Document 7RM8yO7an5raMejBVQYVZEGZj
AR3RG. 4705
27
Arar. 2708
Duron 14365
`TRADE SECRET
Study Title
Hydrolytic Stability of H-25435 as a Functionof pH
TEST GUIDELINES: OECD Guideline 111
AUTHOR: Bogdan Szostek, Ph.D.
STUDY COMPLETOEND: October 15, 2004
"PERFORMING LABORATORY: E.I du Pont de Nemours and Company
HaskellTM Laboratory for Health and Environmental Sciences
--
Elkton Road, P.O. Box 50
Newark, Delaware 19714-0050
LABORATORY PROJECT ID: DuPont-14965
SPONSOR: E.L du Pont de Nemours and Company
`Wilmington, Delaware 19898
USA.
`WORK REQUEST NUMBER: 15028
SERVICE CODE NUMBER: 392
EE
Cumin SeitzTTfeseNeooni TSCA CI1 --
Hydrol Stability of H-25435 ss a Fncion ofpt
Dupont14965
GOOD LABORATORY PRACTICE COMPLIANCE STATEMENT "LTahbiosrsattuodryywParsacctoinceduScttaenddairndsc,omwphliicahncareewciotmhpUa.tSi.blEePwAitThSthCeAO(E4C0 DCFPRrinpcairptl7e9so2)fGGoooodd LJaabpoarnaGtooroydPLraabctoircaeto(rasyrPervaicsteidce1S9t97a)n,daErNdVs/(M11C/NCoHhESMan(9N8u)m1b7e,rO6E28C3D),, ePxacreip,t 1f9o98t,heanidteMmAFF documented below. The item listed does not impact the validoiftthye study. "`TAhlethtoeustghsutbhsetcahnacreacwtaesriczhaatriaocntweraiszendotbypetrhfeosrpmoendsuonrdperrioGrotoodthLeanbiotraattioornyoPfratcitsicestSudtya.ndards, the cchoanrsaicdteerreidzastuifofnicwiaenstdfoonrethbeypaunrpIoSsOes9o0ft0h0icsersttiufdiye.d laboratory, and the accuracy of the data is
Applican/t Sponsor: EW.i.lmdiungPtoonnt,dDeelNaevmioaruers19a8n9d8Company USA.
Study Director:
b DO u SeBnoigodraRnesSezaorsicehk,ChPehmDi.st
1c$o-m0ecrT- 2004 Dae
Applicant Sponsor:
DuPont Representative
_Da_e _
-------------- Compa-- ny Sa--iz.--Dross-- eNot C--omin--TSCA--CBI ------------
yl Silty oH2a5s F5oci5nof pt
Dupon-14965
QUALITY ASSURANCE STATEMENT
`Work Request Number: Study Code Number:
15028 392
`The conduct of this studyhasbeen subjected to periodic Quality Assurance inspections. The
dates of inspection are indicated below.
Pheasee Audited Conduct
ReportRecords:
Audit Dates 06 May 2004
09-12 Aug 2004
DirectboruanRe MeaneagSemaent 07 May 2004
24 Aug 2004
Reported by:Loe Ql
Quality AssuraJnochensAtuodnitor
150d2mf Date
Company Sti. Droek Conia TSCACPL
TT
Hye Subity ofH-2543 a Faction i
Duponeaases
CERTIFICATION
We, the undersigned, declare that this report provides an accurate evaluationof data obtained
from this study.
Appeored-- irs Ga Nie d 15-e0e200
LovedbyStayDistE or: Eb Sn----a Sen Rear Cams
IS ecT20-m
_--
Company Suis. DpsrNeetCom TSCACB.
Hydrolytic StaobfiH2l54i35taya Functionof il
DuPont14965
TABLE OF CONTENTS Page
GOOD LABORATORY PRACTICE COMPLIANCE STATEMENT crs
QUALITY ASSURANCE STATEMENT evs
CERTIFICATION cosmid
LIST OF TABLES coms
LIST OF FIGURES css]
STUDY INFORMATION cvs
SUMMARYmss
INTRODUCTION cms sss d0
STUDYDESIGN crm10
MATERIALS AND METHODS css10
A. Materials
,--
--------
21.. TResteSusb8s2itTBadAnicuneH.2a.54.l35
----------------------------rconlndll
--~
3. Prepoafrbufafetrsoilutoionns. __.___..........
------------
n2
Be W1. BPrSelimiirnawry1mst.smmmmmmmm--m--------------------
122
23.. pAH nCaAolSf eUystsIsaubCistTaTsEnMcIeP.E.TE.AINE !
FE rere
212
45.. CAOnOaNSlo.fy..s2TiBAs. reer
swernma--_ap0
RESULTS AND DISCUSSION ccm21
CONCLUSIONSwns32
RECORDS AND SAMPLE STORAGE oc
33
USY FIGURES commissions
TT `CompanySunized.DAosRs NsotCoTs SCAaCBI.
----
Hydrol Stabilityof 25435 a aFncionof il.
Duron 14965
LI OFTSABLTES
Page
1. A(0N3A-LJUYNTEI-2C0A0L4)RAENSDUL5T(S08F-OJURNAE-Q2U00E4O.US STABI-LITY OF H-254r 35, pH-- 12, 37C, DAYS0
2s
2. A(1N3A-LMYAYT-I2C0A04L)RAENSDULT(S18F-OMARY-A2Q0U04E)O,US STABILITY OF H-25435,pH 40, 50C, DAYS0
2
3. A(NA0LY6TI-CAMLARAENYSDU5-LT(2S1-F0MOARY0-A2Q40U0)E8O)US STAcoBILITY OF H-254i3i57.,0, 50C, DAYS 0mmmnndl
4 A(NA1LY3TI-CAML RAAENSYDU5L-T(SI2BF-OM0ARY0A-2Q08U0E9))OUS Sc TABILITY OF H-2c 5435, pi 0, 50C,o DAYS0 38
5. OMETASUEREDDRCONCEmNTRsATmIONmS OmF 8m:2 TmBAmFO--Rp--i 12--, 37--C--, D--AYS--0--(3---J--UN--E---20A0N4D)
6. DMERASNUREEDECONCENTRATmIOmNSeOF8m.2TmBAmFOnR pnH 4m0, 5m0Cm, DAmYSm0 (--13---MAY---20--04)--AN--D 5--r
7. MAEASEUREAID CONCENTRArTImONmS OmF 8.m2 TrBA mFORmpHm7.0r, 50mC,eDA--YS --0(0--6-M--AY-2004) AND 5 3
8 (M1E8AMSAUY-R2E0D08C)ONCENTRATIONS OF 6:2 TBAFORpi 9.0, 50C, D0A(13-Y MAY-2S 004) AND 5 2
- 9. DAILYTEMPERATUREREADINGS OF THE SHAKING WATERBATH...
33
10. pH MEASUREMENFTOSR D0A ANDDY AY5
34
_--
CompanySeize.DocsNotConTsSCiACBnI.
Ame
Hydrolytic Stability ofH-25435 as a Functionof pH
DuPont14965
LIST OF FIGURES
Page
1. EXAMPLE CALIBRATION CURVES OBTAINED FOR MONITORED
Jounnddl
2. BEXLAAMNPKLSEAMCPHLREOMFAORTOpGHR7.A0MBSUFOFFEMROONNITDOARYE0D.
i. JOBTAINED FOR A n
3. CEAXLAIMBPRLAETICOHNRSOTMAANTDOAGRRDACMOSNOTFAIMNOINNIGT$.3ORmEgD/L H-25435. J OBTAINED FOR A 38
4. DEXAAYM0P, LpEH 7C.H0 RHOYDMRAOTLOYGTRIACMSSTAOBFILMIOTNYISTAMOPRLEE.D|..
JOBTAINED FOR 39
5. EDXAAYM5P, LpHE C7.H0 RHOYDMRAOTLOYGTRIACMSSTAOBFILMIOTNYISTAOMRPLEED{...
J OBTAINED FOR
6. REPRESENTATIVE CALIBRATION CURVE FOR 8:2 TBA. c
a
7. ARENPDR5E1S5EpNgT/ALTDI-8V-E2CTHBRAOINMTAETRONGARLASMTSANODFA1R0D4.ug/..L...82 TBA CALIiBRATION STANDARD a2
5. REPRESENTATIVE CHROMATOGRAMS FOR DAY 5, pH 7.0 BUFFER BLANK SAMPLE. ...........43
9. `RSEAPMRPELSEEANTNADT5I1V5EpCg/HLRDO-8M-A2TTOBAGRIANMTESRFNOARLDSATYAN5,DpAHRD7..0 HYc DROLYTICc STABILITY s
~
10. `RSEAPMRPELSEEANTNADT1I5VEpCg/HLRDO-8M:A2TTOBAGRIANMTESRFNOARLDSATAYN0D,ApRHD7...0 .HYDROLYTIC STABILITY
as
Company Santized. DFoSss NotCanainTSCACBI. AR
Hydrolyic Stability of25435 153 Funcion of pif
DuPont-14965
STUDY INFORMATION
`SubstanceTested: [
l
Synonyms/Codes: ++ [H25435 ]
1
1
HaskellNumber: 25435
Composition: [
]
{
1
r
]
r
1
[
1
(
1
KnownImpurities: None identified
_
Physical Characteristics: Amberbrown liquid
Stability: The test substance appeared to be stable under the conditionsofthe study; no evidenceofinstability was observed.
Study Initiated/Completed: May 4, 2004/(see report cover page)
IInn-Liitfieated/Completed: May 6, 2004/July 6, 2004
-_--
Company Suitzed. Docs NotConTtSCAiCBnI
Re
Hydrolyic Stability ofH-25435 as a FunctionofpH.
DuPon-14965
SUMMARY
The hydrolytic stability ofH-25435 was tested in buffered aqueous solutions at pH 4.0, 7.0, 9.0
at 50C and pH 1.2.at 37C for five days. [
representing
major chemical species present in H-25435 were monitored during the hydrolytic stability study.
Measured concentrations and recoveries of individual [
J reported as
average concentrations and recoveries for Day 0 and Day 5 replicate samples, were used to
evaluate the hydrolytic stability ofH-25435. The average percent recoveries for the Day 0 and
Day 5, pH 1.2 replicate samples were 76: 5.9% and 63 + 28%, respectively. The average
percent recoveries for the Day 0 and Day S, pH 4.0 buffer replicate samples were 97 3.0% and
95 44.4%, respectively. The average percent recoveries for the Day 0 and Day 5, pH 7.0
replicate samples were 92: 1.1% and 90 + 0.9%, respectively. The average percent recoveries
for the Day 0 and Day 5, pH 9.0 replicate samples were 96 0.6% and 95 9.3%, respectively.
`The H-25435 was demonstratedtobe hydrolytically stable at pH 9.0, pH 7.0, and pH 4.0. The
data obtained for hydrolytic stability of H-25435 at pH 1.2 show the differenceofaverage
recoveries for monitored [
between Day 0 and Day $ samples is larger than
10 percent. However, a precipitate was observed after additionofthe test substance to the
pH 1.2 buffer. The precipitate was difficult to completely dissolve even after addition of
acetonitrile and extended sonication, especially for the Day 5 samples. This lowered the:
observed recoveries, especially for the bis esters. Therefore, the observed change in the average
---
recoveries between the Day 0 and Day 5 samples is most likely because ofobserved solubility.
problems rather than hydrolysis.
`The measured concentration of 8-2 TBA did not indicate any hydrolytic degradationof H-25435 108-2 TBA for any of the investigated pHs. The observed concentrations of 8-2 TBA can be explained by the residual 8-2 TBA present in the test substance (H-25435). There was no significant increase of 8-2 TBA concentration observed between Day 0 and Day 5 samples for any of the investigated pHs.
-- p ep p `Compaay Seized.DoAsRs2N2o6t ContiTSCACBI
Hydrolytic SsbiltyofH-25435 as a Funcionof pH
DuPont.14965
INTRODUCTION `The purpose of the study was to investigate the hydrolytic stability of H-25435 in pH 1.2, 4.0, 7.0, and 9.0 aqueous buffer solutions. The study was conducted according to the protocol: "Hydrolytic stability ofH-25435 as a functionofpH", which was pattemed after the OECD Guideline 111.0" Additionally, the concentration of the 8-2 TelomeBr Alcohol (8-2 TBA) was monitored to investigateif 8-2 TBA is released from the test substance during the test.
STUDY DESIGN A preliminary test was performed on the test substance at 50 0.1C at eachof the pH 4.0, 7.0, 9.0.and at 37 0.1C for pH 1.2. Ifless than 10% ofthe test substance hydrolysis is observed. after 5 days, the test substance was considered hydrolytically stable and no additional testing was. performed. In addition to the test substance determination during the preliminary test, the: samples were analyzed for 8-2 TBA.
MATERIALS AND METHODS
A. Materials
1. Name:
Test Substance Hasiss
Composition:
(
(
11
({
1
1
(
1
Haskell number:
t
)
25035
2. Residual 8-2 TBAin H-25435 Residual 8-2 TBA content in the test substance (H-25435)was determined by LC/MS using the same analytical method as described in Analysis of 8-2 TBA in Methods. Five replicate samples of H-25435 (approximately 45 mg) were introduced to glass vials, weighed, 10 mL ofTHF (tetrahydrofurane) was added, vials crimped, and sonicated for 1.5 hours.A 0.1 mL aliquot of dissolved sample was transferred to a glass LC vial and 0.9 mL acetonitrile and intemal standard - (raDn-g8e-2fTroBmA)10w0atsoa1d0d2e0d0. nCga/limbLra8t-i2onTBsAta.ndards were made in 10/90% THF/acetonitrile in the
Company Saniized. DAoRczsN2o6tContinTSCACBI.
3. Preparationofbuffer solutions "The following buffer solutions were prepared as described in the Annex to OECD
guideline 111.0
a pHI2
"The 0.2 M potassium chloride (KCI) was prepared by dissolving 3.73 g of KCI (purity 99.0%, Sigma) in 250 mLof water. The 0.2 M hydrochloric acid (HCI) was prepared by diluting 4.5 mL. `of hydrochloric acid (36.5-38%, Sigma) in 250 mL water. The pH 1.2 buffer solution was prepared by placing 125 mL of 0.2 MKCland [ ] mL ofa0.2 M HCI solution into a 500-mL ask and bringing the flask to volume with water. The pHofthe buffer was adjusted to 1.2 with sodium hydroxide.
bo pH4
"The 0.1 M solution ofpotassium hydrogen phihalate was prepared by dissolving 5.1 g of potassium hydrogen phthalate (purity 99-+%, Sigma) in 250 mLof water. The pH 4.0 buffer solutionwas prepared by placin2gmL of2 0.1 M sodium hydroxide solution and 250 mLof a 0.1 M potassium hydrogen phthalate solution into a 500-mL flask and bringing the flask to volume with water. The pHofthe buffer was adjusted to 4.0 with hydrochloric acid.
e pHT:
-
`Tphheos0p.h1atMe, smoolnuotiboansoifcp(oKtHazsPsOisu,mppuhroistpyh9a9t.e5w%a,sSpirgempaa)reidn 2by50dimssLoolfviwnagt3e.r4.gTohfepoptHas7sbiuufmfer
Solutionwas prepared by placing 148 mLof a 0.1 M sodium hydroxide solution and 250 mL of
the 0.1 M potassium phosphate solution into a 500-mL flask and bringing the flak to volume
with water. The pH of the buffer was adjusted to 7.0 with hydrochloric acid
a pH:
"The 0.1 M boric acid (HBO) solutionin 0.1 M potassium chloride (KCI) waspreparedby dissolving 1.90 g of KCI (purity 99.0%, Sigma) and 1.55 g ofHyBO (purity 99.5%, Sigma) in 250 mLof water. The pH 9.0 buffer solution was prepared by placing 250mL of a 0.1 M H;BOs solution in 0.1 MKCl and 106.5 mL oaf 0.1 M sodium hydroxide solution into a 500-mL flask and bringing the flask to volume with water. The pH of the buffer was adjusted t0 9.0 with hydrochloric acid.
`Water used for buffer preparation was obtained from a Banstead NANOpure Diamond water purification system. The war resistivity was > 18.2 megaohmeem. All buffer solutions were sterilized prior to use by filtering through Corning Sterilization Filter systems with 0.22-pm cellulose acetate filter. The buffer solutions were stored at room temperature.
e Company Saiz. Dosse Nt Cons TSCA CBI ARz26
Hydrolyic Stability ofH-25435 as a Functionof pit
DuPont 14965
4. Equipment
pWHatMeerteBra:th
OPrreicoinsiMoondReelci2p5r0ocAal Shaking Water Bath, Model 50, Precision
AAuuttoocmlaatviec: Pipers: AReMscSaCrcOh MPorode1l003,0210300, 5000; Eppendorf
CBoanltainfcuege:
MSeotrtvlaelrLAeEg-e1n0d0RT
VoGrltaesxserVi:als:
M1u0lmi-Ltbuobreosviolritceaxteer,SeVrWuRm.Type Reaction vials (Supelco) with 20 mumBari Septa
(3F0omiilnSibleifcoornees),e0.1" thick (Supelco). Thevialsandsepta were autoclaved at 121C for
B. Methods
1. Preliminary test `The preliminary test was performed on H-25435 at 50C at each of the pH 4.0, 7.0, 9.0 and at 37C for pH 1.2. The same sample preparation procedure and study design was followed for ach of the pHs tested. Approximately 45mgof the H-25435 was weighed into sixteen 10-mL. autoclaved glass vials and 3 mL of appropriate buffer solution was added. The vials were crimp capped with the aluminum foil covering the partof the septa facing the inside of the vial. Eight ofthe vials were processed foranalysisas the Day 0 samples. The remaining eight sampleswere wrapped with the aluminum foil, submerged in the water bath, and shaken at 100 rpm in the -- water bath for five days at the appropriate temperature. Eight vials containing only 3 mL of appropriate buffer were prepared to serve as the blanks. Four of them were used as the Day 0 blanks and the other four were wrapped in aluminum foil and placedinthe water bath to be the Day 5 blanks. Additionally, six vials containing 3 mLof appropriate buffer were spiked with 8-2 TBA stock solution (4.5 uL of 1040 mg/L 8-2 TBA). The vials were crimp capped with the aluminum foil covering thepartof the septa facing the inside of the vial. Threeofthe vials were: used as the QC samples for 8-2 TBA analysis on Day 0. The other three vials were wrapped in aluminum foil and placed in the water bath together with eight ofthe test substance vials. These serveda role of QC samples for 8-2 TBA analysis on Day 5. Fourofthe Day 0 or fourofthe. Day 5vials and two blank vials were processed for the H-25435 determination. The other four ofthe Day 0 or Day 5 vials, two blanks vials, and 8-2 TBA QC vials were processed for the 8-2 TBA determination.
2. pH measurement and temperature `The pH was measured on Day 0 and Day $ in the vials containing the bufferandthe test siunbtsrtoadnuccee,d dteostihgenavtiaeldsfaonrdthteheH-p2H54re3a5diannaglwysaiss.taTkehne. vTiahlessweevriealusnwceaprpeefdu,rtthheerppHroecleescsterdodfeorwas. H-25435 analysis. The temperatureofthe water bath was monitored daily. The water bath has. an automatic temperature control built in. The readingsofthe temperature control were checked and recorded daily.
3. Analysis oftest substance
H-25435 is amixture of[
-
present in H-25435
-
Company Sniize. DAocseNotContainTSCA CBI.
1 The
1
10
Hydrolytic Stabilityof H-25435 as a Function ofpH.
{
DuPont14965
1
-_-- Company Seaitized. DpocrsNeotContain TSCA CBI
Hydrolytc Stability of H-25435 as Function ofpH
1
DuPont14965
1
Company Santaed. DoEScs NotConiaTSCA CBI. pre
Hydrolytic Stability ofH-25435 as a Function ofpH.
[
DuPont 14965
1
--
--Company Snized. DoesNotContain TSCA CBI ARs
Hydrolyic Stabilityof H-25435as a Functionof pH
(
DuPont-14965
1
`Company Sanized. DoseseNot ConanTSCA CB ren
Hydrolytic Stability of25435 a5 a Functionofpit
DuPont.14965
The test substance H-25435 has not been characterized to determine the actual contentsofthe. cchheemmiiccaall ssppeecciieess tthhaatt wweerree mmoonniittoorreedd dduurriinngg tthhee ssttuuddyy. weTrhee rceopnrceesnetnrtaetdioansstohfeitnodtailvidual concentration of the H-25435.
Vials designated for H-25435 analysis were uncapped, 6 mL of acetonitrile was added, vials waceerteonrietcrailpep:ewdataenrdbevfoorrteexaenadlyfsoirs.30 Tmhineutbelsa.nkTshaemopblteasiwneerdeexsturbajcetctweadstdoitlhuetesd1a:m1e0p0r0ocweidtuhre2,:1 except the pH measurement.
"The stock solutionof H-25435 was made by dissolving 0.01 g of H-25435 in 10 mL of2 mL. isopropanol:8 mL water. Calibration standards for the H-25435 analysis were made by appropriate dilutionofthe stock. The calibration standards ranged from 1 10 10 mg/L of H-25435. Fresh calibration standards were prepared for each instanceofanalysis. Linearor quadratic regression of the peak area vs. standard concentration was used to establish the: calibration curves.
_--
Company Sania.Dos NotContTSaCAiCBnI
AR26
Hydrolytc StabilityofH-25435 ss Function ofpH
DuPont 14965
Instrumentationand conditions:
HMPSLICnsItnrsutmreunmtent
MQoudaetlroAgMiilcernot, 1W1a0t0e,rsAgilent
CLoClPuamrnam:eters: Mobile Phase:
XterraAeMS0.C1158%,(3v0vm)macexti2c.1acmkmd/,102.mMumtriethylamine in water
GradiBc-at:0.15% (vi) aceticacid/10mM ricthylamine in methanol
Tim0e0(min) %Bs0 Flow (0m2m5in)
2800
110000
002255
81101
110000
003500
110520 5500
002255
CInojelcutimonTVemopleuramt:ure:
souolc.
MToSniPzaartiaomnetmeordse::
Electrospray, negative ions
CCaopniellvaorlyavgoel:tage:
232v1v
_
SDoeusroclevaTteomnpeTreamtpuerrea:ture: ~~ 415200CC
Data Acquistion Function: CC68-:P mmoonnoo eestteerr fioonn:: SSIIRRooff#$4433 mmizz;; 00--1122 mmiinn
C(C1o0--PP-mIoPAnomiesxteedreiosnt:SonI:R oSfI6R4o3f4m8iz5;m0z-1;20m1i2n min
((CCIB0P-PI-PIAPAmmiixxeeddsesteriojno:n:SISRIoRfof568855mmzi;z;0-01-212mimnin
(CPCC6B-bbiiPssee-ssteeCtrfiEoonn::SSIIRRooff788899mmiizz:;00.-1122 mmiinn
`CC1B0--PP--CCB1I0CEb-isP-sCtIeO biions:esIteRr ioofn:10S8R9 wozf;9809-1m2izm;i0n-12 min.
4. Analysis of 8-2 TBA Samples designated for 8-2 TBA analysis were processed by injecting 3 mL methyl-tertbutyl ether (TBE) through the vial septum using a glass syringe. The pH 1.2 samples required neutralization before the extraction. Neutralization was done by injecting 0.27 mL of IN sodium hydroxide to the sample vial before the MTBE addition. Neither Day 0 nor Day 5 samples were uncapped before MTBE injection to avoid any losses of 8-2 TBA. The vials containing injected MTBE were vortexed for 20 or 30 minutes on a multitube vortexer, centrifuged for 20 minutes at 4150 rpm at room temperature. Occasionally, the MTBE and aqueous layers would not separate. even after centrifugation. In these cases, samples were be placed in a freezer at -20C for overnight storage, removed from the freezer, allowed to come to room temperature and centrifuged for 20 minutes. Subsequently, the sample vials were uncapped and 0.1 mL of the
`Company Sized. DTosisNo ContainTSCA CBI. AR26
Hydrol Stability ofH-25435 3s a Functionofpt
DuPont.14965
MTBE extract was transferred toa glass LC vial, 0.9 mL acetonitrile added, the extract was spiked with internal standard, crimped capped, and subjected to LC/MS analysis for 8-2 TBA.
`uTsheed 1aHs,th1eH,an2aHly,ti2cHa-lpesrtfalnudoarroddoefca8n--21T-oBlA.(97T.h6e%,1OD,ak1wD,oo2dD,Pr2oDd,uc3t-s1,3CW-ehsetptCaodleucmabfilau,orSoCd)ecwaansol (M+5) (abbreviated as D-8-2 TBA) was used as the internal standard. Stock solutions (w1e0r0e0smtogr/eLd)reoffritgheeraatneadl.ytiTchael sctaalinbdraartdioanndsttahnedairndtesrnwaelrsetparnedpaarrdewdefrreesphrleypfaorreedaicnhmceatlhiabnraotlioanndin 10/90% MTBEacetonitile. The calibration standards were made in the range from 100 to 10,000 pg/L 8-2 TBA. A constant levelof internal standard was used: 515 ug/L D-8-2 TBA. `The calibration curves were constructed using the ratio of the peak area for ions m/z monitored for 8-2 TBA and peak area for ions monitored for D-8-2 TBA and the concentrations of 82TBA.
Company Saized. DTochsNotCons TSCACBI pre
Hydrol StabilityofH-25435 ss a Funcion ofp
-
instrumentation and conditions
Dupont14965
MHSPLlCnsItnustmreunmtent 7Mo0d,eWlat2e7r95s, Waters
CoLlCuPmarnameters: Mobile Phase: CInojelcmtiaonTVeomtpeurmaet:ure: Column Switch
AtewraaeMrS CI,30mmx 2.1mm, 2.5ym
BGr-aTdmiieetmnheta:(nmoiln) un
us
o2v
EFfoy
10000
ai
0
Iro}
3200C4 5
0
wo
Zand min
Flow 0(2ms m) 0023ss 0023ss 02s
MToSniPzaartaomnetmoedres:
Blctospy, negative ons
CCSoaonpeiulvroTyleumvgpoele:traagteu:res 2o125v0kC
- DDeastoalAvcaqtuiiosniTtieomnpFuenrctsio:n: $D302-8TC2HAT:BAS:ISRoIfR4o6f34,657.23280.6mmiisn0.6 min
5. Calculations "mTohneitfoolrleodwfionrgHc-a2lc5u4l3at5io(nTsabwleerse1u-4s)e.d tFoordeetxearmmpilnee,tihfe re0.c0o45vegroifesHo.f2i5n4d3i5viwduaaslwcehiegmihceadlisnpfoectihees veiaaclhoanfdt3hemcLheomficbauflfseprewcaiessawdadse:d(t0o.0t4h5e vga*l1t0h0e0nmogm/ign)al/0c.o0n0c3enLtr=ati1o5n,0t0h0atmwga/sL.asTshigenendomtional wcoanscecnatlrcautliaotendubsyeddifovridriencgotvheerymecaalscuurleatdicoonnwcaesntarantaivoenrbaygetohfefnooumrinraeplliccoantcese.ntrTahtieon%,rteicmoevsery 100%.
"fTohleloewxsp:ecttheed4(.5noimiLnaolf)1c0o4n0cemngt/rLat8i-o2n oTfB8A-2sTpiBkAe rienptrheessepnitksed4.5 sLampxle1s04w0asngc/aplLc=ul4a6t8ae0dsng o8-f28.T2BAT.BAThiinstahemoMuTnBtEwaesxterxatcrtaicst:e4d6w8i0thng3/m3 LmLo=f1M5T6B0En.g/TmhLe. eT xpec%th erdecnooe vmeirnayliscocnaclecnutlraatteidon by dividing the measured concentration by the nominal concentration, times 100%.
d"TehreivHe.d25fr4o3m5 rceosnitdauianls8r-e2siTdBuaAli8n-t2hTeBAM.TBTEheexetxrpaecctt3ed,mLm)a,xaismsuummicnogncceonmtprlaettioeneoxftr8a-c2tiTonBAfoar 4(159m,4g00saumgp/Ll)e.ofH-25435 is: 45 mg of H-25435 x (0.129%/100)/0.003 L= 19.4 mg/L
S-- e---- Company Sai-- . DaogeeNAo--t C--on-- ti--nT--SCA--CB--. ---- ------------
Hydrolytic Stbilty ofH-25435 as a FunctionofpH
DuPon-14965
RESULTS AND DISCUSSION
TJambelaessur1e-4dpfroersHen-t25th4e35resaunldtsafvoerramgeeascuonrceedntcroantcieonntsraatnidonrseaconvderrieecsovfeorrieDsayof0inadnidviDdauayl5[ replicate
ScaalmcpulleastefdoraspaHn 1.a2, v4e.r0ag,e7o.f0,co9n.c0,enrtersapteicotnisvealny.d rTehceovaevrieersagoefconcentration and recoveries w1 ere
`monitored for H-25435. The average percent recoveries for the Day 0 and Day 5, pH 1.2
replicate samples were 76: 5.9% and 63 + 28%, respectively. The average percent recoveries
for the Day 0 and Day 5, pH 4.0 buffer replicate samples were 97 + 3.0% and 95 + 4.4%,
rweesrpeec9ti2v4ely1..1T%ahnedav9e0rage0.p9e%r,cernetspreecctoivveerliye.s TfohretaheveDraagye0pearncdenDtaryec$,ovpeHrie7s.0forreptlhiecaDtaeysa0mapnldes
Day 5, pH 9.0 replicate samples were 96:= 0.6% and 95 + 9.3%, respectively. The difference of
aavnedrpagHe9r.e0cobvufefreiress. beTthwiseeinndtihceatDeasyth5atatnhdeDHa-y25043sa5mipslheysdwroalsytliecsaslltyhasnta1bl0e%atfotrhepsHesp4H.s0, pH 7.0,
(12 >one year). Similarly, the difference in recoveries
1
for Day 0 and Day 5 samples at pH 4.0, pH 7.0, and pH 9.0 buffers were less than 10%, except
the C10-P-C10 bis ester at pH 4.0 and pH 9.0 buffer. The average recoveries for Day 0 and
Day 5 samplesofthe pH 1.2 bufferdifferby more than 10%. However, in case of pH 1.2 buffer
a precipitate was observed after additionof the test substance to the buffer. The precipitate was
difficult to completely dissolve even after addition of acetonitrile and extended sonication,
especially for the Day 5 samples. This lowered the observed recoveries, especially for the bis
- esters. Therefore, the observed change in the average recoveries between the Day0 and Day 5
samples is most likely because of observed solubility problems rather than hydrolysis.
Figure 1 shows example calibration curves for [
J monitored during the hydrolytic
stability study. Figures 2-5 show example chromatograms obtained for the monitored [ 1
fora pH 7.0, Day 0 blank sample, calibration standard containing 5.3 mg/L. H-25435, pH 7.0,
Day 0 test sample, and pH 7.0, Day 5 test sample.
The contentofresidual 8-2 TBA in H-25435 was measured using the procedure described in Section A.2. Based on the resultsoffive replicatesofthe H-25435, the content ofresidual 82 TBA in H-25435 was calculated to be 0.129+0.0048%. Assuming that the buffer extracts all the residual 8-2 TBA from the test substance during the time of hydrolytic stability experiment, t(hseeeex5pCeacltceudlactoinocnse)n.traTtaibolneosf48--82prTeBseAntinthtehemeteasstusryesdtecmonwcoenutlrdatbieon1s9.o4f m8-g2/LTB(1A9,f4o0r0Dpagy/L)0.and Day5 replicate samples for pH 1.2, 4.0, 7.0, 9.0, respectively. The concentrationsof 8-2 TBA `measured for the Day 0 samples are slightly higher than the expected concentrationof8-2 TBA originating from residual 8-2 TBA. This may be due to different extraction methods used for determinationofresidual 8-2 TBA in the test substance and the method used for analysis of hydrolytic stability samples. The Day 5 concentrationsof8-2 TBA are comparable with these observed for Day 0 samples. The observed differences in concentrationof8-2 TBA between the Day 0 and Day $ samples for pH 7.0, 9.0 buffersare in the range of error for the analytical `method used (+15%). A decreaseof 8-2 TBA concentration between Day 0.and Day 5 may be --- e8x-p2lTaiBnAedcboyncaednstorrapttiioonnsobfet8w-2eeTnBDAayon0tahnedprDeacyipi$taftoer pobHse4r.v0esdafmoprlethsisisplHa.rgTerhethdainfcfaernebnec.e of
Company Saiized. Doi csNotConia TSCA CBI Ame
Hydrolytic Stability ofH-25435 as a Function ofpH.
Dupont. 14965
explained by the analytical method error (Table 6). However, the observed QC sample recoveries for Day 5 samples indicate higher than expected bias of the analytical method for this Set of samples. Thus, the increase of 8-2 TBA concentration for Day 5 samples is most likely due to analytical method performance rather than the test substance hydrolysis.
Figure 6 shows a representative calibration curve obtained for 8-2 TBA. Figures 7-10 show. chromatograms for 8-2 TBA calibration standard; Day 5, pH 7.0 blank sample; Day 5, pH 7.0 test sample; and Day 0, pH 7.0 test sample, respectively.
`Table 9 summarizes the water bath temperature recording for pH 1.2, 4.0, 7.0, and 9.0. In all cases, the water bath temperature was maintained at the specified level with deviation not exceeding + 0.1C.
Table 10 summarizes results of the pH measurements for pH 1.2, 4.0, 7.0, and 9.0. The measured pHof Day 0 and Day 5 replicate samples for allofthe investigated pHs was at the specified nominal level with the deviation not exceeding 0.1.
CONCLUSIONS
The hydrolytic stability ofH-25435 was tested in buffered aqueous solutions at pH 4.0, 7.0,
9.0.21 50C and pH 1.2 at 37C for five days. The H-25435 was demonstrated to be
-~
hydrolytically stable at pH 9.0, pH 7.0,and pH 4.0 with ty >one year. The data obtained for
hydrolytic stabilityof H-25435 at pH 1.2 show the differenceof average recoveries for
`monitored [
J between Day 0 and Day 5 samples is larger than 10 percent.
However, in case of pH 1.2 buffer a precipitate was observed after additionofthe test substance.
to the buffer. The precipitate was difficult to completely dissolve even after addition of
acetonitrileandextended sonication, especially for the Day 5 samples. This lowered the
observed recoveries, especially for the [
) Therefore, the observed change in the
average recoveries between the Day 0 and Day 5 samples is most likely becauseofobserved
solubility problems rather than hydrolysis.
`The measured concentration of 8-2 TBA did not indicate any hydrolytic degradationof H-25435 108-2 TBA for anyofthe investigated pHs. The observed concentrations of 8-2 TBA can be explained by the residual 8-2 TBA present in the test substance (H-25435). There was no significant increase of 8-2 TBA concentration observed between Day 0 and Day 5 samples for anyofthe investigated pHs.
= -_-- Company Saniized. Docs NtContinTSCA CBI. ARz26
Hydrolytic Stability ofH-25435 as a Functionofpil
DuPont14965
RECORDS AND SAMPLE STORAGE `Specimens(ifapplicable), raw data, and the final report will be retained at Haskell Laboratory, Newark, Delaware, or at Iron Mountain Records Management, Wilmington, Delaware.
REFERENCES 1. Organisation for Economic Cooperation and Development (OECD). May 12, 1981. OECD
Guidelines for Testing of Chemicals, Hydrolysis as a Functionof pH, OECD Guideline No. 111.
EE `Company Saiized. Dpoers NeotContainTSCACBI
Hydrolytic Stabilityof H-25435 as a FunctoifopHn.
DuPont-14965
TABLES
-_--
Company Seized. Docs NotContainTSCA CBI
Anz
TiBg [BL] | ee]
Hf Je] re oe
3ILE] ol] el
3id[He] fe] Jo
3H A
|
CA PEE |
2 H[ El fe |
: [PP Ee fgP|
Jf [IPE BL Ee
|
IF [LR ie ie P| 3
401% [[3EEReeE] el] [PFeE] ee| i
dF [EErE(ell EERE el|
IER EEIEEEERNMHAEREE :
-# &
BE Bg L(A el] Ee [ee
3 Fl PL ele] ol
3) Pl] Pe ee
gAREI=|IC1E8 EC8RCER" RECEEN Eg RE
3i [BL] el] el ||:
8<
L==HLi ] euil] ee =*
|| {*
3
---
32i$0cH]]
fl ol Pl fo Bl
|
13g
|i
|
1
FH
[|[fee ole B|l
|5
I SEINCECNCENEEEERERs
I WEINCCECRERRNCCEENERE
oF03 E EEEREE(TT|al)eld) FEREEREER (rel
8g LAER EERE
2&
TtBg [I [Fe
2 ef
3) Eel es
2 3 LL] fl] ef ef
EBg I=LE] El
|
| &[Al [EP P| |5
2 I Be |
ee BE
EI 3 [LE PL Ff PL 8
I QE ECEER EEN EEEN Cet
<
3
1&
2
[31
[EE]
ee oo
5% [El
EaRE
30 F
a8g3
ERR (elf
[AD[ElE=] 3
EEE
FLlaEleA
(held
3
|&
TgBg 1El] 1 120d
3] Pl PE eee [ee
3 |e
AREICCCCRCEENEEEEREER
3{7H ol] ||
8H]a>
g
fe 3 |g 8 o|go] eg2
|]3
2
TE ofl] oo] ee ef
$1140 PE PLE EE
EI 1 feed 2 J
Ib EJ | PeJo
jAE LE ee]
3
8][-]-]-[+]
[-[-T]
3 Eee
[I-11] i
dg Lol ERRE
~- i i
Ra iSara
--
lm `Table 5: M5e(a0s8u-rJeund-c2o0n0c4e)n.trationsof8-2 TBA for pH 1.2, 37C, Days 0 (03-June-2004) and
coma| gm
FPC er TE wT ] |--
1 ET ----]
C--r E--t re e--e a a ]
FCiieeTTaear o ne----T --m--T] --w]
~
T = --rTTT ] me--]--
CCCEee T Tw e a] ]
EC S rT --T ---- ] -- |
C T rTrr Toe e e ae] ]
Fa E e rTo so a ]
EC E TT -- T-- e-- T ----
cesi 5cinc
Hydeolyio Sublliy of H-25433saFunctionotpll _____
DPontid%6s
`Table 6: Measured concentrationsof8-2 TBA for pH 4.0, 50C, Days 0 (13-May-2004) and
CoT ]ee n [ m| 5 (18-May-2004).
rr
1
[oo TT ww 1
[eo Tom
aw 11
[oe Tos
1 awe 177
[eo ToleTwa7}
TT
CT1 wee Tm |
[ ovis|| ow |
1 1 1
[oo Todeerl so Te|w ws |
[eo Toleal woTew "7 |
[oo[oeo] weTw Tw |
rrr
rT
-
[These we |
LT sebwioeisin | 20 |
rr rT
[ooTs
1 wm 1 1
[ooTso
1 ow
|]
[oo Tw
[os wm e
rrr
rT
LT hee| wT w
[ omtinoiien ||
rT
[eo TsToa] weTo[o ww |
[ooTsfea Two 1a0 [7m |
1
[IT
7 Awe[wr |
LTTsoT wie [55]
EE
Table7: M5e(a1s1u-rMaeyd-c2o0n0c4e)n.trationsof8-2 TBA for pH 7.0, 50C, Days 0 (06-May-2004) and
LL=] rTTT
[oe Tol1mm
[roTo = TT ow ||
ee ST
Taw
[oe oT om 1
TTT
EE E T --] T1711
[oo eerTwo | ww | we |
[oo ea Two | we | wm |
[oe ToesTwo Tw | wm |
TTT
Teme | |
CC
Sootiponmn | 10 |
rr rT
[ooTs
mew
1
= Tw|
oe ss|
[oo sm
1 aw
|
[ 1 rT
Es
ET 111
[oe [ser we | ww | ww | [0[51ea | we | we | | [oe[se| we | ww | wn | rr 1 [TaT w | ww]
meets CT somttomiin|5]
me EEE T 2 e eS ------------
Table 8:
LL es Measured concentrationsof8-2 TBA for pH 9.0, 50C, Days 0 (13-May-2004) and
5 (18-May-2004).
hi +
Concentration (ug/L)
[r oo Lo r Tr 1
[ooJo
em
[ooLolo Pm
foofol TT
rrr
1
TE
|=1] |
1 TT r T
[oo [oTeaTm oeTw1o wr|
[oo JoleaPoe1 we 1 ww |
[ooJoleo mseTw Tw |
-
TTT
TT ew |ow |
FT somtimes [50 |
rr
1
Foo sem
[ooIs = Tm
[ooTs TT ew
es
sm
rrr
1
eosmerTew m
11 --TT
[oo Tea Twa1 wo 1 |
---------
[ooIs[eo
ae Tw To w |
rrr
C1 eww |
CT somites | 56 |
=
Hydrol Subilyof 25435asaFunctionofpH
Dubon1d96s
Table 9: Daily temperature readings of the shaking water bath.
[mom |woT w [em] 11
Ee
omen [m0 |
e oT e oommeenn || 00 ||
Fe weno [0 |
ee omer[0]
se omen [0|
------ rT
Fe
so
wma [00 |
ow oman[00 |
[w omao n | m0
sw emo| 0 |
Fe
mao[00 |
~
Fs
man[a0 |
---- 7 1
[om Fo
oman | 0 | oman| 00 |
Fe oman| +
Tw oman ||
FT sT T oe mmaann|[000 ||
[1 1
eTe oma | 00 |
oe man | 00 |
ee oman | so |
[ToToman | so |
C[ sT To we maannT | | ssooo
[E--
TT `CompanySized.Does NoConTtSCiACrnB. ------------ AR2
HydrolytcStabilityofH-25435 as a Functionofpi
DuPont14965
`Table 10: pH measurements for Day 0 and Day 5.
[-- -- onThT e |Tm om-- a7nT|seamrapn]
ee |ee
[e e e 1m e e a
ee |Tee
e r e T e
se
e s a e e ae
-- 71
e Taa e]
eT ae |
[rT Tae|
---~
Tw| sm Taw |
ss Tam
-- v --| ------ e rT 1Tw |
1
me Te |
15
me Te | Tw |
[Te
T r e T ow
s s se ee|
-- T -- r e r 1 |
eT Se on
e T m e ]|
ee ow
s (----1 e 1 1om
Te om
Cs
Toa
CTTe | ow |
A ------ `CompanyS-- anitzed.Doese -- NotCoe nTtSa-- Ce AiCBn.e-- ------ -- -- AR226
Hydrolytic StabilityofH-25435 1s a Function of ptt
DuPont14965
-
FIGURES
_--
Eo
`Company Sanitzed. DAoeRs Nsot ConsinTSCA CB.
Hydrolytic Stability ofH-25435 as a Functionof pit Figure 1: Example calibration curves obtained for monitored]
DuPont.14965 I
-- Company Sized. Docs oTtConTsin TSCA CBI ARz2
A ------
Figure 2: Example chromatograms of monitored | sample for pH 7.0 buffer on Day 0.
EE
= EE
owrasos
Jobtained for a blank
----
ee
2
mH FE
fi
Ce EX
Compa Sen cotToon
Hydrolyic ability of25435 ssa Functionofpit Figure 3: cEaxlaimbrpalteiocnhsrtoamnadtaorgdrcaomnstaoifnmiongni5t.o3rmegd/L|. H-25435.
Dupont14965 obtained for a
Er
ue
Az o BE
Al
mg) N
--_--
CompanySniied.DoesNotConTSCtACaB.
ae
Hydrol SabiltyofH25435 as o Functionofpif
Figure 4: Ehyxdarmopllyteicchsrtaobmilaittoygsraammpsleo.f monitore|d
EE
Te
EE
Dupont. 14965
Iobtained for Day 0, pH 7.0 re]
1] LL :
EE
=a
re
LE
Ll
---
CompanySuze.DocsNot ConTStCAiCBn.
Ava
Hydrol abilityof 254358 a Functionofpit
Figure 5: EPxHam7.p0lehycdrhorloymtaietostgarbailmistoyfsmamopnliet.ored |
rEe E 0:
Te od E[FF E
DuPont14965
Iobtained for Day 5, = ree]t
Fes EaN TE [4E%P os x
Te]4
--_--
CompanySuze.Docs NotConTsSCiACBnI.
wn
Hydrolytic Stability of125435 as a Function ofpH.
Figure 6: Representative calibration curve for 8-2 TBA. `ompound name: 8-2TBA. orrelation coefficient r = 0.999939, 2 = 0.999878. alibrationcurve: 1.14*x9+7128.1779 Response type: Intemal Std (Ref 2), Area * (IS Conc. /1S Area ) urve type: Linear, Origin: Exclude, Weighting: 1/x, Axs trans: None 12045
DuPont14965
Response:
12 0 2000 4000 6000 8000 10000 ppb)
E CompanySaniized. DoesE NotContTSaCAiCBnI AR
Hydrolytic Stability of H-25435 as Function ofpi
DuPont 14965
Figure 7: R5e1p5ruesge/nLtaDt-i8v-e2 cThBrAomianttoergnraalmsstaonfd1a0r4d.pg/L 8-2 TBA calibration standard and
051104015 Smooth(n,1:3) stat 100.
82TBA 3.50 167187
F1SIR of2 channels ES7.4496030,+050243
%
o
1.00 200 3.00 400 5.00
min
_
05110415 Smooth(vn,1:3) stat
1S-62TBA _ F2SIR of2 channels S-
348
467,528
100.
783782
333904005
%
0
1.00 200 3.00 4.00 5.00
min
_--
Company Suniized. DrroN.oteConstin TSCA CBI AR
Hydrolytc Stabilityof25435ss FunctionofpH
DuPont. 14965
Figure 8: Representative chromatograms for Day 5, pH 7.0 buffer blank sample.
b0l5a1n1k014:5p0H7 S7;moDaoyth5(Mn 1x3) 100
F1:SIR of 2channels,ES6.8496830,4502033
%
o
1.00 2.00 300 400 5.00
min
--
b0l5a1n1k041;5p07H S7;moDoathy5(Mn,1x3)
100
F2:SIR of 2 chann4e6l7s,,5E2S8196604003
%
o
100 200 300 400 5.00
min
--_--nmm
CompanySniiae.DoHesoNotContTSaCAiCBnL aR
Hydrolytc StabilityofH.25435 ss FunctionofpH
DuPont 14965
Figure
9:
Representative chromatograms for Day 515 ug/L D-8-2 TBA internal standard.
5,
pH
7.0
hydrolytic
stability
sample
and
r0e5p111;04p6H387, SDmaoyo5th(Mn,1x3) 0
8:2TBA _ 3.49 338073.0
FA:SIR of 2 channels,ES13142603,4050263
*
0
1.00 200 300 400 5.00
min
~
r0e5p111;04p5H378;SDmaoo5yth(Mn 1x3)
F2:SIRof 2 chan4n6e7l,s5E2S8-
[100
1-38.246TBA_
2.392+005
635915
%
0
1.00 200 300 400 5.00
min
Company Sniized. Docs Noet CronseincTStCA-- CBI -- pre
Hydrol Stability of H25435 a Function ofpil.
Dupont. 14965
Figure 10: aRenpdre$s1e5nptagt/iLveD-c8h-r2oTmBatAoginrtaemrsnaflosrtDaandyar0d,.pH 7.0 hydrolytic stability sample
0re1p291:0p4H5377: SDmaoyo0th(Mn, 16) 100
8-A27BA 3534105
F1:SIRof 2 chann4e6l3s,E5S2-3 140604006
*
100 200 30 400 500
min
-
r0e1p291;04p0H377; DSamoyo0th(Mn,1x3)
F2.SIR of 2 chan4n6e7ls,5E2S8-
4 or
15-8278
3.49
28334005
7501.1
*
o
100 200 300 400 500
min
-_--
Company Suze. DAocns sNokContin TSCA CB.