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' v-'V-' -<THE. PHYSIOLOGICAL RESPONSE" OF THE ' PERITONEAL ^ .TISSUE TO DUSTS INTRODUCED AS FOREIGN BODIESL. -
V'Bjr Jbsde WT Mrr.umr,Acting AtrUirmt Surgton, .sad" B. B. 3*tm, Swvw%.
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' '^T3i physiological responseof thebody tissues to dusts of various
` kinds has beena subject ofmuch, interest im the past few years,and
'^",-the opinion that the injurydue to dust is chemical rutherthan ghysiy
'T--callin action has recently-gained greater ground.. Mayrogoiriator
Gardner, . Gye, and others have conducted experiments on the action
- of inhaled dusts., - Kettle , (1, i)*-hasr'studied the. response to dusts
infected into the subcutaneous tissues and intratracheally, andPoli--
eard.(,.l) has used the cornea and conjunctiva in his recent studies.
In. 1924, experiments were begun.at the Pittsburgh station of the
- United, States Bureau of Mines to determine the action and fate of
. various dusts when injected into the peritoneal cavity of guinea
pigs (5). The conclusions reached at that time were that live animal
.tissue in all parts of the body tends to react in essentially the same
maimer to foreign bodies and that fibrous tissue is formed in the peri*
toneal cavity by quartz and is not formed by limestone and coaL
This paper reports * continuation and. elaboration of these earlier
.`-studiee. . . ..
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:
. Owing to the length of time required to obtain a reaction by inha*
. Iation methods and the desirability of determining the harmfulness
of a dust in a relatively short time, other-methods of introducing the
dusts , to be studied were considered. Injection into the peritoneal
- cavity seemed to give the most promise, because of the relatively cir-
- cumscribed area of the cavity, the ease in controlling the amount of
the dose, and the preservation of the sterility of the material intro
duced--a factor to be considered in inhalation and intratracheal
- methods. Mortality following intraperitoneal injection 'from peri
tonitis or peritoneal damage was found to be negligible. Identical
reactions were found in each animal injected .with the same dust
under the same conditions and examined at the same time interval
after injection. (Animals in groups of from 5 to 20 were used' for
eech.aet of teat conditions.)- Therefore the fact that the reaction to-
the dust involves both epithelial and connective tissue is of ho
disadvantage.
...^
The- reaction is essentially the same microscopically as that pro
duced in the lungs, and the gross appearance of the dust nodules is
sufficiently differentiated to afford a means of classifying the physio
logical response to the dusts. In the series^ studied here, there were
. three types of reaction; namely, an absorption or dissolution of the
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dust; u-profiferatm
reaction the-dnstnei nor disappeared fro? change in ita-'disttil
be dlscussed'tthrwft
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conform aaelbsely'as
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composition-- ^Partic standard sxeves-were
The 32mesh size
the greater facility w
obtained by pasting
43 microns m size.
In a later serin, t
method of tiutriatioi
fractions of the sam
less than 51
tion, soapstone, mess
median size of the d
microns, with soaps;
particle size appears
physiological respond
seen that the air-sep;
under indust
were preferable, bee
the particles that hoc
same gross reactions,
study, can be used i
particles. Water" ee;
o o possibility f remove
during a change in th
I..- .1-- ncesiQi:
A; weighed portion suspension wexe.piact ih a hot-air oven for I
physiological saline s added, the bottle wa whole was thoroughly of fine dust causes a air-bulb syringes of
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AL dust,, aproliferativereactio^iiA,;r--a:n" d-an* inert reaction. ' In 'the inert reaction the-dnst neither caused an increase-in the size of the-nodules nor disappeared.from, the tissues; instead there was more or leas a change in its/distribution.in the peritoneum.- These reactions will ,,
/'It was.deairabl&lfor the particle'size of each dust in the series.to
- conform as closely as possible to that of the other dusts used, and also
to be as small as possibla'without a change in the physical or *hAmifnl
composition.".' Particles passed. through 100-, .200*,' and .325-mesh
standard sieves; were used, in one series of tests with several dusts.
The 325^-mesh size was found to be the most suitable, because of
the greater facility with which a reaction is produced. The particles
obtained by passing' a dust through a 325-mesh sieve were less than
43- microns in size. `
In a later series, a Poller type air separator (6) was used. This -4 method of eiutriation did not separate all the dusts in the- series into
fractions of the same size; yet it did produce, with ode exception,
samples less than 5 'microns in maximum measurement. The excep
tion, soapstone, measured 8 microns as a maximum particle size. The
median size of the dusts used in this series varied from 0.75 to 1.7
microns, with Soapstone at 3.5 microns. Such small variations in
particle size appeared to be of no importance in comparing the
3 physiological'responses produced by the dusts. It can be readily seen that the air-separated particles more closely approximate those
inhaled under industrial' conditions (7). While the smaller partides
wen -preferable, because of their greater assimilation by the cells,
the particles that had been passed through a 325-mesh sieve gave the
same gross reactions and, in- the case of all dusts mentioned in this
study, .can be- used in place of the more difficultly obtained smaller
particles. Water'aeparation was not attempted, because of the
possibility of removing soluble portions of the dusts and. thus pro
ducing a change`m. their chemical composition.
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;f# * ; TSGHHXQTTS OF IWTHXPISITONlUX INJZCTlOIfS
A. weighed portion of the dust and a few glass beads to facilitate
suspension were placed in a small wide mouthed flask and sterilized
in a hot-air oven for 1 hour at 150 C. After cooling, sufficient sterile
physiological saline- solution to make a 10 percent suspension was
added, the bottle was closed with a sterile rubber stopper, and the
whole was thoroughly shaken'. Owing to the fact that a suspension
of fine dust causes a locking of the plunger of a hypodermic syringe,
air-bulb syringes of 3-cc capacity were used.. Any small hypodermic
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purpose^. ^Needles of. 21r-ar-24-gage werefound most suitable.for the
- injections ~ The needles .and .syringes were sterilized in boiling water
ibefore use...-'-' ^
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if ^3".^*';'''' -The-hair on the.rigbt'side of the' animal'a abdominal wall was
| *Kiz'-~: ^ dipped,and.tincture-of iodine was applied.. Por injection, 2 cc of the
- 10-percent suspension, equivalent to-OJl g of dust, was introduced,
;.t-intraperitoheally, into each pig. ah the iodine-painted site. As the-
* S needle-was- withdrawn, 'a very small quantity,, about 2 drops, was
'* ^ injected into the subcutaneous tissue, to serve as a marker of the I ?" site- dlmjection- This marker made it- possible to observe whether-
any trauma was produced by the introduction of the needle into the
peritoneal' cavity and ita effect on the reaction instituted by the dust. 'i^W: Certain groups of animala were injected"with air-separated mate
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rial and other groups with 325-mesh material.. . The former were killed and examined 7, 14, 30, 56, and 60 days after injection; the
latter at the same intervals and also at 112 days.
^; msmntunON or thz dust in tbs PzarroirtAi. cavitt
With the exception of bituminous coal, the greater part of each of
the dusts- in this series was-found in the peritoneum of the anterior
abdominal wall; the most dependent portion of the peritoneal cavity.
The site of the nest largest collection was the omentum. Small nod
ules and dispersed collections of particles were also found in the ingui
nal canals, on the mesentery, liver, intestines, testes or uterus, and
diaphragm. - A very little was occasionally'found on the posterior
abdominal walL In the case of bituminous coal, the greater portion
was found in the omentum and mesentery, while a relatively small
pert was present on the anterior abdominal walL As a basis of com
parison (in describing the reactions caused by the dusts), the nodules
formed on. the anterior abdominal wall were used, since they were
more accessible and were more constant and uniform in appearance.
The response in the omentum or at any other point in the peritoneal
cavity was, however, the same as that found on the anterior abdominal t&a. walL . Nodules were only infrequently found in the peritoneum at the
site of the entrance of the needle--so rarely, in fact, that it was safe
to assume that the trauma produced by the introduction of the needle
was negligible.
i ; *
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FZBtTONXAL CAVTCT _
Adhesions between the various abdominal viscera and the anterior abdominal wall or omentum were- at first thought to be of some sig nificance. . However, it was noted that while the presence of adhe sions was more frequent when dusts of a high silica content were used
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and correspondingly stone, they were no) definite- conclusions formed occasionally content:' - They- wen mals injected with c these dusts .decrease tests- progressed: It was a result of the i the peritoneal cavity of irritation were tri while such a simple would be of value in rence is of such irretion depend so mud importance. .
TEZ TEBZTO
rJl CalciU?--Caldte,
formed nodules whii |
dumped. A w*nll
*:t about the edges of 11 sided before the end
oedema were evidei
tuted by the dusts,
size as th interval t
this decrease in sizt
pigment particles, w
and later covered ti
peritoneum. The <
small area of fine, b
o
These, in turn, soon | This type of reactio i
peritoneal cavity, lu |
one of absorption. .
one-of absorption, tissues was much all yet there was such in 90 and 112 days all of the dust will |
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and correspondingly less frequent with, such duets-u calcite and lime
stone, they were not of sufficient constancy to be used to drew any
definite conclusions as- to the activity of the dust..* Adhesions were
formed occasionally by calcite and by limestones of a very low silica
content They were-likewise present to a- marked 'degree- in the ani>
mala injected with cement; yet subsequent observations showed that
these-dusts decreased-appreciably in amount in the-tissues as the
tests progressed! It was concluded that the formation of adhesions
was- a result of the initial foreign body injury caused by the dust in
the peritoneal cavity:Various attempts to alleviate this initial stage
of'irritation were tried without success.. It can be readily seen that,
while such a simple response as the formation of peritoneal, adhesions
would be of value in interpreting the activity of the dusts, the occur
rence is of such irregularity and the factors involved in their forma
tion depend so much on chance that their presence is of no particular
importance.
.-
THX FZBITOKXaL BS3FONSK TO THE1 VARIOUS DUSTS
Calcite}--Calcite, after, being injected into the peritoneal cavity, formed nodules which were irregular, more or less discrete, but often clumped. A small amount of congestion and oedema was noted about the edges of the nodules in the early stages, but this had sub sided before the end of 30 days after injection. This congestion and oedema were evidently due to the initial foreign body injury insti tuted by the dusts. The- nodules became progressively smaller in .size as the interval between injection and examination increased, and this decrease in size was accompanied by the production of brown pigment particles, which were first noted at the edges of the nodules, and later covered their entire surfaces and diffused into the adjacent peritoneum. The original dust eventually disappeared, leaving a
area of fine, brown pigment particles at the site of the nodule.*; These, in turn, soon disappeared without the formation of scar tissue. ` This type of reaction, namely the disappearance of the dust from the peritoneal cavity, has been designated, for the sake of description, cs one of absorption. .: . - itfTuatona.S--Limestone caused a reaction' similar to that of calcite, one of absorption.^ .The rate in which the dust disappeared from the tissues was much-slower than in the case of the purer Iceland spar; yet-there was such a marked decrease in the amount of dust found in 90 and 112 days after injection that it can be safely assumed that all of the dust will eventually disappear. The initial foreign body
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irritation 'and the production of the brown pigment and its* disap*
Kr-'`* vpearance from the peritoneum-without-the formation of scar tissue
was identical with the process produced bycalcite.
*
' - Pneipitated calcium carioruite/--Precipitated caliMnm carbonate
. i produced a^ tissue response very- much like-that of calcite and lime*
stone.` The formation of the nodules was identical in character, and
i-5 :-s^Vr the origmal'dust disappeared in about: the same length, of time as in : l the-case of.-calcite; yet more brown pigmentation was produced, which
: Iingered.in the tissues for a-longer time than did that formed by the
' calcite. '-This increased production of pigment, might be attributed
to.the fact that the dust was in.a state-more easily assimilated by
g8;.~ % 'r?y the cells. 5 The pigment particles were much smaller in size and much
y greater, in number than those produced by either calcite or limestone. .
No evidence of scar tissue formation was noted in any of the animals
5 examined. The-reaction was dearly* one of absorption.. '
. . GypsvmS--Gypsum eventually produced a response similar to that
-r ; of calcite. In the early stages the dust appeared to lie inertly in the
peritoneum without any appreciable change. By the end of 30 days
a slight decrease in the amount of dust was noted, and by 90 days
. this decrease was marked. The color of the nodules became pro
gressively darker as the interval between injection and examination
increased? but the production of brown pigment, noted in the other
three dusts, was absent. Fine, dispersed dust particles, more or less
isolated, were noted in the peritoneum. These may have been the
. remains of nodules or else particles disseminated by phagocytes.
The diminution in the size of the nodules and the disappearance of
5. the dust from the tissues ware not sa rapid as in the case of calcite,
limestone, and precipitated calcium carbonate; yet this response was
. sufficiently marked to designate the reaction as one of absorption.
. . - Portland cem*n*.T--Portland cement produced a reaction slightly
- different from that caused by calcite, limestone, precipitated calcium
carbonate, and gypsum; yet the ultimate outcome appeared to be one
'.. of absorption. The initial.fareign-body irritation was quite severe--
" so marked, in fact, that 1ft of 36 guinea pigs injected with this dust
died during the testa. This was probably due to the chemical prop-
: erties of the cement. The animais that survived showed extensive
: peritoneal congestion and oedema in the early stages. After this.
- reaction had subsided, the dust decreased in quantity, with the for-
'. motion of a light brown pigment, similar to that produced by calcite,
ia.0:al to* pwttdM.
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adlaa a at tta oartteho LQOndnaso .
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THIS DOCUMENT WAS NOT A RECORD OF PPG INDUSTRIES, INC. DID NOT COME FROM IT'S FILES AND CANNOT BE AUTHENTICATED BY PPG INDUSTRIESJNC.---"
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M limestone,. and prt
I days after injectioi in the peritoneum,
will eventually disi
Cteartz.*--Quartz
' manifested by oed
" duat in thexperito: .. creased in size. '1
together,. forming
' present on the-surf
was that of cellular
COcal irritation suppli
-^presumably will cc
these nodules disap
^-is now being detenu
3in the tumor masse: cells, it seems likely
~ type f reaction, foi
"J one of proliferation.
3 - Chat}--Chat cam
;; nodules produced b
, than those formed
j found 90 and 112 c
: than those noted in
same as that of the
j> the duration of the
_ ddedly one f tissue
o o - Flint}*--Flint ca pearance to those p
what smallerin size
of time. ' The respo. Soapiton*}1--Soai
first 2 weeks'after ii
namely,, an initial ft
I tionwasn tserene
-f * *
injection and auto; rounded, became flu ular, and numerous
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Iimmtone^ and preapitatecT calcium carbonata. At .th end of 90
daysafterinjectdon a. large amount of this pigment was still present
m the peritoneum. Experiments to-determine whether this pigment
will eventually disappear are now in. progress. `
.;<hcarfx--Quartz,' after-aminitial stage- of foreign-body irritation,- t
'-manifested- by oedema- andfcongestion. about the collections of the
dust in the peritoneum, produced nodules which progressively- in
creased in. size. These nodules, - when occurring in clumps,. fused
. together, forming, a" single large- mass. -' Numerous capillaries were
present on the-surfaces and throughout the nodules. The appearance
was that of cellularproliferation and was apparently due to the cheim- -
cal irritation supplied by the. solution, of the silica in the tissue and ^ ,
presumably will continue as long as any silica remains. Whether --
these nodules disappear with or without the formation of scar-tissue -
is now being determined; but, inasmuch as the majority of cells foundTM, CD
in the tumor masses were macrophages, fibroblasts, and fibrous tissue- -
cells, it seems likely that scar tissue- will be the logical result. This
type of reaction, for convenience of description, will be referred to
~
one of proliferation.
. . f;
}
Chat.*--Chat caused a reaction similar to that of quartz though the ' '
nodules produced by the action of the dust were much larger in size
-
than those formed by the more pure rock crystal; The nodules J
found 90 and 112 days after injection were markedly larger in size . I
than those noted in 7 days. The color of the nodules, which was the j)
same as that of the dust introduced, remained constant throughout i
the duration of the tests. The reaction produced by chat was
cidedly one of tissue proliferation.
- <"D O
- FiintJ*--Flint caused the- formation of nodules identical m ap-
pearance to those produced by quartz. They were, however, some
what smallerin size than those produced by chat in the same intervals
of time. The response to this dust was clearly one of proliferation. -
- Soapaton4.n--Soapstone produced the same type of reaction in the
first 2 weeks after injection that was noted-in all of the other dusts;
namely, an initial foreign body irritation. This early fixation reac- .
tion was not severe and subsided quite rapidly. As the time between
- injection and' autopsy increased, the nodules, at first raised and
rounded; became flattened and spreading. ^ The edges became irreg
ular, and numerous 'fine dust particles were noted in the peritoneum
around rote autel at Ugh partly. Chtekal analyte atearod patent rilkm. NmonW*
aiamUiatloQ tbowadla. irymnim, normal qaam. MadianteaoftbaparridaA UmJaoaa.
Thawteapiuduatftwnttia miwomtVw otlaari and ringoral. ChamtelanalyteibtndTUpmnl
tflkm. PwmopMn rmlitloo tbo--d gifts and ctmrt. tetaad with limoclta. prodoaitnatlot. Atent
S patent at tterilte van norai, ongnte qott tngmonro. Madina ate at tte paRtete, LSiunu.
" rinaly ground nauytaanJn qonrtt. dwkd analyte abated Mil patent rilte. tangnpMa
ammlnatlim iligand quote at high purity. Mxlkn ate at Cm partlrte. Li mlam. n CPamical analyte iboirad ailte. <A8; mtctnm orida. 1.7; and magnaatnm qrtda. 3A3 patent. fa*o-
gmpblaaaatpaHan abated abate jOpatentaitrorooIttAabawm patent aa talc, and abates mrnarifa
i at Cm patriate, Liakraoa.
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THIS DOCUMENT WAS NOT A RECORQ
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PPG INDUSTRlE^JNC. DID NOT 60ME PROM- -- IT'S FILES AND Cfc&NOT BE AUTHENTICATED
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dri^-v . adjacent to the edge* ofthe nodules.'' Collection*-of these paxtides'
i\ m,: were-.found at various' other points in the peritoneum. The amount .
z| .itr#.-r, ' f.dust mths peritoneal cavity found 90 and 112 days after injection Zfr- - .was approximately the-' same as- that noted', in T days. The injected
1: ?';;- - dust was-neither absorbed nor did it institute a cellular proliferation. ;.
- The only change noted was that of the distribution of the dust in the * `
peritoneum. The-particles became more wide-spread in.their dis- -
fi peision as the interval between injection and, examination increased,. ^ and'thia- dissemination, was shown microscopically' to have, been ,,
- effected by macrophages. ' No appreciable change in the quantity of .
Ter* dustwas noted in-112.days after injection; and, inasmuch- as no dia-
- solution of the dust or ceflular proliferation occurred, this type of
reaction^ for the sake of description, will be- referred to as one of
inertness. /.
v
' 1 /" ' -
CarbfrrundumJ*---Carborundum, or silicon carbide, produced essen
tially the same type of reaction as soapstone.. The initial stage of
foreign-body irritation was not as severe, and the distribution of the
fine-dust particles in the later stages of the tests was more extensive.
-Though the nodules became more flattened and spreading, the
amount of dust found in the peritoneal cavity 90 days after injection
was approximately the same as was noted in 7 days. The material
is apparently a- noninitafcing, insoluble, foreign body and is readily
transported throughout the peritoneum by phagocytes. As no ab
sorption or cellular proliferation was noted, the reaction can be called
.1: one of inertness.-7 *". - -
i ...
-. J**xler*` nmjs.151--Jewelers' rouge, or ferric oxide, behaved in the
peritoneum in a manner similar to that of soapstone and silicon car* !! bide.- The nodules became flattened, and many dust particles were
. extensively disseminated throughout the peritoneum as the time
interval between injection and examination lengthened. .The amount .
of dust observed 90 days after injection was approximately the same
- as that found in 7 days.. The response of the peritoneal tissue to this
dust is therefore one of inertness.' - / "
' >. -.*
f7f3Sa **i*t
- Anthracite coaLM ^--Anthracite coal produced a more rapid response '' following- injection than did soapstone, carixjnmdum, or jewelers?
rouge." Minute dust particles were noted in. the peritoneum adjacent
to the nodules as eariy as 7 days after injection.. By 90 days this ;
distribution was quite extensive.. The amount of dust present in the .
: tt to* pKtWH. lu ataoaa
M-Hftn rffl
annlMiteaddclBBSaairdMdtdnMb Tinuffirhin nmlmtlm ihirnrt i THiti riirirrniimnti
Mfiaa, astiarci partida. Utianfit* ot VB partkM*, (LM mkxoa.
.:i.:
. " A Pwnytnni mthracil*. fOBrtpaioTrtiin>rlini ibowd abort M parcart aa ooai and fparoart
mtmrwt%ttkrm*nri*U. Of tba boar, abort to paranttpp**nd**<|iMtttiadi abort 40 pmaterafett*
adatlu. and null* Stadias aba a< tba panfwbti 0.73 oiont.
....... > -
A aaalrtaUar la ptirnnphignmwtlnn to tba* drlbari tofcotaota 14. Ifadlafrabaaf tba pat-
WAS nnr
'7"bb"o019937^
` CO?-30 6p i""-----------------
BY PPG <NWew^5" OjcoiWt FROM
2431
B
peritoneal cavity 91
as that found in. 7
coal dust was-inart
Bituminous coal,
dum, jewelers* mm
insoluble in.-the p
similar to those of
dust particles throu
With this dust very
mal wall, the mos
cavity to which inj j
majority f the nr
Many small nodul
O
found in every po dust present 90 da;
that found in 7 day j
Precipitator aahJ*
tion similar to that
The nodules behav
soapstone. Relath I
surfaces of the da:
particles, os the dn
of the original grn-
not as extensive os
the same as was foi
appeared to be no
cavity or cellular pr
in type.
** -
1. A definite qua ihtraperitoneaUy in-
2. Busts of two material with partic |
f air-separated ma I 8 microns in size!'
3. TliS Tiim .1. ip J
14, 30, 36, and 112 air-separated materi I
4. The response c|
nwnwThiBk. p*cr
U*Ur akua. MUu sz> ir rtuui Pmnbiak. rwr
mwts. aidtt. ud dir. \fr ^"Caawtrt mart br Pmrmphtottaffifaai^o Bad#opo/CT7WUl|*i^CMtjt I
- , "* *
`^VeieV
*74.4*1. fcw1, m
ZggSTSP
peritoneal cavity 90 days after injection was approximately the.same
as that found in. 7' days,.therefore it was concluded, that anthracite
coal dust was-inert in reaction.
- ,-
Bituminous coal*^-Bituminous coal, like soapstone, carborun
dum, jewelers'rouge, and anthracite' coal, appeared to be inert and
insoluble. in. the peritoneum. .The nodules behaved in a manner
witeilur to those of the above-named dusts, and the- dispersion of the
dust particles throughout the peritoneum was particularly widespread.
With this dust very few nodules, were formed on the anterior abdom
inal wall, the most dependent portion of the animals' peritoneal cavity to which injected material would naturally gravitate;, but the
majority of the nodules were consistently found, in the omentum.
Many small nodules and diffuse areas of dust particles were also
found in every portion of the peritoneal cavity. The amount of
dust present 90 days after injection waa approximately the same ea
that found in 7 days; therefore the reaction waa one of inertness.
Precipitator osA.1*---Precipitator ash, or "fly ash", produced a reac C/1 tion similar to that of the other inert dusts mentioned in this series. Ui
The nodules behaved similarly in their progress to those formed by
soapstone. Relatively coarse, black particles were noted on the^
surfaces of the dark gray nodules. These were evidently carbotrj particles, as the dust was of mixed composition. The disseminstigfc.
Oo,_
of the original gray dust composing the bulk of the sample, whitenot as extensive as that of the coals, was well marked and apparentiy^
the same as was found with soapstone end silicon carbide. . Aa the]
appeared, to be no disappearance of this dust from the peritom
cavity or cellular proliferation, it seems safe to class this dust as inei
in type.
-C
UHIUBT
I. A14definite quantity (0.2 g) of dust in suspension was injecteKdJ .
mtrmperitonealiy.into guinea pigs.
r . U-i
. J
` 2. Dusts of two' particle-eize groups ware used--one of screened^ material with particles less than 43 microns (325 mesh), and the othefc^ O
of sir-separated material with particles varying from less than 2 to "
8 microns in siie.1; .
3. The animals injected with the coarser material were examined 7, 14, 30, 36, and todays after injection, and those treated with the air>eeparated material were examined after 7,14,30, 56, and 90 days.
4. The response caused by the dust in the peritoneal cavity waa
rnn nu^imL raoof
tnoi 1 to 3 PMCMt iBHIMirt
Bally all aidta. M*dteSMO(tt*pwtkla, USttlnaa.
vyram PaoaaymuUaL PaaafiaphlaaTinilnartnaibpwad tra 1 BMlippvetawni mtaocryyaannJwo OOPant, maalailyy
tnm, calelu, tad day. Madias tbmti tbapartteiM, LIS akroaa.
" CoOaetad Son stack! by afrctrln pndpitMiaa. Cltatnlrml martnation tsLLoovvart 44.7 parrooatnt tUlea.
rwnenphln aninlnatlnn *n--rrt
inaii
imdat aamuTMd
yui^ai4aMfapWUitalMmqaarti<ncaMW.eakiM,aadML Martian vtaat tba parfSlai. LUmtarxa/"'
"w OP
i'TT00-9MTI'.
jJ'S HLESAND
PROM^--" ' ----------------------
SV PPG.
BE AUTHENT,CAVED " '
m to .
t 2432
gp m
.constant ni all of'the
injected with. an. individual dust and'
could be classified.as aaabsorptioa, proliferative, or inert reaction. :-`!-
,.*5..Ih the absorption reaction the-injected dust, disappeared, from
" if - .the peritoneal cavitywithout the production of scar tissue.:', -
\t i. ~':Z 6. In- the proliferative reaction the nodules produced by the dust
3j !i '' continued to increase in size up-to 112 days after injection, the maxi-
^ ' mum duration of the testa in this series. '
^
w || %'
` '^77 In .the inert reaction, the amountof injected dust.remained ap-
i* 'rV --' prorimately the same-in the peritoneal'cavity throughout the various
^ ,'J -J
periods, hut the nodules became more fattened and fine particles of
C2- .r l:. ... ^ust werecaxxied over rather extensive areas in the peritoneum by
phagocytes.-
- yV . -r- f
- -, 8- Caldta, limestone, precipitated
carbonate, gypsum, and
cement exhibited an absorption reaction.
-
9. .Quartz, chat, and flint produced a proliferative reaction. -
'10. Soapstone, carborundum, jeweler's rouge, anthracite coal, bitu
minous coal, and precipitator ash were inert in reaction.
: i h: i ' 3 r.
I cn
r UJ 3 -i u_. 4U O
- ?---vr CONCLUSIONS
*zv-. ;;---r - ~r-
The tissue of the peritoneal cavity responds actively to a dust
introduced as a foreign body, and this response is of such a character
that it may be used as a basis for the classification of industrial dusts
from a physiological standpoint. In this report,'dusts of uniform
chemical composition or those definitely known to produce or not to
produce
were used, and for this group the reaction occurring
in the peritoneal cavity was uniform and constant for each dust. It
seems probable, in view of the nature of the reactions, that dusts of
mixed chemical composition will produce zesponsee
to those
f and in this aeries of dusts.
V
- . Tests of longer duration are now in progress to determine the ulti
mate' fate of the dust m the peritoneal cavity; yet for-purposes of
obtaining a definite response to any dust 90 days, .appears to be a
sufficient time interval between injection and examination, v.; i". .
j
' acxNowLXDQitnrr
___
. . *
- J|v >.
* - 1 'J- - - '
I.
'Special-acknowledgment is.made to the Metropolitan Life Insur
ance Company, which defrayed part of the expenses incurred in this
A
ill
study. "Acknowledgment is also made to the kindness of Mr. W. A.
Sclvig and Mr. A. H. Emery, of the United States Bureau of Mines, for the chemical and petrogrophical examinations of the dusts used
I
in these experiments. The illustrations were made by the photog
xapher of the Bureau of Mines.
'^
____
V*'1-*'1 1 88 019939^
"7?
'
* .;
if'S FILES, and CANWm BY PPG INDUSTRIES
W' f Cpwe FR0M
aut^NTICATD
2433
.' *
**
(IV Kettle, E. H.i Jo-
(2) Kettle, EL HL enc
(3) Pollcard nod Roll
(4) Pollcard sad Mow
(June-1930).
(SySajem, R. E_: Hi
. Mines Report o
(6> Roller. P. 8.: Iadi
(7) Bloomfield, J..X: .
STJLPHUIF DIO: METHODS OI
By C. L. Wiuui
Sulphur dioxide h for the disinfection
of disease and that t basis of its employe century. While the tinable diseases, it fever--before the d mosquito, in the hop for the purpose of dt
Fumigation with in the United States as a practical ship f:
gases, a relatively bi j
is, a mixture of earb tus proved too comb | fleas was considered ' While today in tin i placed sulphur,'the h tine stations, where fumigation crews tra. 30 percent of ship fu:
In the use of-sul;| Service has never se this substance by bui I two ways: One has 1 pots placed inside th in a specially constru | large tubes into the
Ptwuid tor prwmtmrtoo ts I
t Uto --cm In
tssl mu
ost jd> jus
lot
iby Ld
f
ftu-
[
L
iter Ssts Snn
sur:this `.A. ines, used 'tog
(1) -Kettle, E-E-i Jour: Path-.4 Boot., 38: 395-408 (May 1932).
(2) Settle, E- end HDton, E.r Lancet, 1: 5875: 1190-1192 (June 4, 1932).
(3) FoUcardand Eollet: BulL d'hiefc, 8: 53-58 (February 1931).
(4) PoUeard and Mouriquandt BulL d'fiiat. appL J phyeioLet pathoL, 7: 193-199
(June-1930).
-
(5) Sayers,. R- JLz Health Hazards in the Mining Industry. UH. .Bureau of
. Mines Report of Investigation, no. 2880 (December 1924).
(6) Boiler, P. S.:. Indust, and Eng. Chem. 4: 341 S. (July 15, 1932),
(7) Bloomfield, J. J: Pub. Health Rep., 48: 961-968 (Aug. 11, 1933).
l
SULPHUR DIOXIDE FOR THE FUMIGATION OF SHIPS*
f=d1 METHODS OF USE AND PROSPECTS OP IMPROVEMENT By C. I-- WtLLZAVS, Senior Surgeon, United State* Public Health Service
\'f Sulphur dioxide has been used for many years in the United States for the disinfection of ships. The discovery that germs were causes
i3 of disease and that they could be destroyed by fumigation became the basis of its employment for this purpose in the latter part of the past * century. While the procedure was utilized against all of the quaran-
i . tinable diseases, it was employed most particularly against yellow fever--before: the discovery that this disease is transmitted by the mosquito, in the hope of destroying the virus, and, after this discovery,
for the purpose of destroying the vector.
Fumigation with sulphur was the principal method utilized on ships
in the United States until 1914, when hydrocyanic add was introduced
as a practical ship fumigant. Before the appearance of the cyanide
gases, a relatively brief competition was set up by funnel gases--that
U. S Q gg
is, a mixture of carbon dioxide and carbon monoxide; but the appara tus proved too- cumbersome for general use, and its failure to destroy fleas was considered a disadvantage for antiplague measures.
While today in the United' States hydrocyanic add has largely re
o y (u|z
uj O uj
CJ X
placed sulphur;1 the latter is still in use at many of the smaller quaran tine stations, where it is economically impracticable to maintain
< h-1: fumigation crews trained to use the more hazardous cyanide. About
o? t- z 4
30 percent of ship fumigations are performed with sulphur.
Oz 9-- utoj (j In the use of sulphur dioxide, the United States Public Health
, Dh S Service has never seriously departed from the method of producing
g O z cn this substance by burning sulphur, and has employed this method in
J gtn.z<o
d two ways: One has been to bum the sulphur, Hpots placed inside the spaces to be fumigated;
in small lots, the other, to
in iron bum it
UJ
KSt
a^Kr--c2<c
pin a specially constructed furnace, large tubes into the ship. For a
from time
which it sulphur
was blown through furnaces were very
o%
Ooy 5c
l
Pr*prt<l tor pnmMatloa to lb* Ptraurnt Ceomltt** etth# tnurnatioMt OflU* *"MU
U* toMCloi to Map utt anti puatUtea is the Bulfetia ilMiuai lor ^ucatf UO& -- ---------- . --
NOTH..
'
| Bfi 0019940
SG o cn XLa. c m
2434
i-i'CT COME