
IE
1
IE nr
SFlolconc
I
[299T2900 [39% [soo so
1 20 | 299 | |500 | 599 |
99 seo
| |
| oso | |
[898 eos mos | sos | wos | wes | |
(nos Twos| 1198 | 1198 | ios | nos | |
[LValb idated rang[es~- prapoprsoxim|atepcorncoenstra|tionsProsi |ewoseom| oar | PrOSEA| 2 Rat estimates anywembt mies ------
AtachmenCt: Standard CalculationsE. xtroEfTaSPF:cO6St0froimLoivner
Page lof 14
600077?
2I 33M EN NVIV RONMI ENTAR L LAO BORRN AATTOOM RRYY E ~N ~T ~AL
METHOD
ANALYSIS FOLFUPOORTOACSHSEIMUIMCPAELRSFILNUSOERROUOCMTEAXNTERSAUCLTFSOUNSAITNEGOR OTHER HPLC-ELECTROSPRAY/MASS SPECTROMETRY
Method Number: ETS-8-5. 1
I . Author: Lisa Clemen, Robert Wynne
Approved By:
`Adoption Date: 03/01/99 Revision Date:
Laboratory Manager
Date
Group Leader
Date
Technical Reviewer
Date
0_SCOPE AND APPLICATION
1.1
Scope: This method describes
using HPLC-electrospray/mass
the analysisofserum
spectrometry.
extractsfor fluorochemical
surfactants
1.2 Applicable Compounds: Fluorochemical surfactants or other fluorinated `compounds, or other ionizable compounds.
1.3 vMaaltirdiacteiosn: reRpaobrbt.it, rat, bovine, monkey, and human serum, or other fluids as designated in the
Word 695
Analys-isofSerEuTmsExetsratct Using ESMS.
000078
Page 10r9
2.0 SUMMARY OF METHOD 2.1 Tohtihesrmfeltuihdos,dudseisncgriHbPeLsCt-heeleancatlryossisporfayf/lmuaosrsocshpeemcitcraolmesturryf,acotranstismielxatrrascytsetdemfraosmapsperrouprmiaotre.
`fTlhueoraoncahleymsiicsails,pseurcfhoramsetdhebypemrofnliutoorroioncgtaanessiungllfeoniaotnec(haPrFaOctSe)riasntiiocno, fma/zpa=rt4i9c9u.lar tAdhdeiitdieonntailtlyy,osfaamcpolmepsomuanydbbeyadneatleyczteidngusdianugghatteranidoenmsomfasthsesppaercetnrtomioent.er to further verify
3.0 DEFINITIONS
m-- ce ----
3.1 Atmospheric Pressure Ionization (API): The Micromass Quattro II triple quadrupole
isnytsetrfeamcsesa.llTohwefsoer
various include
methodsofionization but are not limited to:
by utilizing various sources, probes, and Electrospray Ionization (EST), Atmospheric
Pressure chemical Ionization (APC), Thermospray, etc, The ionization process in these
techniques occurs at atmospheric pressure (i.., not under vacuum).
32 Electrospray lonization (ES, ESI): a methodof ionization performed at atmospheric
":
Tprheessseurceh,awrhgeerdedbryopiloentssianresoplrutoidouncaerdebtyratnhsefearprpeldictaotitohneogafas pshtarosnegveilaetcitrniyccalhafriegledd droplets.
* 33 (MSM/aMsSs):SpeTchterAoPmeTtQruya,ttMraossIl Strpiepcletrqouamdertueprol(eMSs)y,stTeamsndareemeqMuaispspeSdpweictthrqoumaedtreurpole mass sseulbescetqiuveendteltyecdteotresc.tedT.onAs asriensgelleeMctSivemlayydibsecreimmipnlaotyeeddbyfomraisosn tdeotcehcatriogne orrataios(ermi/ezs)(aMnSd/MS) for more specific fragmentation information.
3.4 Conventional vs. Z-spray probe interface: The latest modelsof Micromass Quattro II triple quadrupole systems (post 1998) utilize a "Z-spray" conformation. The spray emitted from a probe is orthogonal to the cone aperture. In the conventional conformation it is aimed directly at the cone aperture, after passing through a tortuous pathway in the counter electrode. Though the configuration is different, the methodsofoperation, cleaning, and `maintenance are the same. However, Z-spray components and conventional components are not compatible with one another, but only with similar systems (i.., Z-spray components are compatible with some other Z-spray systems, etc.)
3.5 Mass Lynx Software: System software designed for the specific operationofthese Quattro II triple quadrupole systems. Currently MassLynx has Windows 95 and WindowsNT 4.0 versions. All versions are similar. For more details see the manual specific to the Giunisdter)u.ment (Micromass Quattro II triple quadrupole MassLynx or MassLynx NT User's
4.0 WARNANIDCNAUTGIOSNS 41 Health and Safety Warnings:
4.11 Use caution with the voltage cables for the probe. When engaged, the probe employs a voltageof approximately 5000 Volts.
Analys.isofSerEumTsExstsraict Using ESMS
C0007
Page 2069
4.1.2 Wanhdecnlohtahnindgl.ing samples or solvents wear appropriate protective gloves, eyewear,
4.2 Cautions:
4.2.1 Do not operate solvent pumps above capacity of400 bar (5800 psi) back pressure. If the back pressure exceeds 400 bar, the HP1100 will initiate automatic shutdown.
42.2 Do not run solvent pumps to dryness.
5.0 INTERFERENCES
5.1 To minimize interferences when analyzing samples, teflon should not be used for sample storage or any part of instrumentation that comes in contact with the sample or extract.
6.0
6.1
EQUIPMENT
ER
Equipment listed below may be modified
inI order to optimiTzeEthe sA ystem. H Documeonyt-_an_yhr
modifications in the raw data as method deviations.
kK}
6.1.1 MelieccrtoromsapsrsayQuioantitzraotiIoTntrsiopulrecqeuadrupole Mass Spectrometer equipped with an
6.1.2 HP1100 low pulse solvent pumping system, solvent degasser, column compartment,
and autosampler
7.0 SUPPLIES AND MATERIALS
7.1 Supplies 7.1.1 High purity grade nitrogen gas regulated to approximately 100 psi (House air system)
7.1.2 HPLC analytical column, specifics to be determined by the analyst and documented in the raw data.
7.1.3 Capped autovials or capped 15 mL centrifuge tubes
8.0 REAGENTS AND STANDARDS
81 Reagents
8.1.1 Methanol, HPLC grade or equivalent
8.1.2 Milli-QTM water, all water used in this method should be Milli-QTM water or
equivalent, andmaybe provided by a Milli-Q TOC Plus system or other vendor
8.1.3 Ammonium acetate, reagent grade or equivalent
82 Standards
8.2.1 Typically two method blanks, two matrix blanks, and eighteen matrix standards are prepared during the extraction procedure. See ETS-8-4.1.
9.0 SAMPLE HANDLING
Analys.is of SerEuTmSExstsra1ct Using ES/MS 600080 Page 30r9
9.1
Fresh matrix are stored in
csatapnpdeadrdasutaorveiaplrsepoarrceadpwpietdh
1e5acmhLancaelynstirsi.fugEexttruabcetseudntsitlaanndaalrydsiss.and
samples
9.2 aIfpapnraolxyismiastweillyl 4be Cd,eloaryeadt,reoxotrmactteemdpesrtaatnudraer,dsunatinldasnaamlypsliessccaannbbeepreerffroirgmeerda.ted at
10.0 QuaLITy ConTROL 10.1 Solvent Blanks, Method Blanks and Matrix Blanks
10.1.1
Solvent blanks, method blanks and matrix blanks are each batch to determine contamination or carryover.
prepared
and
analyzed
with
10.1.2 Analyze a method blank and a matrix blank prior to each calibration curve. 102 Matrix Spikes
10.2.1
Matrix spikes are prepared recovery efficiency.
and
analyzed
to
determine
the
matrix
effect
on
the
.T
10.2.2
Matrix spike duplicates are recovery for each analyte.
prepared
and
analyzed
to
measure
the
precision
and
the
.
102:3 `Amnianliymzuemaomaf2trsipxiksepsikpeeranbdatmcah.trix spike duplicate per forty samples, with a
10.2.4 tMhaetriinixtisalpickaeliabnradtimoantrciuxrvsep.ikAeddduiptliiocnaatlescpoinkceenctornacteinotnrsatwiiolnlsfamlaliynftahlelimnitdh-eralnogwe-of rangeofthe initial calibration curve.
10.3 Continuing Calibration Verifications
103.1 tChoentcianliubirnagticoanlicburravtei.on verifications are analyzed to verify the continued accuracy of
103.2
Analyze a mid-range of one per batch.
calibration
standard
after
every
tenth
sample,
with
a
minimum
11.0 CALIBRATION AND STANDARDIZATION 11.1 aAvnearlaygzeeotfhteweoxtrsatcatneddarmdatcruirxvesstawnidlalrbdes pplroitotretdobaynldinfeoalrlroewgirnegsesiaocnh(syet=ofmeyxt+rabc)t,s.weiTghheted
1x, not forced through zero, using MassLynx or other suitable software.
11.2 Isfttahnedacrudrcvuerdvoee(sifnnoetcemseseatryr)eqaunidrermeeanntalsy,zep.erform routine maintenance or reextract the
113 uFsoer tphuerplooswesenodfoafccthueraccayliwbhraetnioqnucanutrivteatriantghelrotwhalnevtehlseoffulalnarlayntgee,ofitt hmaeystbaenndeacredscsuarrvye.to
cEaxlaimbprlaeti:onwchurevneactotnesmipsttiinnggotfo tqhueansttiatnadtaeradpspfrroxoimmSatpeplby t1o0 1p0p0bopfpabnraaltyhteer,tgheannertahteefuall
rangeofthe curve (5 ppb to regression weightingofhigh
c1o0n0c0enptpbr)a.tioTnhisstawnidlalrdrse.duce
inaccuracy
attributed
to
linear
Analys.isofSerEuTmsExatsraict Using ES/MS
0V081
Pagedof9
12.0 PROCEDURES 12.1 Acquisition Set up
ese----------------
12.1.1 Click on start button in the Acquisition Control Panel. Set up a sample list. Assigna filename using MO-DAY-last digitofyear-sample number, assign a method (MS) for acquiring, and type in sample descriptions.
12.1.2 To create a method click on scan button in the Acquisition control panel and select
SIR (Single Ion Recording) or MRM. Set Ionization Mode as appropriate and mass
10 499 or other appropriate masses. Afull scan is usually collected along with the
SIRs. Save
product ion
facrqaugimseinttiaotnimoentihnofdo.rmIaftiMoSn /mMaSy
instruments
be collected.
arSeeeemMpilcoyreodm,asasddMiatisosnLalynx
R`eGaUcItDiEonTMOoniDtAorTinAg)A.CQUISITION for additional information and MRM (Multiple
12.1.3 sTytpaincdaalrldys tahnedaennaldystiwciatlhbaatscehtorfuenxtsreaqucetnecdembaetgriinxsswtiantdharadss.etofextracted matrix
4
12.+".1.4 sSaammpplle.es Saroelvaennatlbylzaendkwsisthhoaulcdonbteinaunianlgyzceadlipberraitoiodniccahlleycktoinmjoercitteodrafptoesrsiebvleeryantaelnytthe
.
carryover and are not considered samples but may be included as such.
12.2 Using the Autosampler
12.2.1 Set up sample tray according to the sample list prepared in Section 12.1.1.
12.2.2 Set-up the HP1100/autosampler at the following conditions or at conditions the analyst considers appropriate for optimal response. Record actual conditions in the
instrument logbook 12.2.2.1 Sample size = 10 pL injection
12.2.2.2 Inject/sample = 1
12.2.2.3 Cycle time = 13.5 minutes
12.2.2.4 Solvent ramp =
Time
MeOH
20mM
Ammonium acetate
[00min | a0% | 60% |
[ilomn| 00% | 10% | [20min | a0%| 60% |
12.2.2.5 Press the "Start" button.
12.3 Instrument Set-up
12.3.1 Refer to ETS-9-24.0 for more details. 12.3.2 Check the solvent level in reservoirs and refillifnecessary.
Analy's.isofSerEummsExetsract Using ne ESMS
Page Sf 600082
12.3.3
Check the tip.
thTehestatiinplsehssousltedeblecafplialtlwariythatntohjaegngdeodfetdhgees.proIbfet.heUtsipeiasnfoeuynepditeocebeto
check
unsatisfactory, disassemble the probe and replace the stainless steel capillary.
12.3.4 Set HPLC pump to "On". Set the flow to 10 - 500 uL/min or as appropriate.
aOpbpsreorxviemadtreolplyet1s0 cmoimniutnegsoutofthe tipofthe probe. Allow to equilibrate for
12.3.5 Taurorunnodnthtehetinpiotfrtoghene. prAobef.ineRmeiasdtjusshtoutlhde btepeoxftpehlelepdrwoibtehifnononimtirsotgeisn olbesaekirnvged
12.3.6 The instrument uses these parameters at the following settings. These settings may change in order to optimize the response:
12.3.6.1 Drying gas 250-400 liters/hour
12.3.6.2 ESI nebulizing gas 10-15liters/hour
12.3.6.3 HPLC constant flow mode, flow rate 10 -- 500 uL/min
12.3.6.4 Pressure <400 bar (This parameter is not set, it is a guide to ensure the
HPLC is operating correctly.)
<
12.3.7 Carefully guide the probe into the opening. Insert probe until it will not go any
.
+ further. Connect the voltage cables to the probe.
12.3.8 Print the tune page, with is parameters, and store it in the study binder with a copy
taped into the instrument log.
12.3.9 Uansailnygsitsohefcbriooslso-gfilcoawl cmaoturnitceesr.electrode inthe ES/MS source is recommended for the
12.3.10Click on start button in
MassLynx versions, see
the Acquisition Control
appropriate MassLynx
Panel (this may vary among.
USER'S GUIDE). Press the
start
button. Ensure start and end sample number includes all samples to be analyzed.
13.0 DATA ANALYSIS AND CALCULATIONS
13.1 Calculations:
13.1.4 Calculate matrix spike percent recoveries using the following equation % Recovery = OBbsearvecdReksulgt- rounResudlt x 100
Expected Result
13.15 Calculate percent difference using the following equation:
% Difference = ExpCoEnxeepe.ctCcaeldcCutolnatce.edCodne. x 100
13.1.6 Calculate actual concentrationof PFOS, or other fluorochemical, in matrix (g/mL):
(0g ofPFOS calc.fromstd.CurvexDilutionFactor) x Lug _
il Volume of
+mLofSurre
1000ng.
Final Volume (mL)
`Analys.isofScrEuTmSExStsra)ct Using ESMS
Pagesof9
000083
14.0 METHOD PERFORMANCE 14.1 mMaettrhioxdspDeceitfeicc.tioPnleLaismeitse(eMEDTLS)-8-a4n.d1L,imAitttoafcQhumaenntittaBt,ifoonra(LlOisQt)ingaorfe mceutrhreondt,vaanlaildyattee,dand
MDL and LOQ values.
142 Solvent Blanks, Method Blanks, and Matrix Blanks
14.2.1 Sloolwveesnttsbtlaanndkasr,dmientthheodcablliabnrkast,ioanncdumravterix blanks values are must be below the
143 Calibration Curves
14.3.1 The r* value for the calibration curve mustbe 0.980 or better.
14.4 Matrix Spikes
14.4.1 Matrix spike percent recoveries are must be within + 30%ofthe spiked concentration.
14.5 Continuing Calibration Verifications
"
145.1 Continuing calibration verification percent recoveries must be + 30%ofthe spiked
:
concentration.
146Ifcriteria listed in this method performance section isn't met, maintenance may be performed on the system and samples reanalyzed or other actions as determined by the analyst. Document all actions in the appropriate logbook.
14.7 Ifdata are to be reported when performance criteria have not been met, the data must be footnoted on tables and discussed in the textof the report.
15.0 POLLUTION PREVENTION AND WASTE MANAGEMENT 15.1 SpiapmepttleeweaxsttraectiswdaisstpeosaenddifnlbarmomkaebnleglsaoslsvceonnttiasidniesrspolsoecdatiendhiinghthBeTlaUbocroanttorayi.ners, and glass.
16.0 RECORDS
_--
16.1
Each page generated for a header or hand written on
tshteudpyagmeu:ststhuadvyeotrheprfoojlelcotwniungmbienrf,oramcaqtuiiosnitiinocnlmuedetdhoedi,therin
the
integration analyst
method,
sample
name,
extraction
date,
dilution
factor
(if
applicable),
and
16.2 Print the tune page, sample list, and acquisition method from MassLynx to include in the appropriate study folder. Copy these pages and tape into the instrument runlog.
16.3 Plot the calibration curve by linear regression, weighted 1; then print these graphs and store in the study folder.
16.4
Print data integration summary, and store in the study folder.
integration method,
and chromatograms,
from MassLynx,
16.5 AStutmamcarhimzeentdaAtfaoursainng esuxiatmapblleesooffatwsaurmem(aErxcyelsp5r.e0a)dsahnedets.tore in the study folder, see
Analys.isofSerEuTmSExStSra1ct Using ESIMS
600084
Page Toro
16.6
Back up electronic data to appropriate medium. `and location ofbackup electronic data
Record in study notebook the file name
17.0 TABLES, DIAGRAMS, FLOWCHARTS,AND VALIDATION DATA 17.1 Attachment A: ETS-8-5.1 Data summary spreadsheet.
18.0 REFERENCES 18.1 cFAoCmTp-oMu-n4d.s1f,ro"mExStrearcutmiofnoorfAPnoatlayssissiuUmsiPnegrfHlPuLoCr-oEolcetacntersouslpfroanayt/eMaosrsOtShpeerctFrloumoertorcyhemical 18.2 ETToSni-z9a-t2i4o.n0/,Ma"sOspeSrpaetcitornomaentderMaQiunattetnraonIcIetorfipltehequMaidcrruopmoalsesSAytsmtoesmsp"heric Pressure 18.3 The validation report-associated with this method is ETS-8-4.0 & 5.0-V-1.
19.0 AFFECTED DOCUMENTS
" :
19.1 E`TCSo-m8p-o4.u1n,ds"EfxrtormacSteiornuomffPorotAansasliyusimsPUesrfilnugoHroPoLcCt-aEnleescultfroonsaptreaoyr/MOatshserSFpleucotrroocmheetmriyc"al
"200 Revisions
----------
Revision
Revision
Numb1 er. Section 6.1.2 ClarificatioRneoafsHoPn1F1o0r0Resyvsitseimoncomponents.
04D/a02t/e99
pSleoctttiionng l1i1n.e1arAvreegrraegsesioofntawnod caudrdveeds,thneot1/sxtawnediagrhdtivanlgouefs,thaerecuursveed. for
Section 12.2.2.4 Clarificationofsolvent ramp.
Section 17.1 Changed from attachmentB to A.
Analys.is ofSerEuTmSEx8tsra)ct Using ESMS.
(0008s
Page 8of9
Laboratory Study #
STMtaeutsdryi:McaFtierniaallSolvent MAneatlhyotidcRaelvEiqsuoinp:ment System Number: FInisliernuammeent SoftwarrVersion: RSiSpqeuared Value: YDatIeneocfeEpxttracton/Analyst:
DateofAnalysis/Analyst:
[mr Joon |cog
Troi
miter T von]
SGlroopuepr/DToaskee:n fTraokmennferaomrtehgeressusdioynfooqludaetrion CSoanmcpelnetr:atTiaokne(nufgrmoLmyt:heTsaukdeynoflrdoemrthe Massy integration summary DIiniltuitailoVnoFlaucmteo:(mTLa):keTnafkreonmftrhoemsttuedysftoulddyerfolder Final Cone. (ugmLy: Calultebyd dividing th intial volume rom th concenzation
tachmenAt SummarySpreadsbost`Analy|sisofSerEuTmSEx5tr.a1ct Using ESAS
Pagers 00086
3M ENVIRONMENTAL LABORATORY
METHOD
ANALYSIS OF POTASSIUM PERFLUOROOCTANESULFONATE OR OTHER
FLUOROCHEMICALS IN LIVER EXTRACTS USING HPLC-ELECTROSPRAY/MASS SPECTROMETRY
Method Number: ETS-8-7.0
Adoption Date:
Author: Lisa Clemen, Glenn Langenburg
Approved By;
Revision Date:
Laboratory Manager
Date
Group Leader
Date
`Technical Reviewer
Date
1.0 SCOPE AND APPLICATION
1.1 HSPcLoCp-ee:leTchtirsomseprtahyo/dmaisssfosrptehcetraonmaeltyrsyi.sofliver extracts for fluorochemical surfactants using
1.2 Applicable Compounds: Fluorochemical surfactants or other fluorinated compounds, or other ionizable compounds.
1.3 rMeaptorrti.ces: Rabbit, at, bovine, monkey liver, or other tissues as designated in the validation
Word695
Analy.sisof LivEessExstraoct Using EMS.
Page laf 10
000087
2.0 SUMMARY OF METHOD 2.1 HThPiLsC-meeltehcotdrodsepsrcaryib/emsastshespaneacltyrsoimseotfrfyl,uoorroscihmielmaircaslysstuermfaacstaanptpsroepxrtiraatce.tedTfhreomanlailvyesrisusiisng
ptheerfpoerrfmleudorboyocmtoannietsourlifnognaatsein(gPlFeOiSo)n cahnairoanc,temr/izst=ic4o99f.a pAadrdtiitciuolnaarlfllyu,osroacmhpelmeiscamla,ysubceh as daentaelcytziendgudsaiungghatetrainodnesmofmtahses ssepleeccttreodmpeatreernttoiofnu.rther verify the identity ofacompound by
3.0 DEFINITIONS
3.1
Atmospheric Pressure systems allow for various
mIeotnihzoadtsioofnio(nAiPzTa)t:ioTnhebyMiutcirliozmiangssvaQruiaotutsrsoouIIrctersi,plperqoubaedsr,uapnodle
Pinrteesrsfaucrees.cheTmhiecsael iInocnliuzdaetibount(aArePn)o,t Tlihmeirtmeodstpor:aEyl,ecettcr.ospTrhaey iIoonniizzaattiioonnp(rEoScIe)s,sAitnmtohsepsheeric
techniques occurs at atmospheric pressure (i.e. not under 2 vacuum)
"
32
Electrospray Ionization (ES, pressure, whereby ions in solution
aErSeI)t:raansmfeertrheoddtoofthieongiazsatpihoanspeevrifaortimneydcahtaragtemdosdprhoeprlietcs.
:
These charged droplets are produced by the applicationofa strong electrical field.
33 (MSM/aMsSs):SpTehcterAoPmeItQruya,ttMraossII Strpiepcletrquoamdertuepro(leMSm)a,ssTaspnedcetrmomMeatsersiSspeeqcutirpopmedewteirthtwo
qmuaasdsrtuopoclhearmgaesrsatsieole(cmt/izve) daentdecstuobrsseqaunedntalcyoldleitseicotnedc.ell.ATsoinnsglaerMe Sselmecatyivbeelyedmipslcroiymeidnaftoerdiboyn
detection and these
ofrraagnmeinotnsmmaayybebesealneacltyezdedinitnhtehefirsset cqounaddrquupaodlreu,poflrea;gmented
in
the
collision
cell,
3.4
triplCeoqnuvaednrtuipoonlael(vpso.stZ-1s9p98r)ayutpilriozbe ea
interface: "Z-spray"
The latest modelsofMicromass conformation. The spray emitted
Quattro from a
II
pdirroebcetlyisaotrtthheogcoonnaelatpoertthuerce,onaetearpepratusrsei.ngItnhrtohuegchonavteonrttiuoonuasl pcaotnfhowramyaitniotnhetciosuanitemred
melaeicnttroednea.nceThaoreugthhetshaemceo.nfiHgouwreavtieorn,iZs-dsipffrearyencto,mtphoenmeentthsodasnodfcoonpveernattiioonna,lclceoamnpinogn,enatnsd are
ncootmpcaotmipbalteibwliethwoitthheornZe-sapnortahyers,ysbtuetmso,nleytcw.)ith similar systems (i.e. Z-spray components are
3.5 Mass Lynx Software: System software designed for the specific operation of these: 4Q.u0atvterrsoioInIst.ripAllelqvueardsriuopnoslaeresyssitmeimlasr.. CFuorrremnotrlyeMdeatsaislsLryenferhatsoWtihendmaonwusal95spaencdifWicitnodtohwesNT iGunisdter)u.ment (Micromass Quattro II triple quadrupole MassLynx or MassLynx NT User's
4.0 WARNINGS AND CAUTIONS 4.1 Health and Safety Warnings:
4.11 eUmspelcoayustiaovnowlittahgetohfe vaoplptraogxeimcaatbelelsy f5o0r0t0heVoplrtosb.e. When engaged, the probe
Analys_isof LivEerTESxt8ra0ct Using ESMS
Page20r10
600088
4.12
When handling and clothing.
samples
or
solventswear
appropriate
protective
gloves,
eyewear,
42 Cautions:
4.2.1 pOrpeesrsautreetehxecesoeldvsen4t00pubamrp,stbheelHoPw11a 0b0acwkilplreinsistuirateeofau4t0om0atbiacr (s5h8u0t0dopswin). If the back 4.2.2 Do not run solvent pumps to dryness
5.0 INTERFERENCES 1 Tstoormaigneimorizaenyinptaerrtfoerfeinncsetsrwuhmeenntaatnailoynztihnagtscaommpleess,inTceofnltoanctshwaillthnotthbeesuasmepdlefoorresxatmrpalcte
6.0 Equipment
"
6.1 E`mqoudiifpimceantitonlsistiendtbheelroawwmdaatyabaesmmoedtihfoiedddienvioartdioenrs.to optimize the system. Document any
6.1.1 Micromass Quattro II triple quadrupole Mass Spectrometer equipped with an
*
electrospray ionization source,
6.12
HP1100 low pulse and autosampler
solvent
pumping
system,
solvent
degasser,
column
compartment,
7.0 SUPAPNDLMAITEREIASLS 7.1 Supplies
7.1.1 High purity grade air regulated to approximately 100 psi (house air system) 7.1.2 HinPtLheCraanwalydtaitcaal column, specifics to be determined by the analyst and documented 7.13 Capped autovials or capped 15 ml centrifuge tubes
8.0 REAGENTS AND STANDARDS 8.1 Reagents
8.1.1 Methanol, HPLC grade or equivalent
8.12 M1,iolrlieq-uQiTMvawlaetnet,r a(nAdSTbeMptryopveidI)e,dalblywaatMeirlulsie-Qd TiOn tChiPslmusetshyosdtesmhoourlodtbheerAvTenSdMortype 8.13 Ammonium acetate, reagent grade or equivalent
8.1.3.1 When preparing different amounts than those listed, adjust accordingly. 8.13.2 2.0 mM ammonium acetate solution: Weigh approximately 0.300 g
ammonium acetate. Pour into a 2000 mL volumetric container containing 2te0m0p0ermatLurMei.lli-QTM water, mix until ll solids are dissolved. Store at room
Anali|sisofLivEerTESx$tr7ac0t Using ESMS
Page30f10
C0008Y
82 Standards 8.2.1 Typically two method blanks, two matrix blanks, and eighteen matrix standards are prepared during the extraction procedure. Refer to ETS-8-6.0.
9.0 SAMPLE HANDLING 9.1 Fresh matrixstandardsare prepared with each analysis. Extracted standards and samples.
are stored in capped autovials or capped 15 ml centrifuge tubes until analysis 9.2 tIefmanpaelryastiusrewi,llorberedferilgaeyreadt,edexattraacptperdoxsitmaantdealryds4anCd,suanmtiplleansalmyasyisbceasntboerepderatforromoedm.
10.0 QUALITY CoNTROL 10.1 Method Blanks and Matrix Blanks
10.1.1 Solvent blanks, method blanks, and matrix blanks are prepared and analyzed with each batch to determine contamination or carryover.
"
10.1.2 Analyze a method blank and a matrix blank prior to each calibration curve.
10.2 Matrix Spikes
10.2.1 Matrix spikes are prepared and analyzed to determine the matrix effect on the recovery efficiency...
10.2.2 Matrix spike duplicates are prepared and analyzed to measure the precision and the recovery for each analyte.
10.2.3 Analyze a matrix spike and matrix spike duplicate per forty samples. With a `minimum o2f spikes per batch.
10.2.4 Matrix spike and matrix spike duplicate concentrations will fal in the mid-range of the initial calibration curve. Additional spike concentrations may fall in the lowrangeofthe initial calibration curve.
10.3 Continuing Calibration Checks
10.3.1 Continuing calibration verifications are analyzed to verify the continued accuracy of the calibration curve.
10.3.2 Analyze a mid-range calibration standard every tenth sample, with a minimumofone: per batch.
11.0 CALIBRATION AND STANDARDIZATION 11.1 Analyze the extracted matrix standards prior to and following each setofsample extracts.
`The averageoftwo standard curves willbe plotted by linear regression (y = mx +b), weighted 1/x, not forced through the origin, using MassLynx or other suitable software 11.2 Isfttahnedacrudrcvuerdvoe(eisfnnoetcemseseatryr)eqaunidrermeaennatlsyzpee.rform routine maintenance or reextract the
Analy.sisof LivEerTESx8tr7ac0t Using ESMS
Page 40710
6006090
11.3 uFsoertphuerploosweseonfdoafcctuheraccayliwbhraetnioqnucauntrivteatriantghelrotwhalenvtehlesoffulalnarlayntgeeo, fittmhaeystbaenndeacredscsuarrvye.to
cEaxlaimbprlaet:ionwchurevneactotnesmipsttiinnggoftothqueansttiatantdearadpspfrorxoimm5atpeplby t1o0 1p0p0bopfpabnarlatyhteer,tgheannertahteefuall
rangeofthe curve (5 ppb to regression weightingofhigh
1c0on0c0enpptbr)a.tioTnhisstawnidlalreddsuce
inaccuracy
attributed
to
linear
12.0 PROCEDURES 12.1 Acquisition Set up
12.1.1 Set up the sample fst.
12.1.1.1 lAeststiergonfathseamapllpehalbsettfistlaerntaimneguwsiitnhgaMO-DAY-last digitofyear-increasing. 12.1.1.2 Assign a method (MS file) for acquiring 12.113 Assign an HPLC program (Inlet file) 12.1.1.4 Type in sample descriptions and vial position numbers
" :
12.1.2 sTpoecctrreoamteetaermheetahdoidngcsliacnkdonsemleectthoSdIRin(StihnegAlceqIuoinsiRteicoonrcdoinntgr)olorpaMneRl Mthe(nMumlatsisple
+. Reaction Monitoring). Set Ionization Mode as appropriate and mass to 499 or
*
aoctqhueirsiatpipornopmreitahtoed.masIsfesM.S/AMfSullinssctarnumisenutssuaalrley ecmopllleocyteedd,aaldodnigtiwointahl tphreodSuIRcst.ioSnave
GfrUaIgmDeEntaTtOioDn AinTfAormAaCtiQoUnImSaIyTbIeOcNolfloecrtaedd.ditRioenfaelritnofoMrimcartoimonasasndMaMsRsML.ynx
12.1.3
Typically the analytical matrix standards
batch
run
sequence
begins
and
ends
with
a
setofextracted
12.1.4 aSfatmeprleevserayreteanntahlyszamepdlew.ithSo2lcvoennttibnulianngkscaslhioburladtibonevaenrailfyiczaetdiopneriinojdeicctaeldlysttaondmaornditor
possible such.
analyte
carryover
and
are
not
considered
samples
but
may
be
included
as
12.2 Using the Autosampler
12.2.1 Set up sample tray according to the sample list prepared in Section 12.1.1
12.2.2 aSneatl-yuspttchoensHiPd1e1r0s0a/papurtoporsiaamtpelfeorraotptthiemaflolrleoswpionnsgec.onRdeictoirondsaocrtuaatlccoonnddiittiioonnsstihnethe instrument logbook:
12.2.2.1 Sample size = 10 uL injection
1222.2 Inject/sample = |
12.2.2.3 Cycle time = 9 minutes
Analis_is ofLivEerTESx8tr7ac0t Using ESS
Page sof 10
600091
12.2.2.4 Solvent ramp conditions
Time
MeOH
20mM
Ammonium acetate
[000min | a0% |" 60% | (omn|a0% | 60% | [45min 10 |55%%|
[65min | 0% | 5% |
Dom 1a0% | 60% |
12.2.2.5 Press the "Start" button.
12.3 Instrument Set-up _
123.1 TRreifpelretQouEaTdSr-u9p-o2l4e.M0,as"sOpSepreacttiroonmeatnedrMFaiitnttedenwaintcheoanftAhtemoMsipchreorimcasPsreQsusautrtero II Tonization Source," for more details.
1
12.3.2 Check the solvent level in reservoirs and refillif necessary.
"
12.3.3 Check the stainless steel capillary at the endofthe probe. Use an eyepiece to check
tunhseattiip.sfaTcthoeryt,ipdsihsoauslsdembbelefltahtewiptrhobneoajnadggreedpleadcgeest.heIsftatihneletsisp sistefeolucnadpitlloarbye.
12.3.4 Tum on the nitrogen
12.3.5 Open the tune page. Clicks on operate to initiate source block and desolvation
`heaters.
12.3.6 Open the Inlet Editor.
12.3.6.1 Set HPLC pump to "On"
12.3.6.2 Set the flow to 10- 500 uL/min or as appropriate
12.3.6.3 Observe droplets coming outofthe tipof the probe. A fine mist should be
expelled with no nitrogen leaking around the tipofthe probe. Readjust the tipofthe probeif no mist is observed
12.3.6.4 Allow to equilibrate for approximately 10 minutes.
12.3.7 The instrument uses these parameters at the following settings. These settings may change in order to optimize the response:
12.3.7.1 Drying gas 250-400 liters/hour
12.3.7.2 ESI nebulizing gas 10-15 liters/hour
12.3.7.3 HPLC constant flow mode flow rate 10 ~ 500 L/min 12.3.7.4 PHrPeLssCuries <op4e0r0atbianrg(cTohrriesctplya.r)ameterisnot set, it is a guide to ensure the
12.3.7.5 Source block temperature 150
12.3.7.6 Desolation temperature 250
AnalisisofLivEerTExtSract Using ESMS
Page of 10
000092
123.8 Print the tune page, with its parameters, and store it in the study binder with a copy taped into the instrument log.
123.9 Click on start buttonin the Acquisition Control Panel (this may vary among eMnadsssLaymnplxevnerusmibonesr,irnecfleurdteos aaplprsoapmrpilaetsetMoabsesLanyanlxyzUeds.er's Guide). Ensure start and
13.0 DATA ANALYSIS AND CALCULATIONS 13.1 Calculations:
13.14 Calculate matrix spike percent recoveries using the following equation:
% Recovery = OB bsea rvec dReEk sxupleg tc-ter d Reo sultuRnesud lt x 100 13.15 Calculate percent difference using the following equation:
% Difference = Exp ConExce p.e-cCtc aeldcCut olnact.ee dCod nc, x 100
"
13.1.6 Calculate actual concentrations in matrix (g/g):
.
?
(ng ofPFOScalc.fromstd, Curvxe Dilution Factor) x _Lug
. (InitialWFieniaglhVtoolfuLmieve(rm(Lg))
1000 ng.
14.0 METHOD PERFORMANCE 14.1 mMaettrhioxdspDeceitfeicc.tioRnefLeirmitto(EMTDS-L8)-a6.n0d,LAitmtitacohfmQeuannttiBtaftoiro2lni(stLiOnQgo)facruermreetnhtovda,liadnaatlyetdeM,DaLn.d
and LOQ values. 14.2 Solvent Blanks, Method Blanks and Matrix Blanks
14.2.1 iSnotlvheenctalbilbarnaktsi,onmecutrhvoe.d blanks, and matrix blanks must be below the lowest standard 143 Calibration Curves
14.3.1 The r* value for the calibration must be 0.980 or better.
14.4 Matrix Spikes 14.4.1 Matrix spike percent recoveries must be within + 30%ofthe spiked concentration.
145 Continuing Calibration Verification 14.5.1 Continuing calibration verification percent recoveries must be within 30%ofthe spiked concentration.
14.6 Ifcriteria listed in the method performance section are not met, maintenance may be apnearlyfsotr.meDdoocnumtheentsyaslteamctainodnssianmptlheesaprperaonparliyazteedloorgboothoekr. actions as determined by the
Analys_isofLivEeTrSExstnr0act Using ESS 000093 Page of 10
14.7 fIfodoattnaotaerdeotno tbaeblreespoarntdeddiwshceusnsepderinfotrhmeatnecxet ocrfittehreiarehpaovretnot been met, the data must be
15.0 POLLUTION PREVENTION AND WASTE MANAGEMENT 15.1 pSiapmepttleeweaxsttraectiswdaisstpeosaenddifnlbarmomkaebnleglsaoslsvceonnttiasidneirsspolsoecdatiendhiinghthBeTlaUbocroanttorayi.ners, and glass
16.0 RECORDS
16.1 hEeaacdherpaogrehgaennderwartietdtefn ooanr tshteudpyagme:uststhuadvyeotrheprfoojlelcotwninugmbienrf,oramcaqtuiiosnitiinocnlmuedetdhoedi,ther in the
integration analyst.
method,
sample
name,
extraction
date,
dilution
factor(ifapplicable),
and
16.2 aPrpipnrtoptrhieattuensetpuadgyef,olsdaerm.pleColipsy, tahnedseacpqaugiseistiaonndmteatpheoidntfortohmeMiansstsrLuymennxttrounilnocgl.ude in the
"
163 Psltoortetihnetchaelisbtruatdiyonfocludrerv.eby linear regression, weighted 1/x, then print these graphs and
:"
16.4
Print data integration summary, and store in the study folder.
integration method, and chromatograms from
MassLynx
165 ASutmtmaacrhimzeentdaAtafuorsianng esuxiatmapblleesooffatwsauremm(aErxcyeslp5r.e0a+d)shaenedt store in the study folder, refer to
16.6
Back up electronic data to appropriate medium. and locationofbackup electronic data.
Record in study notebook the file name
17.0 TABLES, DIAGRAMS, FLOWCHARTS, AND VALIDATION DATA 17.1 Attachment A: ETS-8-7.0 Data summary spreadsheet
18.0 REFERENCES 18.1 FCAoCmTp-oMu-n2d.s1,fr"oEmxtLriavcetrifoonrofAnPaoltysaisssiUusminPgerHfPlLuCor-oEolcetcatnreossulpfroanya/tMeaosrsOStpheecrtrFolmueotrrocyh"emical 18.2 ETToSni-z9a-t2i4o.n0/,Ma"sOspeSrpaetcitornomaentderMaQiunattetnraonIcIetorfitplheequMaidcrruopmoalsesSAytsmtoesmsp"heric Pressure 183 The validation report associated with this method is ETS-8-6.0 & 7.0-V-1
9.0 AFFECTED DOCUMENTS
_
19.1 ECToS-m8p-o6u.n0,ds"EfxrtormacLtiivoenroofrPFoltuaisdsfiourmAPnearlfylsuiosrUosocitnagneHsPuLlCf-oEnlaetcetorroOstphreary/FMlausosrochemical
Spectrometry"
Analys_isofLivEerTESx8tr7ac0t Using ESMS
Pages of 10
0006094
20.0 Revisions ReNvuimsbieorn
Reason For Revision
--_ ReDvaitsieon
AnalyS_isofLivEerTESxt$r7ac0t Using ESMS.
Page 9of 10
600095
Laboratory Study #
TseusdMoral: MMaesoidFRienrlsSoonlvent AInasattryuimceanltESqoufiwpamreenVteSnytsotenm Number: RFSiqnuaarned Vale SVionee: DfatmeoefBtxrhecwtiionv/Ainlyest:
Broosu
Conc5e:ntration | ATWe | DYiacoanr
GSSahrroaoppuelephTesaskTe,askTeTrnuotferTnoomoethnertseepyselfayteorudero CTDooinicoelnnWtreFaatgcito:onr:(TsaTkgaek:nenoTfomkoemtnhfheesoosuytdheyFoMfladisytxgration sma: Final Con. (10: Cacuted by diving he iil solu romtheconnrion
Atachment A; Summary SpeadshctAnalysis of LEriEsxvat0eUsring ESMS
-
*
000096N Page 00110
S3RM EERNVYIRROONNVMEENNTAALLLLAABBOORRAATTOORRYY
~~~
METHOD
SULDFEOTNEYRLMAIMNIADTEIO(NPFOOFSPA)E,RFALNUDOPREOROFCLTUAONREOSOUCLTFAONNOAATTEE(P(FPOOSA)A,)PEINRWFLAUTOERROOBCYTLAINQUEIDSOLID EXTRACTION AND HIGSHP-EPCETRRFOOMREMTARNYCE(HLPILQUCI/DMCSH/RMOSM)ATOGRAPHY/TANDEM MASS
Method Number: ETS-8-154.0
Adoption Date:
Author: Kristen J. Hansen/Harold O. Johnson Approved By: William K. Reagen, Kent R. Lindstrom
Revision Date:
-- William K. Reagen, Laboratory Management -- Date
Kristen J. Hansen, Ph.D. Group Leader
Date
Kent R: Lindstrom, Technical Reviewer
Date
MS Word 97
ETS8-1540
Page lof 17
DeterminationofPFOS, PEOSA, POAA in Wate by Liquid-Solid Extraction and LOMSMS
600097
110.0 ScSoCOrPeEaAvNpDAAePpPuLIiCcAaTImOeNy
000000000
1.1 TdehtiesrmmientahtoidonproofvPiedrefslcuoolrloeoccttiaonn,c esxutlrfaocntaitoen,(PaFnOdSa)n,alPyetricfalluoprroooccetdaunreeSsuflofrotnhyelamide
(PFOSAY), and water samples.
Perfluorooctanoate
(POAA)
in
groundwater,
surface
water,
and
drinking
12 MTheitshomdesthtoodbewaPsropproespeadreadt a4c0cCorFdRinPgatrott1h3e6EoPrAPadrotc1u4m1e"nt(,se"eGRueifdeerliennecse a1n8.d1)F,oramndatisfor sbualsfeodnaitnep(arPtFOoSn)t,hePerrefplourotr"oMocettahnoedsouflfAonnayllyasmiisdefo(rPtFheOSDAe)t,eramnidnaPteirofnluoofrPoeorcftlaunooraotoectane (POAA) in Water" (see Reference 18.2).
2S 200 Sa UMMARYe OF METv HOD orMewos
21 Wfaacitleitry.saPmFpOlSes, aPrFeOcSoAll,ecatnedd PfrOoAmAa sairteeoefxtirnatcetreedstfraonmd 4sh0imppLedwactoelrdstaomapnleasnaulsyitincgalC,
suosliindgpmheatsheaneoxlt.raScetpiaonra(tSioPnE,) icdaernttriifdigceast.ioTn,heancdommpeoausunrdesmaernetealrueteadccformopmltihseheC,d,bcyarhtirgihd-ge,
performance liquid chromatography/tandem using multiple response monitoring (MRM).
mass
spectrometry
(HPLC/MS/MS)
analysis
r`Tehsepocnosnecoefnttrhaetiqounoanfteiatacthionidieonntipfrieodduccoemdpobnyetnhtatiscommeapsouurnedd tboytcheomMpSarriensgptohneseMofSthe
quantitation ion produced (extemal standard).
by
the
same
compound
in
an
extracted
calibration
standard
3300 bDeEFIeNIeTIOnNS ~~
OOOOOO
3.1 Analytical Sample--A portion of an extracted Laboratory sample prepared for analysis.
32 CexatlriabcrtaetdiaocncSortdainngdatortdh--isAmseotlhuotdi.onTphreepcaarleidbrfatrioomn tshteanWdoarrkdisnogluStitoannsdaarrde u(sWeSd)taond
calibrate the instrument response with respect to analyte concentration.
33 lDaubpolriactaotrey aSnadmpalnael(yzDeSd)s--epAarsaetpealryatweitahliiqdueonttiocafal psraomcpeldeu,retsa.keAnnailnytshiesoanfalDyStiscaclompared
ptorotcheadtourfest,hebuftirsntoatlwiiqutohtsgaimvpelaemceolalseucrtieoonf, pthreesperrevcaitisoino,n aosrssotcoiraatgeedpwriotchedluarbeosr.atory
34 lFaibeolrdaBtolraynaknCdotnrteraoteldSaasmapslaemp(lFeBi)n--aTllypreespIewctast,erinpcllaucdeidnginexapsoasmuprleetocosnatmapilneirnginsitthee
cdoentdeirtmiionnesi,fstteosrtagseu,bsptreasnecrevsaotrioonthaenrd
all analytical interferences
procedures. The are present in the
purpose of the FB field environment.
is
to
MSWord97
ETS81540
Page20r17
Determination ofPFOS, PFOSA, POA in Water by Liquid-Sold Extraction and LOMSMS
000098
3.5 FainedlpdlDaucpeldiucnadteer(iFdeDn)ti--caAl sciarmcpulmesctoalnlceecsteadndintdreuaptleidcaetxeacattltyhethseasmaemteimtehraosugthheoustamfipellde amnedasluarbeoroaftotrhye pprroecciesdiuornesa.ssAoncailaytseidswoifthFDsacmoplmepacroelldecttoiothna,tporfestehrevafitrisotnsaamndplsetogriavgees, aas well as with laboratory procedures.
3.6 oFfietlhdeMtaartgreitxanSapliyktees(aFreMaSd)de--dAisnatmhpelfeieclodlaltecttheedtiinmdeuopfliscaamteplteo wcohlilcechtikonn.owTnhequFanMtSities
ssahmopulled.bTehsepiFkMedSatisaapnparloyxziemdatteolaysc5e0rt-a1i5n0i%foafnytmheaterxipxeecftfeedctasn,ailnytteerfceornecnecnetsr,aotriosntaibniltihtey
issues may complicate the interpretation of the sample analysis.
37 qFuiaenltditSipeiskoefCtohenttraorgletSaanmapllyete(sFarSeCaSd)d--edAninatlhiequfoiteoldftatyptheeItwiamteoerfstoamwphilcehcoklnloecwtnion (at
aanndapapnraolpyrzieadteexcaocntcleyntlriaketiaonsatmopbleedteotdeertmeirnmeidnebywthheethperrojaecltoslseoadf).anTahleytFeScCoSulids beextracted
attributed to sample storage and/or shipment.
38
LquaabnotirtaiteosorfytChoenttarrogletSaanmapllytees(aLrCeSa)dd--eAdnianltihqeuoltaboofrattyoprey.I
water to which Two levels are
known included,
one
aatnotthheeLr OcoQnc(eanptprraotxi.on25tPogb/emdLe)t,erthmeinoetdhebryattahecpornocjeencttraletaido.noTfheapLpCroSx.is 1ex0t0r-a2ct5e0dPagn/dmL or
aconnatlryozle,danexdawcthleythleikretahelalbaobroartaotroyrysiasmpclapeatboledeotfermmaikniengwhaectchuerrattehememaestuhroedmoelnotgsyaits tihne
required method detection limit and higher.
39 Laboratory Sample--A portion ofa sample received from the field for testing.
3.10 mLeiamsiutroefdDaentdecrteipoonrt(eLd OwDit)h--9T9h%ecloonwfeisdtecnocnectehnattrathteioannoaflyatne caonnacleynttertahtaitocnains bgreeater than
zero. The statistical
LOD can be calculations.
determined
in
several
ways,
including
signal-to-noise
ratio
and
31 cLoinmcietntorfatQiuoannt(iUtLatOiQo)n t(haLtOcQa)n--bTehreelilaobwleysatcchoinecveendtrwaittihoinn(tLheLOspQe)ciofriehdiglhimeistts of
precision and accuracy during routine operating conditions.
cNoontcee:ntTrhaetiLonLOiQseilsegcteenderaaslltyheSl-o1w0esttimneosn-tzheerLoOsDt.anFdoarrdmianntyheancaallyitbersa,titohnecLurLveO.QHaonwaelvyetre, it
`may be LLOQs
naoremimnaatlrliyx-cdheopseenndewnitt.hin
these
stated
guidelines
to
simplify
data
reporting.
Sample
3.12 aMnaatlryitexsSapriekaed(deMdSi)n--tAhenlaabloirqautootryo.faThsaemMplSe,istoexwthriaccthedknaonwdnanqaulanytzietdieesxaocfttlayrgleitke a
alnaabloyrtaitcoarlyrsesaumlptsl.eTthoedebtaecrkmgirnoeuwnhdectohnecrentthreastaiomnpsleofmathteriaxnacloynttersibiunttehsebsiaasmptloethmeatrix.
must be determined in a separate background concentrations.
aliquot
and
the
measured
valus
in
the
MS
corrected
for
313 MsaemtphloedinBclluadninkg--eAxnpoasluiqrueottooaflltygpleasIswwaartee,r ethqautipismetnreta,tesdolevxeancttsl,yrleiakgeenatsl,abionrtaetronrayl
MS
standards, Word 97
and
surrogates
that
are
used with other ETS8-1540
laboratory
samples.
The
method blank Page Jof17
Determinationof PFOS, PFOSA, POAA inWater by Liquid-Solid Extraction and LC/MS/MS
(00099
is used to determineiftest environment, the reagents,
substances or other or the apparatus.
interferences
are
present
in
the
laboratory
3.14 Museetdh1o0desDteatbelcisthioanLLOimDitva(luMeD.LT)heDesttaetirsmtiicnalaltyicoalnc--uOlnateeodfmsienviermaulmpraomcoeusnsetsoftahant may be
azenraol.ytTehitshattecramnibseusmueaalsluyraesdsowciitahte9d9w%itchotnhfeidEePncAedtehfaitnitthieonreipnor4t0edCvFaRluPearistg1r3e6ater than
Appendix B.
3.15 Sinatmenpdlede--toAresparmepsleentisthaesomrailglinpaolrtsioounrcceolmlaetcetreidalf.roma larger quantityofmaterial 3.16 pSrpeipkairnegtShteowcokrkSitnagndsatarndda(rSd.SS)--A solution prepared from stock standards used to 3.17 SIatboocrkatSotraynwdiatrhdan(SaSss)a--yAedcroenfceernetnrcaetecdomspolouutnidon.of a single analyte prepared in the 3.18 WfroormkSiSnsgaSntdandidlaurtded(aWsSne)e--dAedstooluptrieopnaoref scaelviebrraaltainoanlsyttaensdparredpsaarnedd oitnhtehrerleaqbuoirraetdory
analyte solutions.
2W 400 iWARk NINM GS ANn D CAg UTIOs NS awoCaovions 41 Health and Safety Warnings
4.1.1 Tprheeciasceultyedaentdercmhirnoendi;chtoowxeicvietry,ocfatchhe sshtoanudladrbdes tfroerattheidsamseathpootdenhtaivael nheoatlbtehen hazard.
4.1.2 SUanmkpnloewcnonstaamipnleerss smhaoyulcdonbteaionpehniegdh cinonacehnotordatainodnshofanvdolleadtiwliethtogxliocvceosmtpoounds. prevent exposure.
4.1.3 cTuhrerelnatboarwaatroernyeisssorefsplooncsailbrleegufolratmiaoinnstraeignairndgi2ngsatfhee whoanrdklienngvoifrotnhmeecnhteamnidcaals suhsoeudlidnbtehiasvmaeitlhabolde. tAo arllefpeerresnocnenefilleinovfomlavteedriianltshaefseetyandaaltysaessh.eets (MSDS)
25)0 [IINvTeEeRrFeERReENNCCEBSS
5.1
During extraction and liquid-solid extraction
analysis, devices.
major
potential
contaminant
sources
are
reagents
and
52 uAlnldemratceornidailtsiounsseodfianntahleysainsalbyysersunshnailnlgbmeedtehmoodnsbtlarnaktse,d to be free from interferences
53 T`meafylocnausceonitnatienrifnegremnacteesraianldss(hc.ogu.ldcanpost, bweasuhsebdotdtulreis)ngcocnotllaeicntifolnu,osrtoocroagmep,ouexntdrsacwthioinc,hor
analysis of the samples.
MS Word 97
ETS81540
Pagedof17
Determination ofPFOS, PFOSA, POAA in Wate by Liuid-Solid Extraction snd LOMSMS(, 00.4. 00
6.0 EQUIPMENT, SUPPLIES, AND MATERIALS
pNoetref:orBmraanncde nmaamyebse, saucphpileievresd,uasnidngpaarptpanruamtbuesrasnadrmeaftoerriialllusstortahteirvetphuarnptohsoesseosnpleyc.ifEiqeudihvearlee,ntbut
rdeemsopnsotnrsatiiboinoolffittheyequilavbaolreanttorpye.rformance that meets the requirementsofthis method is the
61 Sampling Equipment
6.1.1
Sample collection screw cap.
bottles--LDPE
(e.g.,
NalgeneTM)
narrow-mouth
bottles
with
Note: 6.1.2
Do not use Coolers
Teflon bortles or Teflon for sample shipment.
lined
caps.
6.13 Ice for sample shipment.
6.1.4 aBcotctolredsinmgustto tbheislomte-tcherotdi.fied to be free ofartifacts by running Method blanks
62 6L2a.b1oratBoarlyanEcqeu,iapnmaleynttica(lEx(tdriaspcltaiyonatalnedastAn0a.l0y0t0i1cga)l,)Mettler.
622 Vacuum pump, Bhi.
623 Visiprep vacuum manifold, Supelco.
62.4 62.5
SSeOpmLPadkisVpaocsabbelce (p1ogl)yp1rCo,pyclaretnreidcgeenstr(ipfaurgte#tWubAesT,0V3W6R7.95),Waters.
62.6 62.7
D1i5smpoLsadbislpeomsiacbrloeppiopeltytpersop(y5l0e-ne10ce0nLt,ri1fu0g0e-2t0ub0eusL,)V, WDRr.ummond,
628 6.2.9
HClyapsesrcAarpbipdertoteps-ianngduvaorlducmeotlruimcnfl(a4skmsm,)va(rpioaurs#t. 844017400), Keystone.
6.2.10 62.11
S1t2a5nmd-LalLoDnePEdronpa-rirnogwu-amroductahrtbroitdtglees,hoNladlegre,neK.eystone.
6.2.12 62.13
2HmPLLCclpeaurmHpP(LLCCIv0iAalDk)i,t (Schaitm#ad5z1u8.1-3400), Hewlett Packard.
6.2.14 6.2.15
LStCa/nMdaSr/dMlSabaenqduHipPmLenCts(ygsrtaedmusa,taesddceyslcirndiebresd,idnissepcotsiaobnle10t.u1b.es, etc), various.
63 Equipment Notes
63.1 Irnecorodmemretnodaevdoi(dtucboesn,tapmiipnetatteiso,n,cict.h)e useofdisposable labware is highly
63.2 vTieafllsoonrocraTpesflfoorn-tlhienHedPcLoCntaaiunteorssaomrpelqeurimpumsetntn,otinbceluudsiend.g Teflon-lined HPLC
63.3 tThyrpoeugIhwaatHeyrpuesrecdardburgiunagrdthceoslaummpnleusainndgsataHnPdaLrCd pexutmrpa.ctiTohnisshwoautledr biserfeifletrerreedd
634
0 as "filtered Itis necessary
ttyopcehIewcaktetrh"e,sohlevreeanfttse(rmientthhainsorle)pofrotr
the
presence
of
contaminants
(feosupnedcitaollbye PunOsAuAit)abblye
LC/MS/MSprior for use.
to
use.
Certain
lot
numbers
have
been
63.5 cUasleibdriastpioonsasbtlaendmaircdrsopainpdetmtaetsrioxr psippiektetse.s to aliquot standard solutions to make
MS Word 97
ETS81540
Page sof 17
DeteminaionofPROS, PFOSA. POAA in Waterby LiquidSoid Exton snd LIMSIMS(3.104
7.0 REAGENTS AND STANDARDS
Nmoatye:beSuapcphliieevresdaunsdincgatcahleomgincuamlsbeorbsiaairneedfofrriolmlusottrhaetrivseupppulripeorss.esDoonlyn.otEuqsueivalaelsesnterpgerrafdoeromfance
chemical than those sed.
7.1 Chemicals
7.1.1 7.12
AMemtmhoannoilu(mMAecOeHt)at,e,HRPeLaCgegnrtadger,adJeT, BSaikgemra,-ACladtrailcohg,NCoa.taJlTo9g09N3o-.2A.-7330.
7.13 7.1.4
SWaotdeiru,mtTyhpieosI,ulpfraetpea,reRdeaigne-hnotusger.ade, JT Baker.
72 Standards
7.2.1 7.2.2
PPeortfalsusoiruomocptearnfelusourlofoocntyalnaemsiudlefo(nsaeteeA(tsteaecAhtmteancthAm,enFtigAu,reFi2g),ure 1).
72.3 Ammonium perfluorooctanoate (see Attachment A, Figure 3).
73 Reagent Preparation
73.1
250mg/mL sodium thiosulfate solution thiosulfate in 100mL reagent water.
(Extraction)--Dissolve
25gof
sodium
73.2 41001%.0mLewtihtahnroelag(eEnxttrwaatcetri.on)--Measure 400mL methanol and adjust the volume
73.3 a1c0et0amteManadmdmiossnoilvuemianc1e.t0aLtoefsorleuatgieonnt (wAatnearl.yDsiilsu)te--Wteheig1h070.m71M osofluatmiomnobnyiuam
factor A
of
50
to
make
the
2mM
ammonium
acetate
solution
used
for
mobile
phase
mNaoitnet:aiAnletde.mative volumes may be prepared as long as the ratios of the solvent to solute ratios are
7.4
Spiking 74.1
Stock Standard 100ug/mL each
(SSS) PFOS,
Preparation PFOSA, and
POAA
SSSs--Weigh
out
10mg
of
paunraliyttyi9ca0l%st=a8n.da3r5dm(gcoCryrFe,c,tSe0d,f-o)rapnedrcdeinltutsealttoa1nd00pmurLitwyi--tih.cm.e,th1a0nmolgiCn,aF,1,0S00,mKL
vfoorluemaecthriacnafllyatsek.. STtroarnesfseorluttoioans12in5amLreLfrDigPeEratbootrtalte.4Pr4e2paCrefaoasrepmaarxaitemusomlution
742 pIeprgio/dmLofm6ixmeodntShsSSf--roAmdtdhe1d.a0tmeoLfepraecphaorfattihoen1.00ug/mL SSSs (from 7.4.1) toa
743 01.010umgL/mvLolmumiexterdicSfSlSas--kAadnddb1ri0n.g0muLpotfotvhoelu1m.e0pwgi/tmhLm-emtihxaneodl.solution (from
744 70..40.12)ug10/maL1m0i0xmeLdvSoSluSm--etArdicdfl1a0s.k0amnLdofbrithneg 0u.p1tsogv/omlLu-mmeixweidthsomleutthiaonno(lf.rom
7.45 S7.t4o.r3a)gteoCao1nd0i0tmiLonvsol--uSmteotrreicalfllaSsSkSasnidnbarirnegfruigpertaotvorolinum1e2w5imtLh LmeDtPhaEnoblo,ttles at
442C foramaximum periodof 3 months from the date of preparation.
MS Word 97
ETS81540
Page6of 17
Determination of PFOS, PFOSA, POAA in Waby tLiqueid-Srolid Extraction and LC/MS/MS
000102
75 CalibrationStandards
7.5.1 o1u0t01u0gm/gmoLfeaancahlyPtiFcOaSl,stPaFndOaSrAd,(caornrdecPteOdAfAorspteorcceknsttsaanltdaarndd spuorliutty)ioannsd--dWieluitgeh
1L0D1P0E0bmoLttlwei.thPrmeeptahraenaolseipnaara1t0e0smolLutvioolnumfeotrreiacchflaasnka.lyTtrea.nsSfteorrteosoalu1t2iSonmsL.in a
refrigerator preparation.
at
42C
for
a
maximum
period
of6
months
from
the
date
of
752 (Ifprgo/mm7L.5W.1o)rtkoiang10S0tmaLndvoalrudm--etArdidc f1l.as0kmLanedacbhroifntg hupet1o0v0oilgu/mmeLwSitShsmoelutthiaonnosl.
753 0(f.rIopmg/7.m5L.2W)otroaki1n0g0SmtLanvdolaurmdet--rAicdfdlas1k0a.n0dmLborfintghuep1t.o0vgo/lmuLmemiwixtehdmseotlhuatniooln.
754 0(f.r0o1mug7./5m.L3)Wtoorak1i0n0gmSLtavnolduamredtr--icAdfldask10an.d0mbLroifntghuep t0o.1vuogl/ummLe wmiitxhedmestohlauntoilo.n
755 aStto4r4a2geCCofnodaritmioanxsi--mSutmorpeeralilodWSos3fimnoanrtehfsrifgerroamtotrhe(idnat1e2o5fmpLreLpDarPatEiobno.ttles)
7.56
Calibration filtered type
Standard--Prepare I water according to
a minimum of five the following table:
calibration
solutions
in
0 _Conce0 ntratio0 n Vo0 lume o0 f Fina0 l Calib0 ration 0 Standar0 d 0 Final C0 oncent0 ration 0 of
AofTWSS,upgg/mmlL., WWSS,upLL.
00)
0
VoVoulmumeem, lmLL. 0
CaClailibbrraattiioonnSSttaannddaarrdd,,PPgg//mmLL 0
0010
100
"0
2
0010
200
"0
50
0010
400
"
100
0.10
100
"0
250
010
200
"0
500
010
300
"
750"
TT
010
400
a
May be prepared to extend the ngs beyond SOP.
100
2 May be prepared to extend the ange beyond 750PmL.
Nprootpeo:rtTihoensabosfsoollutuetevotlousmoelvsoenfttahree smtaainndtaaridnsedm.ay be varied by the analyst as long as the correct 75.7 Tidheentsictaalndtaortdhsealreabporroactoersysesdamtphlreosu.ghThteheeexxttrraacctteidoncopnrcoecnetdruarteio(nSeocfttihoenc9a.l0i)b,ration
ssttaannddaarrdd idsureiqnugalthteo e8xXtrtahcetiionnitpiarlocceosnscentration, due to the concentration of the. 758 pSotloyrpargoepyCloenndeittiuboenssa--tSt4o4r2eaCl,l efxotraracmtaedxciamluibmrapteiroinosdotafndtawrodswienek1SsmfLr.om the
dateofpreparation.
MS Word 97
ETS8.1540
Page of 17
DeterminationofPFOS, PFOSA, POAA in Wate by Liquid-Solid Extraction and LOMSMS
000103
3P 800 RSASNoME AtMPe:PLS LSEaEmCCpOE lOLiLnLLgEReCqTuIiV pOmNe,ntAP,RiEnT cSlEuRdiVI nAgTaIuO tOoNmaAtN NiDc sSA aTmpOlReN rAsG,EmDust S be frT eeofTOefloR ~ n tuA bi~ ng,GgaskE ets,
a`cnodmpootshietrepasratmspltheastomvaeyr tliemaechshinotuelrdfeurisngreafnrailgyetreasteidntpootlhyeprwoaptyelresnaempslaem.plAeutcoomntaatiincerssiamfpploesrssibtlhea.t
`Sample bottles should not be rinsed before sample collection.
81 T(1a5pW1a0tCe)r--haOspsetanbitlhiezetdap(uasnudalallyloawbotuhtetswyostmeimnuttoefsl)u.sAhdujnutsilt tthheewfaltoewrttoeampbeoruatture.
500mL/min and collect samples from the flowing stream.
82
Ground Water--Purge sample directly from the
the well ofstanding water pump or from the bailer.
using
a
pumpor
a
bailer.
Collect
the
83
Surface Water--When sampling from `with water from a representative area.
an
open
bodyofwater,
fll
the
sample
container
84 SinatmhpeldearDkecfhrloomrtihneattiimoeno--fAlclolslaemctpiloensusnthioluelxdtrbaectiicoend. oRrerseifdruiaglercahtleodraitne4s:h2oulCdabned kept
rsaemdpulcee,d FbBy,aadnddinFgS2C0S0u(Lwhoicfah 2m5a0ymbge/pmlLacseoddiinuematchhiobsoutltflaetebesfoolruetiloenavtionegafcohrwtahteer
sampling site.).
85 tHhoaltdtihnegthTrieme eco(mHpTou)n--dsReasurltsstaobflethfeorti1m4e/dsatyosraignewsattuedryosafmapllletsarwghetenantahleytseasmsphloesweadre
dlaebcohrlaotroirnyatseadmapnledsstmoursetd abse deexstcrarcitbeedd wiintsheicnti1o4nd8a.y4s(sacnedatlhseoerxetfrearcetnscaen1a8l.y3z)e.dThweirtehfionr3e,0
days field
ospfiskaemsptloeacvoolildecmtiisotn.epIrfetsheentHatTioenxocfetehdse
14 days, great care is sample concentration.
used
when
evaluating
86 Field Blanks
86.1
Processa collected
Field Blank Control Sample (FB) from the same general sample ite
along with cach sample set at approximately the same
(samples time). At
tthyepelaIbwoartaetro,rys,eaplr,ioarndtosshaipmptlhee cFoBll1e0cttihoen,safimllpalisnagmspilteeacloonntgaiwnietrhwtihtehefmilptteyred
8.62 sWahmepnlesocodnituaimnetrhsi.osRuleftautrenisthaeddFeBdttootshaemplalbeosr,atuosreytwhietshatmhee pfirlolceeddsuarmepltoe bottles.
preserve the FB.
87 Field Duplicates
8.7.1 sCaomlplleicnatg Fseite,lidflDeuspslitchaatne 1(0FDs)amfpolreesvearrye ctoelnl(ec1t0e)d.samples collected or per each
87.2
Separate FDs collected.
must
be
collected
for
each
type
of
water
sample
(ground,
tap,
etc.)
873 87.4
Collect the FD Preserve, store
immediately and ship FD
after using
the the
sample. same procedures
as
used
for
the
samples.
MS Word 97
ETS81540
Page of 17
DeterminationofPFOS, PFOSA, POAA in Water by Liguid-Solid Extraction and LOMS/MS
000104
88 Field Spike Control Sample (FSCS)
88.1 sAhiFpimeelndtS.piIfkemuClotnitprloelcoSoalmeprslear(eFuSsCeSd)tmousshtipbea psertepoafrseadmpfolrese,acchacshamcpoolleer must
contain a FSCS.
882 Ashtitphteoltahbeorsaatmoprly,infgillsiatesaamlopnlge wciotnhtatihneeremwpitthy s1a0m0pmlLeocfonttyapieneIrwsataenrd.FSBeSa.l and
88.3 sWahmeenasmooduinutms tthoiotshuelFfaStCeSi.s added to samples, use the same procedure to add the
88.4
Seal and gently invert the FSCS to mix. procedures as used for the samples.
Store
and
ship
the
FSCS
using
the
same
MS Word 97
ETS 1540
Page9or17
Determination ofPFOS, PFOSA, POAA in Water by Liquid-Solid Extraction and LOMS/MS
000105
9.0 EXTRACTION PROCEDURE
9.1 Extraction Scheme
9.1.1
Allow gently
sinavmeprlteisngtotheequsialmipblraetebotttoler.oom
temperature.
Thoroughly
mix
samples
by
912 QMeCasaunrdeM4at0rmiLxosfpsiakemspalserienqtuoiSreOdm,Lreppollaycperolipdyalenndemciexntwreilflu)g.e tubes (Spike the
N(yoptiec:al*lySaSm0p-le1s50m%aoyfnseaemdptloebceonpcreenstcrrateieonne)d.to determine an appropriate matrix spike level
9.13
ConditiontheC, SPE by SmL filtered type |
wcaatrterrid(g~e2sdr(o1pg/,se6c)m.L)Dboynpoatssleitncgo1lu0mmnL
methanol run dry.
followed
Ndroytea:t aFnoyr tthiemefollowing steps, maintain a ~1droplsec flow rate. Do not allow the colum to run
9.14 9.15
WLoaasdhtwhietahna~lSytmiLca4l 0sa%mmpeltehoanntooltihnewCa,t,erS.PDEiscacratrrdidcgle.uatDei.scard eluate.
9.1.6 Eploultyeprwoiptyhl~enSemcLent1r0i0f%ugemettuhbeasn.olT.hiCoslilsetchteStmarLgoetfeelluutaitoen ifnrtaoctgiroand(ufaitneald v1o5lmuLme =
SmL).
9.1.7
Analyzea portionofthe HPLC/MS/MS (Section
1t0a.r2g)e.t
elution
fraction
eluent
using
negative
clectrospray
NFiontael:VSola.mp=leSsma.re concentrated by a factor ofeight during the extraction; Initial Vol = 40mL >
9.18 Smaamyplbeesstaorreesdtainblaeraetfrriogoemrattoermpater4at4u2reCfourntaitllaenaasltys2i4s.hours. Analytical samples
9.19 SbteannedcaersdsiazrayttioonstoafndCa,r,diSzPeEthce oC,luSPmEncso--lpuoImofnrsriencotvheerifeosllaorweionbgsmearvnende,ribtemfaoyre
analyzing samples.
91.9.1" UPgs/emLa.stFaonldalrodwwtihtehexatnraacntailoyntesccohnecmeeniarsatoiuotnlibneetdwfereonm1s0t0ep0sa9n.d1.41010009.1.6,
except, collect the eluate target elution fraction.
fraction
separately
(approx.
SmL),
as
well
as
the
9.192
After sep additional
9.1.6, collecta SmL of 100%
post-elution methanol.
fraction
by,
eluting
with
an
9.19.3 cAonnatlayiznse aallmithnrieemufrmaocftio8n5s%boyfHPthLeCr/eMspSe/cMtiSv.eIafnatlhyetetsa,rgiettmfaryacbtieon
considered acceptable.
9.194 IofrtpheerwceansthagceonotfaiMnesOsiHgnsifhiocualndt bsetadnedcarreda(s>ed15%), ether the wash volume
919.5 eIlfutthieonpovsot-lculmuetisohnofurladctbieoninccornetaasiends.significant standard (>15%), the target
MSWord 97
ETS8-1540
Page 100717
DemianofPEOS, ROSA, OAA in Water byLiquid:Sok Exacion and LOMSMS (0,690
101.0.00 ClNCAooALntLgeII:aBBsORRttAhAheTeTrIImeOiOntNNshtoANrdNuomDaenSiStTTesAAmNNaaDrDycAAbRRmeDDetIsI.ZeZATdAhTTaeIInOOodpNNet(hr(eaAAtcNNoqArAuLuLiYpYsmTTteIInoCCtAApaLLdiSSEsEcTToWUnnYPdd))id:ocamye5fevecryydomreentn oe inns
10.1 Establish the LC/MS/MS system and operating conditions equivalent to the following: Mass Spec: Micromass Quattro Ultima (Micromass) MInotderef:aceE:lecEtlreocstprroasyprNaeyga(tMiivcer,oMmualstsi)ple Response Monitoring (MRM) Harvard infusion pump (Harvard Instruments), for tuning Computer: COMPAQ Professional Workstation AP200 Software: Windows NT, MassLynx 3.3 HHPPLQCu:atHPewulmeptt Packard (HP) Series 1100
HHPP AVuatcousuammpDleegrasser
roNoanttleim:naAy.HafPbtxueCnohIletmuepmmumnroHgbOeyipvvleeaerlnpvcehaaarsneddraoenpld-oiornrsgHuthParLdsCacmaaplpreviies(oKesysptoonte,0paarpt 4a4y01s7-e400E ) i as ched
CHoPlLuCmnCoTleummpne:ratGuernee:si3s5C,C(Jones Chromatography), 2.1mm x 50mm, 4pm Injection Volume: 15uL
Mobile Phase (A): 2mM Ammonium Acetate in filtered type I water (See 7.3.1) Mobile Phase (B): Methanol
HPLC GradientProgram:
min Time,
`min 0.0
Phased Percent Mobile Phase A 60
Phase Percent Mobile Phase B 40
mimin FlowRate, `mL/min 03
04
60
40
03
1.0
10
90
0.3
7.0
10
90
03
75
0
100
03
9.0
0
100
04
9.5
60
40
04
13s
60
40
04
0 ee es 14.0
60
40
0.3
Not: Other HPLC gradients may be used slong as th method rieria are met
5 Ward?
Ersasi0
--
Determination of PROS, PROSA, POAA in Watrby oLtig Soi Extraction and LCMSIMS 000107.
CItomlauymnbsewnietchesdsiafrfeyrteontaddjiumsetnsthieonHsP(Lc.Cg. g2ra.d1imenmtxin3o0rmdemr)taonodptciomliuzmenisnsftrroummedniftfpereernftormance. `manufacturers (Keystone Betasil C,q etc.) may be used.
Ions Monitored: Aualyte |Priimary lon Pr"oduct lon AAPpPpIrOoNxiImTaattee
POAA | 4130 169.0
50
PFOS 499.0
99.0
52
PFOSA| 498.0 780
58
OfotrhePrFOprSo.duUcsteoiofntshmeasyugbgeesctheodsepnriamtatrhye idoinscirsetrieocnoomfmethnedeanda.lyRsett,eanlttihoonutgihmme/szma99yivsasruyggsleisgthetldy, oacncaepdtaayb-lteow-idtahyibnasains,andaelpyteincdailnrguno,natshelobnagtcahs othfemdorbiiftlecopnhtaisneuecstc.thDrroiufgthinthreeteennttiiroenatnialmyessisisand the standards are interspersed throughout the analytical run. 102 Tune File Parameters
102.1 Tinhsetrfuomlelnotwitnoginvsatlruuemseanrte. pArlosvo,idtehdesaes vaanlueexsammplaey. bAeccthuaalngveadlufersommatyimveartyo tfirmoem in order to optimize for greatest sensitivity
Analyte | Dwell, sec
POAA 02-04 PFOS 02-04 PFOSA 02-04
Collision Energy, eV
10-25 30-60 20-50
Cone, V.
20-30 50-80 30-60
Source
Capillary Hexapole | Aperture | Hexapole 2 Source Block Temp. Desolvation Temp.
Set
2.56-3.5kV 0sv 02v 08v
100-150C 250-400C
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Determination of PFOS, PFOSA, POAA inWaterby Liquid-Solid Extraction and LC/MS/MS
600108
Analyzer LM Res| HM Res | Energy |
Entrance Exit
LM Res 2 HM Res 2
IEnergy 2
Multiplier
Set 12.0-15.0V 12.0-15.0v
0.7v
av w
1L0V 11.0v
Lov
650V
Gas Flows Cone Gas Desolvation
Set 150L/hr 700L/hr
Pressures
Set
eenSGasRCeSll
heii 3.0-3mbar
1A111.00vANaALYu TICAvL QUm ALITeY COaNTRQ OL uaryCovmeor
111 Analytical results of the FB, FMS, FD, and FSCS should be `evaluated at the conclusion
ofcotnhtreols/tduudpylitcoatheelspamipntleersprmeut stthebdearteapqouratleidtywoifthstahmeplseasmpdlatea.daAtan.alytical results for these
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Determination ofPEOS, PFOSA, POAA in Waterby Li;guid-Sold Extraction and LOMSIMS. 000109
1A 122.00 s ANALu YTICAv L PROm CEDURe E m0p0r 00oc0e00o00e 000e0
121 Sample Analysis 12.1.1 Setup analysis sample queue. 12.1.2 Irnejceocvtertyh,e scoanmteroalleitqcu.otin(tboetthweeeLnC/5-M2S5/yMLS)osfycstaecmh. standard, analytical sample, 12.13 All samples showing a response for on or more analytes above the response of
the highest, active calibration curve level must be diluted andreanalyzed.
12.2 Calibration Curve
12.2.1
Starting with the standard of lowest concentration, inject the same size aliquot (between 10-25L)ofeach extracted calibration standard according to Section 12.1 and tabulate the response (peak height or area) versus the concentration in
athnealsyttaendbayrd.linUeasrerleignreeasrssitoannwdiatrhd c1/uxrvweesigfohrtiqnugaontfipteataikonagreanevreartseudsfcoarleibarcahtion
standard concentration. The correlation coefficient (r) for the calibration curves
ampupsrtopbreia2t0e.s9t9e0ps(2m0u.s9t8b0e).tIafkceanlitboraadtjiuosnt rienssutlrtusmfeanllt oouptesriadteiotnheasnedlitmhietss,tatnhdeanrds
reanalyzed.
122.2 122.3
tChueorrvetei--caTlhvealmueeasswuhreedn vcaulruvee fiosreevaaclhuactuerdovveeproiantrmaunsget abpeprwoiptrhiiant+e t3o0t%heodfata.
aHcicgehptoarblleowcuprovientmsumsatycobnetadienacattilveaatsetdftioveaacchtiievvee
thes curve
criteria, points.
but
an
Continuing Curve Verification (CCV)--Mid- and low-level calibrationchecks
should be analyzed every 5-10 injections. The analyte level measured in the
CCV should be within + 30% of theoretical values. If CCVs fall outsidoe fthis
range, data collected subsequent to the last passing CCV should not be used.
Only data collected between acceptable CCVs or the initial curve can beused.
1p133.00aDAmTA aANALAYSISvANDmCALvCULsATIsONS awCucuamoss
13.1 Cfaollcluolwaitneg tehqeuaatniaolny:tical sample (extract) concentration from the standard curve using the
Extract Concentration, pg/mL=- {Peakaaroeaa-niintuecrceeptt)) (slope)
13.2 Calculate the percent recoveryof the FSCS using the following equation:
FSCS % rec, =((CFEoSCnCcSS.cacodonndcee.d.,,PPP/gg/m/mmlLL)))
133 Calculate the percent recoveryof the MSs using the following equation:
MS%rec, -- Scone. pg/mL ~SampleConc, PmL) | oo (Conc.added, Pg/mL)
MS Ward
En
f----
Determination ofPFOS, PFOSA, POAA in Wair by Liuid-Soli Extraction and LCMSIMS 000110
1M144.00ETNMoEtHeT:HAOOnDyPDmEetRhPFoOdREpMerAfRNoCrmEFanPcAeORpAarMRaEmTeMtEeRrSsAt~ hatNareCnotEac~ hPieveAd mRust~ Abe cMon~ siEderTed~ inEtheRS edviaslcuuastsieodnoinfatnhye rdeaptao.rtNinognocfotnhfeordmataan.ce to any specified parameters must be described and
14.1 Lreignreeasrsiiotny--wiLtihne1a/rx swteaingdhatridngcourfvpeseafkoraqrueaantvietrastuisoncagleinbreartaitoendsftoarndeaarcdhcaonnacleyntterabtyiolni,neTahre correlation coefficient (r) for the calibration curves must be 20.990 (20.980).
142 wCiatlhiibnra+ti3o0n%CoufrtvheeoSrettaincadlavradlsu--esThwehemneacsuurrveedisvaelvuaelufaotrecdaocvhercuarvreanpgoeinatppmruosptribaete to atchecedpattaa.blHeicguhrvoer mluoswtpocionnttsaimnaaytlbeeasdtefaicvteivaactteidvetocuarcvheiepvoeintthse.se criteria, but an
143 CinjCecVtioPnes.rfTohremaannaclyet--eMliedvelanmdealsouwrleedveiln ctahleibCrCatVisonschhoeuclkdsbteowbietahnai+lnyz3e0d%eovferthye5or-e1t0ical CvaCluVes.shIofuCldCVnost fbaelluosuetds.iOdenloyf tdhaitsarcaonlglee,ctdeadtabecotlwleeecnteadcscuebptsaebqlueenCtCtoVthcealnasbtepuassesdi.ng
144 tLhiemipteaokfaDreetaoecftitohne (exLtOraDc)ti--oTnhbelanlkowtehsatt ccaalnibbreatmieoanssutraenddaartdawicotnhcaenpteraaktiaornegaraetatleerastth2aXn zero.
145 sLtiamnidtasrodfinQutahentciatlaibtriaotnio(nLcOurQv)e;--tThheepelaokwearreLaoOfQth(eLLLOLQO)Qismtuhsetlboeweasttlenaosnt-2zeXrothaacttoifve
the extraction blank. By ofthe theoretical value.
definition,
the
measured
value
of
the
LLOQ
must
be
within
30%
14.6
Matrix Spikes--Matrix concentration.
spike
percent
recoveries
must
be
within
+
30%of
the
spiked
147 SloowlevsetntnoBnl-aznekrso,aMcteitvheosdtaBnldaanrdksi,n athnedcMalaitbrraitxioBnlcaunrkves.--VMaatlruiexsbmluasnktsbaerebecloonswitdheered
compliantif no test substance is detected above the LOD for that analyte.
148 sRpeipkreosduacnidbmialtirtiyx--Rsepipkreodduucpliibcialtiets.yoTfhteheMSm/etMhSoDd isshdoeuflidnbede breyptrhoedurceisbulltesotofwtihtehimnat2r0i%x.
149 UseofConfirmatory Methods--None
14.10 rDeetmeontnisotnrtaitmieo(nwoifthSipnec3i%foicfitsyt--aSnpdearcdi)fiacnidtythise dmeamsosnsstprecattreadl bryescphornosmeaotfougnriaqpuheicproduct
fons generated from a characteristic primary ion.
14.11 Documentation
14.1.1I`fmcaryitbeeripaelrifsoterdmeind tohnistmheetshyosdtepmerafnodrsmaamnpcleessercteiaonnalayrzeedn,otormeott,hemraiacnttieonnasntcaeken
14.1.2Iafsdadettaearrmeinteodbebyretphoeratneadlywshte.nDopcerufmoernmtanacleaccrtiitoernisaihnatvhee naoptprboeperniamteell,otghbeoodka.ta
must be footnoted on tables and discussed in the textofthe report,
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600111
1125.00 TOPLOLLULUTTIIOONNPPRREEVVEENNTTIIOONNAANNDDWWAASSTTEEMMAANNAAGGEEMMEENNTT~~ 15.1 Sglaamspslpeipeextttreacwtaswtaesties dainsdcafrldaemdmianblbreoskoelnvegnltasiss dcoinstcaairndeerdsilnohciagthedBiTn Uthecolnatbaoirnaetrosr,y.and
118 60 kReEcCOoReDsSsom
16.1 Ethaechhepaadgeer goernhearnadt-ewdriftotreansotnudtyhemupasgteh:avsetutdhyeofrolprloojweicntgniunmfboerrm,ataicoqnuiisnictliuodnedm,etehitohde,r in
integration analyst,
method,
sample
name,
extraction
date,
dilution
factor
(ifapplicable),
and
162
Parpipnrtoptrhieattuensetupdaygef,olsdaerm.plCeolpiyst,tahnedseapcaqugiessitainodn
method from MassLynx to tape into the instrument run
include log,
in
the
163
Plot the calibration in the study folder.
curves
as
described
in
this
method,
then
print
these
graphs
and
store
164
Print data integration MassLynx, and store
summary, integration in the study folder.
method,
and
chromatograms,
from
16.5 Summarize data using suitable software (MS Excel 97) and store in the study folder.
166 Banadckloucpateiloencotfrobnaicckduatpaetloecatprpornoipcrdiaattae. medium. Record in study notebook the file name
A 17.0 AAtTaTcAwCHvMeErNTsS 17.1 Attachment A: Figures--Fluorochemical Compounds
= 18.0 RXeErFeEmRewE<NCCqESSSooo 18.1 "U.GSu.idEenlviinreosnamnedntFaolrmPraottefcotriMoentAhgoednscyt,o bOeffPircoepoofseSdciaetn4ce0 aCnFdRTePacrhtno1l3o6goyrOPfafritce14o1f", Water, Washington, D.C. Draft 1996 182 "PeMreftlhuoordooofctAannaelyssuilsfofnoyrltahmeidDeet(ePrFmOiSnaAt)i,onanodfPPeerrfflluuoorrooooccttaannoeastuel(foPnOaAteA()PiFnOSW)a,ter, . IWnicc.krSteamteesCionlhleegaen,dPJe.nnFlsayhlevratnyi,aS,tJuadnyuaNruym2b0e00r.023-002, Centre Analytical Laboratories, 183 sVuallfiodnaattieon(PrFepOoSr)t,fPoerrtfhleu"orMoeotchtoandeosfuAlnfaolnyysliasmifdoer (thPeFODeStAe)r,miannadtiPoenrofflPuoerrofolcutoarnoooactetane (AnPaOlyAtAi)cailnLWaabtoerrat"o,riE.esW,iIcnkc.r,eSmteastienChoellaengde,J.PeFlnanhseyrltvya,nSiat,ud(yApNpurmobvaelrp0e2n3d-i0n0g2), Centre
RT 1e9v.i0sifeion Rnevisions e
Number,
ReasonForRevision
Revision
Date
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Determination ofPOS, PFOSA, POAA in Waterby Liquid-Solid Extraction and LC/MS/MS
600112
Figure 1: PFOS
Chemical Name = Molecular ion =
f
"1
Perfluorooctanc sulfonate 499 (CF,S0,)
PFOS
Note: Standaarermaddse from the salt, potassium perfluorooctane sulfonate [CyF, SOK], mw 538.
Figure 2: PFOSA
Chemical Name Molecular fon
= =
Perfluorooctanesulfonylamide 498 (CF,,SONH,)
ceFrp NH2
o
PFOSA
Figure 3: POAA
Chemical Name = Molecular ion =
Perfluorooctanoate 413(CF,C00)
C7F45CO"
POAA
Note: Standards are made from the salt, ammonium perfluorooctanoate [C.FsCOONHL], mw 431
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Determination of PROS, PFOSA, POAA in Water by Liquid-Solid Extraction and LC/MS/MS 000113
Compound-Specific, Quantitative Characterization of Organic Fluorochemicals in Biological Matrices
Kristen J. Hansen; Lisa A. Clemen: Mark E. Ellefso; Harold O. Johnson (#Coresponding author email: G hansen mco, msphone 651-778-6018;fax651-778-6176) 3BuMilEdnivnigr2o-n3mEe.n0t9al Laboratory SPt.0.PaBulo,xM33N335151333331
Abstract
Since the early 1980s, there has been a steady increase in the use of nonvolatile fluorinated organic compounds for a varietyof industrial applications. The industrial use ofthese relatively stable compounds has initiated debate over the fate of fluorochemicals in the environment and, ultimately, the bioavailabilityofthese compounds (1,2). Until recently, levelsoforganic fluorochemicals in biological matrices have been determined by non-chemical specific analytical methods such as total fluoride analysis (2-6). In this manuscript, we present a compound-specific method for the extractionof extremely low. levelsofseveral commercial organic fluorochemicals from sera and liver with `quantitative detection by negative ion electrospray tandem mass spectrometry. This technique represents a robust, previously undescribed approach to quantifying specific organic fluorochemicals in biological matrices. This method should prove useful in future studies designed to determine the levelsoforganic fluorochemnicals in humans and the environment. Results from a studyof 65 human sera samples purchased from biological supply companies and the detailsofthe analytical method for the quantitative analysis of specific organic fluorine containing compounds are described.
1
600114
Introduction
`The unique chemical/physical properties of fluorine make fluorinated organic compounds
useful for many commercial applications, and industrial production of these compounds
has increased significantly since the early 1980s. Fluorinated organics are used as refrigerants, surfactants, and polymers and as components of pharmaceuticals, fire
retardants, lubricants, and insecticides (1). Fluorochemical compounds that are not
perfluorinated may be susceptible to partial chemical breakdown at functional group bonds (7). However, given the energyofthe carbon-fluorine bond, it is expected that `many organic fluorochemical compounds will be resistant to hydrolysis, photolysis,
biodegradation, or metabolism (8). For example, even in the `high-energy environment of the stratosphere, the carbon-fluorine bonds in chlorofluorocarbons are exceptionally stable (9).
In 1974, Guy et al. reported results for the determinationof organic fluorine levels in plasma from 106 individuals from five cities in the United States (2). These researchers
demonstrated that although levelsofinorganic fluorine in human plasma could be
correlated to fluoride levels in drinking water, organic fluorine levels showed no such
correlation. Guy et al. showed that the organic fluorine levels measured from samples
collected within a particular city were, basically, log normally distributed with few
outliers. The average organic fluorine level in human plasma samples included in the study was reported to be 1.35 + 0.85 micromolar R-F (approximately 26 ppb organic fluorine). By concentrating the organic fluorine from 20 liters of plasma and performing
nuclear magnetic resonance (NMR) analysis, Guy et al. postulated that the
600115
2
perfluorooctanoate anion (PFOA) or a structurally related compound may be the source
ofthe organic fluorine. Further, they suggested that there may be three or more different componentsoforganic fluorine in plasma samples collected from the general population.
Although the source of the organic fluorine in general population blood has been debated and never definitively determined, some have postulated that contamination of the
environment with industrial fluorochemicals is the source of the organic fluorine
compounds (4). Others suggest that the organic fluorine is likely to have a natural source (10). Despite the routeofexposure, researchers agree that such low levels oforganic
fluorochemicals are unlikely to cause toxic effects (2,11,12).
A large numberof studies in both humans and animals have been conducted to study the
toxicity associated with PFOA. In these studies, when determinations ofthe PFOAlevels
in tissues were necessary, a total organic fluorine method was employed or a study using
radiolabeled material was designed, because easy, sensitive, compound-specific methods `have not been available (11-17). Historically, low-level detectionoffluorochemicals such as PFOA and perfluorooctanesulfonate (PFOS) has been limited to relatively insensitive
or non-mass-specific detection methods, such as gas chromatography-flame ionization detection, gas chromatography-clectron capture detection and high performance liquid chromatography (HPLC)-ultraviolet detection (18-20).
In the work presented here, a new method for the analysisofseveral low-level fluorinated organic compounds in sera and liver tissue is described. After initial extraction ofthe
tissue with an ion-pairing reagent, extracts are analyzed with HPLC-negative ion electrospray tandem mass spectrometry (HPLC-ESMSMS). The ability to selecta unique
000116
:
product ion upon fragmentation of the molecular fon provides a very selective analysis that is not as likely to be affected by biological interferences.
Detection limits and the linear rangeofthe method were determined for four fluorinated organic compounds [PFOA, PFOS, perflucrooctanesulfonylamide (PFOSA), and perfluorhexancsulfonate (PFHS)] in both liver and sera by spiking each matrix with standard material and quantitatively recovering the compounds. Although detection limits can be improved by concentrating sample extracts, extractionof non-concentrated sera produced detection limits for all target analytes of 1-3 ppb.
The method presented here has been used to quantitatively analyze four organic fluorochemicals in 65 human sera samples collected from several biological supply `companies in the United States. High-resolution time-of-flight mass spectrometry was used to confirm the identity of PFOS, PFOA, PFH, and PFOSA extracted from a single representative sera sample.
Experimental Materials andMethods
Rabbit and rat sera were purchased from Sigma (St. Louis, MO). HPLC-grade methyltert-butyl-ether (MTBE) and methanol were purchased from E.M. Science (Gibbstown, NJ); the tetra-butyl ammonium (TBA) hydrogen sulfate was purchased from Kodak (Rochester, NY); the pHof the TBA solution was adjusted with sodium hydroxide (J.T. Baker; Phillipsburg, NJ). Before use, water was purified with a Milli-Q system (Millipore; Bedford, MA). Human sera samples were purchased from the following biological supply companies: Sigma (St. Louis, MO); Golden West Biologicals
000117
4
(Temecila, CA); Biological Specialty Corporation (Colmar, PA); and Lampire Biological Laboratories (Pipersville, PA).
New Zealand White [Hra:(NZW)SPF] rabbit liver was obtained from Covance Laboratories, Inc., in Madison, WI; Sprague Dawley rats were purchased from Harlan (Indianapolis, IN), and rat liver samples were harvested by 3M Toxicology personnel (St. Paul, MN).
`The PFOS and PFOA used as standards and as matrix spikes were purchased from Fluka (Milwaukee, WI; standards of PFHS and PFOSA were made available from 3M Company (St. Paul, MN). The intemal standard, /1,1H,2H2H, perfluorooctane sulfonate (THPFOS), was purchased from ICN (Costa Mesa, CA), Extraction Procedure: One half mLofsera, 5 uLofintemal standard, 1 mL of 0.5 M TBA solution (adjusted to pH 10), and 2 mLof 0.25 M sodium carbonate buffer were added t0.a 15-mL polypropylene tube for extraction. Afier thorough mixing, $ mL of MTBE was added to the solution, and the mixture was shaken for 20 minutes. The organic and aqueous layers were separated by centrifugation, and an exact volume of MTBE (4.0 mL) was removed from the solution. The aqueous mixture was rinsed with MTBE and separated twice more; all rinses were combined in a second polypropylene tube. The solvent was allowed to evaporate under nitrogen before being reconstituted in 0.5 mL of methanol. The sample was vortex mixed for 30 seconds and passed through a 0.2 um nylon mesh filter into an autovial. Depending upon the species of test animal, the serum extract was typically either colorless or light yellow.
600118
E
For the extraction of liver samples, a liver homogenate of 1 gramofliver to 5 mL of Milli-Q water was prepared. One mLofthe homogenate was added toa polypropylene tube, and the sample was extracted according to the procedure for sera (described above).
Teflon or glass containers were avoided in this procedure; the former may cause
analytical interferences, and the latter may bind the surfactants in an aqueous solution. Disposable polypropylene or plastic lab wear was used to minimize the possibility of sample contamination that can occur when glassware is reused. Any glassware used in the preparation of the reagents was thoroughly rinsed with methanol prior to use.
To ensure that target analytes were not introduced to the matrix prior to extraction, blood collection supplies were extracted and analyzed. Blood bags were purchased from Baxter (Deerfield, IL), and five different typesofVacutainers (two labeled "gel and clot activator,"two labeled "K;EDTA, and one labeled "no activator") were purchased from Becton Dickinson (Franklin Lakes, NJ). Additional blood collection materials tested
consistedof3-cc and 10-cc syringes, 19G1 1/2 Precision Guide sterile needles, multiple
sample Vacutainer sterile needles, and Terumo winged infusion sets, all of which were
obtained from Becton Dickinson.
The inside surfacesofall blood collection supplies were exposed to methanol (from 0.5 mL to 80 mL, depending on the particular supply) for 1 hour, The extraction solvent was dried and reconstituted to exactly | mL of methanol. A second setofsamples was
00119
.
spiked with analyte and extracted in exactly the same way as the first set to ensure that analyte could be recovered.
Extraction blanks were prepared using Milli-Q water, and matrix blanks were prepared from rabbit or rat tissue spiked with THPFOS.
Analyte separation was performed using a Hewlett-Packard HP1100 liquid chromatograph modified with low dead-volume internal tubing.Priorto the autosampler, a1 cm Hypercarb cartridge from Keystone (Bellefonte, PA) was added. Ten Ls of
extract were injected onto a 50 x 2mm (5 um) Keystone Betasil Cys column with a
2 mM ammonium acetate/methanol mobile phase starting at 45% methanol. At a flow rate of 300 uL/minute, the gradient increased to 90% methanol before reverting to original conditions at 9 minutes. Column temperature was maintained at 25 C.
For quantitative determination, the HPLC system was interfaced to a Micromass
(Beverly, MA) Quattro I atmospheric pressure ionization tandem mass spectrometer operated in the electrospray negative mode. Instrumental parameters were optimized to transmit the [M-H] ion for all analytes. When possible, multiple daughter ions were `monitored, but quantitation was based on a single product ion. Refer to Table 2 foar summaryof transitions monitored.
In all cases, the capillary was held between 1.6- 3.2 kV. For PFOA determination, the quantitation ion (m/z=169) corresponds to CsF; the product ion m/z=99 corresponds to
600120
'
FSOy for quantitative determination of PFOS. QuantitationofPFOSA occurs at m/z=78, corresponding to SO;N'; quantitationofPFHS occurs at m/z=80 (SO).
In the ESMSMS system, the 499 Da. 80 Da. transition can provide a stronger signal than the 499 Da.> 99 Da. transitionofthe PFOS analysis. However, in the analysis of tissue samples collected from some speciesofanimals, an unidentified interferent was present in the 499 Da. 80 Da. transition. Although this interferent was rarely observed, to ensure complete selectivity, quantitation was based on the 499 Da. > 99 Da. transition.
Exact mass determination was achieved by interfacing the chromatographic system to
either a Micromass LCT; product ion spectra were collected with a Micromass Q-TOF.
Both the LCT and Q-TOF are high-resolution time-of-flight mass spectrometers. An 800 ng/mL solutionofraffinose in 50/50 ACN/water was infused into the source at 20 wL/hars a lock mass (503.1612 Da). PFOS, PFOSA, and PFHS were measured ata cone voltage of 70 V; PFOA was measured ata 10-V cone voltage. For analysisofall analytes, the capillary was maintained at 3200 V.
Results and Discussion
Characterization of the Method
A seriesof experiments, described in more detail below, was designed to characterize the analytical method. In general, all curves, extracted or unextracted, were plotted using linear regression, weighted 1/X. Tables 3 and 4 show the extraction efficiency, limit of detection, and linear range for the target analytes.
600121
*
With the exception of PFOA, the extraction efficiency was determined by extracting and analyzing six replicate rat or rabbit sera samples spiked at approximately the following levels: 10 ng/mL, 50 ng/mL, 100 ng/mL, and 500 ng/mL. For PFOA, only the three higher levels were used for extraction efficiency calculations. Extraction efficiency in liver was determined by extracting samples spiked at 50 ng/g, 100 ng/g, and 500 ng/g. For both sera and liver, the extracted samples were evaluated versus the average curve produced by two unextracted solvent curves analyzed before and after the extracts. The extraction efficiency for PFHS and PFOSA from liver was determined to be significantly lower than those determined for the PFOS and POAA. However, because sample analysis is conducted using extracted curves, the relatively low recoveries should not affect the results. Table 3 shows the compiled average for all spike levels along with the standard deviation.
For both sera and liver analyses, the internal standard was used for quantitative determination of PFOS and PFOA, only.
`The limitofdetection was determined as per EPA Regulation 40 CFR part 136, Appendix B. For each analyte, seven low-level spikes were prepared and analyzed. Based on the standard deviation associated with the replicate analysis,a limitofdetection was calculated. This calculated limitofdetection was verified by analyzing a sample that was spiked at that level and extracted.
G0v122
9?
`The linear range was determined by analyzing duplicate curves extracted from each matrix over a wide range. Starting with the highest standard, points were removed from the curve until the correlation coefficient for the 1/x weighted fit was greater than 0.99. For the sera curves, all points except for the lowest standard level were evaluated to be.
`within 20%ofthe expected value. For the standard curves extracted from liver, all points except the lowest point were within 30.
Characterizationof Blanks Method blanks were prepared from Milli-Q water. Because analyte-free (less than 1
ng/mL) human sera matrix could not be located, surrogate matrix blanks were prepared
from rabbit sera. Noneofthe analytes were detected in either setof blanks. Instrument blanks, consistingof HPLC-grade methanol, were analyzed after high-level-standard-
curve points and after periodic calibration checks, to monitor potential carry-over. No
carry-over was observed. Methanol extracts ofblood collection supplies were analyzed; noneof the target analytes were detected in these extracts. In addition, the Teflon cap linersofglass jars used for
reagent storage were extracted with methanol. Low-levels of PFOS and PFOA were
detected in someofthe extractsofthe Teflon liners. These materials were removed from the extraction procedure.
Figure | compares the resultsof the `multiple response monitoring (MRM) analysis for PFOS in an extraction blank, in unspiked rabbit sera, and in unspiked,`commercially available human sera.
000123
0
Identification of Target Analytes
`The retention times of the analytes extracted from human sera were matched to within 2%ofthe retention timeofstandard material spiked into and extracted from rabbit sera. MRM analysis was used for verification ofanalyte identity. For cach analyte except PFOSA, atleast two characteristic product ions were monitored, although quantitation was based on the response ofa single product ion. PFOSA was detected at such low. levels, only a single product ion could be monitored, even for qualitative purposes. In the. human sera samples, for all analytes except PFOSA, the relative abundances of two or `more product ions collected by MRM were confirmed to within 20%ofstandards as criteria for analyte verification (21)
To further verify the identityofthe detected analytes, a 30-fold concentrated extraction of one sera sample was prepared. This concentrated extract was used for exact mass determinationofall four analytes using high-resolution time-of-flight mass spectrometry. The concentrationofthe detected analytes were confirmed to within ppm for al target analytes. Figure 2 shows the results of the PFOS and PFOSA high-resolution analysis. Additionally, using high-resolution time-of-flight mass spectrometry, full product ion spectra were collected for each analyte in the concentrated extract. The product ion spectra for the POS identified in human sera is shown in Figure 3.
Quantitation of Target Analytes in Human Sera
Quantitationof the analytes was based on comparisonof a single product ion peak area to the responseoftwo standard curves, weighted 1/X, bracketing each sample set. Mid-level calibration checks were analyzed every five to ten samples. Based on the precision
600124
n
determined from repeat injections of the standard curves, results were considered quantitativeto + 30%. Quantitative results, presented as compound-specific average concentrations in sera are presented in Table S. In addition to the average analyte concentration, the concentrationoforganic fluorine represented by cach compound is presented. For example, by weight, PFOS is 63% fluorine; for samples reported here, the average PFOS concentration was determined to be 33 ng/mL of PFOS. This corresponds to about 22 ng/mLoforganic fluorine.
Added together, the four specific fluorochemicals measured in this small setofsamples account for approximately 31 ngof organic fluorine per milliliter of sera. Within experimental error associated with cach technique, this value compares closely to the value obtained by Guy etal. (approx. 26 ng/mL) more than 20 years ago (2).
Also in accordance with Guy etal., PFOA has specifically been identified in the sera samples, although not necessarily as the major component. For the 65 samples reported here, PFOS was present at the highest concentration. Each analyte measured was detected in every sample, with the following significant exceptions: PFOSA was not measured above the detection limit in 60of the 65 samples; PFHS was not detected in one sample.
A combinationof extraction and analytical methods that do not require chemical
derivitization, use small volumesofsamples, and are highly sensitive and mass specific were developed for the low-level analysisof several fluorinated organic compounds in sera and liver. Using these methods, samples of human sera collected from biological supply companies were analyzed for four separate fluorochemicals, PFOA, PFOS, PFHS,
600125
B
and PFOSA. Taken together, these fluorochemicals accountfor 31 ng/mLoforganic
fluorine in an examination of 65 human sera samples from biological supply companies,
consistent with historical reportsoftotal organic fluorine studies.
Although this study comprises a relatively small sample set, it does suggest the
possibility ofamore complete characterization of the organic fluorine compounds
present in human sera. Additionally, these compound-specific analyses should be paired
`with a total organic fluorine analysis to determine what fraction of the total organic fluorine present is due to the four fluorochemicals quantified in this study.
600126
"
Acknowledgements
`The authors are grateful to Dr. Andrew Seacat and Deanna Luebker of 3M Toxicology for supplying rat liver for method development, and to Dr. George Moore for providing standard materials. Dr. Robert Voyksner is acknowledged for his thorough and timely reviewofthis work.
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14
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Gilliland, Enzymes,
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000128
ee
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600129
16
ER
Orin
[SCR
IT
CN JO
Nia ray)
PFOA 413 119,169%,219 | 2s
20
PFOS
99 50,99%, 130 0)
as
PFHS 399 80,99%, 130 0)
as |
[TrPwFeOrSoAs
||
498
am
w 78 w Te || as
"Product ions were used for quantitation
Table 2. Summary of Primary lons, Product lons, and ESMSMS Conditions
000130
1
RE PFOA PFOS PFOSA
PFHS
Ea [Crave RR DEVIATION
1019% 939% | 95:6%
857%
[ DETECHON
rea RANGE, EXTRACTED
CORRKLATION COEFFICIENT
1.0 ppb 1.7 ppb
5-1000ppb | 0998 |
5-100 ppb
0.995
1.5 ppb 5-1000 ppb
0.998
20ppb | 5-1000 ppb
0.998
Table 3.
Method in Sera.
Characteristics for the (All concentrations are
Analysisof Specific expressed as ng/g.)
Organic
Fluorochemicals
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"
LTT Te
Liner RANGE,
CORRELATION
SRE LL LL LR eT
PFOA
87+12%
5.0 ppb
10-1000
0.989
PFOS
10013% 8.5 ppb
5-1000
0991 |
PFOSA | s611%
35ppb_ | 5-100 ppb
0.995
| prs
71423% 20ppb | 5-1000 ppb
0.994
Tabled.
Method in Liver.
Characteristics for the Analysis of (All concentrations are expressed
Specific as ng/g.)
Organic
Fluorochemicals
600132
ar CONCENTRATION IN
eer CONCENTRATION IN
CONCENTRATIOONF ORGANIC FLUORINE
SSE
Ra
Ra
fy
PFOS
3321s
5-85 rfre e e 2
PFOA
663
1-13
46
PFHS
64%5%
1-13
37
PFOSA
| 1803+
<12
11
*
qSueavnetriatlatsiaonm,pltehserwefeorree,daevteerrmaigneecdotnocecnotnrtaatiinonthies
target analyte estimated.
below
the
limit
of
Table 5. Concentrations (ng/mL) of Various Organic Fluorochemicals in Human Sera
000133
2
Figure 2. High Resolution Analysis of PFOS and PFOSA
000134
2
Figure 3. Product lon Spectra for PFOS Endogenous in Human Sera
000135