Document x5mOpXkQOEqRJLZr2kq8y8726
'SEP 15 1937
'^
C1B 349775
THE JOURNAL OF INDUSTRIAL HYGIENE
AND TOXICOLOGY
Volume 19
SEPTEMBER, 1937
Kmu 7
THE PROBLEM OF POSSIBLE SYSTEMIC EFFECTS FROM CERTAIN CHLORINATED HYDROCARBONS*
Cecil K. Drineer, Madeleine Field Warren and Granville A. Bennett
Department of PhytioUpy, Harvard School of PuMie HcailA and Department of Pathotogy, Harvard Medical School, Boeton, Mate.
HE use of chlorinated naphtha rapidly and thoroughly as possible, t
Tlenes and compounds of allied pharmacological possibilities is
In brief these cases were as follows; Patient 1. Male, age 21. The previous
extremely wide, and with the steamdeydical history of thee man wu a am way
growth of the use of electricity is cer significant except for the fact that he had
tain to expand much farther. For years it has been known that many of these compounds cause a troublesome sens, and there is a large literature upon this phase of the subject. Our investigations have not been concerned with cbloracne but with the possibility of systemic effects following ingestion or inhalation of such products. In the
an attack of jasdanahoat A weeks prior te hia fatal illneea. Let* in Deomufaar, ltMt he became badly meertpnlsd and had meh abdominal pahs and dasteatm. When ad mitted to the hospital he wee riigbtly ;aundiced and waa evidently very ill. Re wae somewhat anemic and his akin, particularly upon the arms, face, cheat aad back, showed many pustules. He died after a brief period In the hospital, and at autopsy waa found to
spring of 1936, the Halowax Corpora tion, a division of the Bakelite Cor poration, called our attention to throe fatal cases of jaundice in workmen uang chlorinated naphthalenes and chlorinated diphenyl, and requested that the subject be investigated as
Received for publication June 30, 1037.
t The Halowax Company makes many
products beside* chlorinated naphthalenes,
aad it has come to our knowledge that all of these products are indiscriminately called "halowaxea" by purchasers and users, and
are lumped together as possible causers of acne and even of svstemic disease. Sioce
"halowax" is merely a trade designation,
care should be taken to describe compounds by tbeir chemical names aad thus avoid
condemnations which sre both troublesome aad misleading.
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have a cirrhosis of the liver with acute yel low atrophy superimposed upon it. This man had been exposed to low concentrations of vapors arising from a mixture of tetra and pentachlomaphthalenes, together with approximately 10 per rent of a refined chlo rinated diphenyl. While both he and others engaged in the same work had chloracne, there were no other disturbances of health in fellow workmen, nor waa there any pre cipitating cause for the acute yellow atro phy euch as treatment with arsphenaraine or exposure to dangerous concentrations of carbon tetrachloride.
Patient f. This was a young man who died in February, 1930, after an acute illness characterised by jaundice. He had been exposed to fumes arising from a mixture of penta and hexachlornaphthalenes. There is no record of chloracne. The patient worked with a large number of other people of whom but one (Patient 3), a close friend, had significant illness.
Patient S. Another young man employed with Patient 2. He became jaundiced in March, 1930, and died after an illness of 2 weeks. A careful autopsy resulted in a diagnosis of acute yellow atrophy of the liver Hers again no history could be ob tained as to a precipitating cause, and there was no record of preceding attacks of jaundice.
In addition to these three very re cent fatalities, we have learned of four
other possible cases, none of them
fatal. All of these have had jaundice
and the entire group consists of iso lated individuals who have been picked
out of large groups having the same
exposure. In but one instance, Pa
tient I, is there record of antecedent disturbance of health, and the general
health of fellow workers has been good.
Such cases have not been reported
in the medical literature and only occa
sionally can one find reference to sys temic effects of any sort. For exam
ple, Courtois-Suffit (11134) reports on work done by Touraine and his asso
ciates (1934) who examined 60 workers
who had been exposed to trichlornaphthaleoe. Of these 13 were found to have mild digestive complaints, anorexia, nausea and vertigo, but Courtois-Suffit remarks finally, "Ab sorption is certainly possible and we have for proof of it some of the diges tive and general complaints which have been due to it. But they appear to be of little consequence considering the mildness of the digestive troubles and the absence of respiratory phe nomena."
In Touramevs cases the exposure was to a trichiomaphthalene, whereas the American cases of acute yellow atrophy were exposed to compounds of higher chlorination. Our own experiments indicate that trichlomaphthalenes re quire enormous dosage, far beyond anything encountered in industry, in order to produce liver damage. Teleky (1927) reported a number of cases of chloracne in persons exposed to chlorinated naphthalenes with a chlo rine content ranging from 14 to 53 per cent. He found that the lower the chlorine content the less the acne. Mittelst&dt (1935) examined a number of cases of chloracne due to trichlornaphthalene and reported a number of vague general complaints but nothing in the nature of serious disease. He* garding his animal experimentation,
Lehmann (1919) reported that ani mals fed chlorinated naphthalenes re fused to eat after a time and that, whether poisoned by inhalation or by feeding, at death showed "peculiar" lesions in the liver. Flinn and Jarvik (1936) gave subcutaneous injections of enormous doses of chlorinated naph thalenes dissolved in paraffin oil to rabbits. The compounds used were
as follows:
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1. A mixture of tri and Letrachlornaphthalone.
2. A mixture of tetra and penta* rhlornaphthalem*.
3. A mixture of penta and hexachlornaphthalcne.
Jn a(J(iitio, sublimate* from (2) and (3) were collected in oil and injected subcutaneously.
None of the animals receiving (1) or the -mblimate from (2) died, and even after 2 months were quite normal when imtopsied. The first death in the ani mals receiving (3) occurred on the 12th day mid the last died on the 2tith day. Those receiving the sublimate from (3) were even more severely affected. Autopsy in these animals revealed striking changes in the liver, not, ns descril>ed, entirely characteristic of acute yellow atrophy but sufficiently suggestive to cause the authors to con clude that "certain chlorinated naph thalenes or impurities contained in them are capable of producing yellow atrophy of the liver in the rabbit."
At the beginning of their paper, Flinn and Jarvik (1936) mention the fact that there have been three cases of acute yellow atrophy of the liver in men working with chlorinated naph thalenes hut give no details in regard to them. These cases are undoubtedly the same as those described in the beginning of this paper.
t.ue may summarise the meagre literature upon systemic effects from these substances as follows:
1. With the exception of the men tion of acute yellow atrophy by Flinn and Jarvik (1936) there are no reports or even suggestions of serious effect:upon human beings.
2. There is evidence (Teleky, 1927) that the degree of chlorination is sig
nificant in relation to the production of acne. In the work of Flinn and Jarvik (1930) the compounds produc ing serious liver injury were the most highly chlorinated of those tested, though the chlorine contents as given by analysis vary surprisingly little.
3. There are no published figures upon the amounts of various chlorin ated naphthalenes in the air which will produce injury of any sort, and while the work of Lehmann (1919) and of Flinn and Jarvik (1936) point to the liver os a possible site of Injury this indication rests upon such extreme dosage as to fail to apply directly to human exposure.
' Experimental Work
In appraising the possible toxicity of any substance met in industry it is first necessary to determine the prin cipal route of absorption. In the case of the compounds under consideration there can be no doubt that inhalation is their chief means of entering the body. They are used bot in a great variety of operations and volatilise in varied degree. They are often applied in solution in such volatile solvent* m carbon tetrachloride and toluene. The amounts reaching the air under such circumstances are hardly detectable. It will however be shown, that carbon tetrachloride adds to the toxicity of the chlorinated naphthalenes and allied compounds, and if there is possibility of inhaling these compounds in other parts of the factory then inhalation of carbon tetrachloride adds a decided hazard. Under such circumstances solvents such as toluene should be used.
Observation in a number of plants causes us to feel that even though
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workmen may bo extremely dirty mul cureless, comparatively little of these waxes is outon. Thov are tenacious substances, insoluble in water, and if they get on the hands they stick there and are not transferred to the food.
8kin absorption is the third possible means of entering the body. It may occur but at best must be slight when compared to the steady inhalation of finely divided or gaseous material in the air.
tion. They thrive upon a dior verv similar to man, ami in the case of the-** chlorinated compounds it is possible that diet may be very significant. Finally, their normal eharactcri>ti., have been described so well as to makr the detection of abnormalities U i|, easy and certain.
Method of erponnie.--T\\t* inhalation experiments were carried out in lour large flir-tight wooden boxes, each capable of holding ten rat cages, dxc
Fus. 1. Front view and inflow end of two boxes with rat cgo in plareanddo
Inhalation experiments are then the most important sources of information, but to them we have added a certain number of observations upon ingestion sml subcutaneous injection of various compounds.
InhaUilion Eiptriments
Animals.--White rats have been employed throughout. They permit the use of a large number of animals in a relatively small inhalation installa-
22* x 22' x 14', in two tiers of five cages each. When the experiment " a* not in progress the doors were open. <1 wide and the cages kept in pi c (figure I).
At the center of one end of ench l"*x --the inflow end--air was introduced through a pipe 7 inches in (liana ter (figure 2). Each box was equipp'd with an individual variable-speed elec tric blower which blew the air through several feet of 7-inch pipe before enter-
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ins the end of the box. An orifice meter was placed in the pipe line, wl the How of nir in cubic feet per minute could be adjusted aiul rend off directly from si calibration curve. A vnne deflector placed at the entrance of the pipe into the box was adjusted to asHire a uniform distribution of the stream of air to the two tiers of cages.
At the opposite end of the box-- the outflow end--the air from each l* was exhausted through a 7-inch pipe fitted with a damper and connected to a large central exhaust fan ffigurr 31.
About 4 inches front the entrance of the 7-inch pipe into the Ijox, the fume-; of the substances listed were intro duced into the inflowing air. Spe cially designed pyrex glass flasks (figure 4), 7} inches long and with a diameter of inches, were used to hold the heated waxes. These flasks were made with a side arm and tube that extended to the bottom. The top of the flask was ground, and into this fitted a short tube l\ inches in length. This short tube w* inserted into n large rubber stopper that fitted tightly into a hole cut out of the 7-iurh pipe on the under side (figure 2). The fWk in turn was placed in an electric heater made to rover it completely below the side arm and ground glass top. Rubber tubing connected the side arm with a compressed air reser voir and a gentle stream of air blown through the melted wax kept it in motion and assured uniform heating. Into eneh flask was inserted a long stem centigrade thermometer which was kept in place and could be read at any time nl>ovr the 7-inch pipe through which it passed (figure 2).
Approximately 30 gm. of pulverized chlorinated naphthalenes or 20 gm. of
chlorinated diphenyl were placed in the lx>trom of each flask and melted in the electric heater. Fro-di Mtmples were used every other day, but it was often found uecesMvry to add 20 gm. of new material even after one run since so much had sublimed. Whatever the case, the collected sublimate whs
Fig. 2. Electric beater for maintaining chlorinated compounds at a constant tem perature in place at inflow end of box. always removed from the upper part of the flask and a clean top used each day. No sample was ever used for more than two runs.
The flask plus the contents was care fully weighed at the beginning of the run and at the end, and the low in weight used to calculate the average
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amount in n cubic meter of air per minute as determined by a series of
I-'io. 3. Outflow end of two boxes showing connections to exhaust system.
Ftc. 4. Pyrex gluss flask
Howmoter readings. The figures ob tained were not absolute l>eeauao of slight variations in the air Mowing through the boxes and because .if deposition of inateriul on the ther mometers and on the inside ->urf:ict--*..i the box, but they checked well with direct determinations through nr samples.
Approximately 1 hour was allowed tor the wax in the Masks to melt and come to a constant temperature. At that time the box doors were tightly closed, air (nibbled through the Husks, and the blowers turned on. This was the beginning of the cxjHj.-me |x>riod. By means of rheostats on the fans and dampers in the outflow pipes, the amount of air flowing through tIn boxes was adjusted and an uttempi was made to keep the four boxes uniform as possible--usually bctw-ii 165 and 175 c.f.m.
In the first group of experiments tin following substances were tested:
1. A mixture of trichlornaphthulenespluxa trace of tetrachloruapthaiene. Chlorine content 49.9 per cent.
2. A mixture of pent a and liexaehlomaphthalenes. Chlorine content 62.6 per cent.
3. A mixture of 90 per cent and hexachlornaphthaln plus 10 per cent reflned chlorin ated diphenyl. Chlorine ....... tent 63.0 per cent.
4. Chlorinated diphenyl. Chimincontent 65.0 per cent
The comjKnmds were selected as rep resenting a certain range in chlorina tion and also because of their indust rial importance. In each instance 80 ani mals were exposed, 10 rat s being placet I in each cage. They were fed Purina
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pof Chow supplemented by lettuce, tgp, milk and cod liver oil.
This first group of experiments was begun on July I, 1930 and the last exposure to number 2 (penta and hexachlomaphthalenes) was on November 10th. The exposure to the other three compounds ceased upon November 18th. On October 15th representa tive animals were taken out of expo sure from groups 1, 2, and 4 and were
after 2 months on December 15th, in order to see whether this clear
wax concentrations were somewhat higher at the inflow end of the boxen. Preliminary runs showed that once properly adjusted, wax concentrations in the air remained very uniform from day to day, but to insure absolute safety readings of temperature, air flow, etc. were made every night be tween 10:00 and 12:00 p.m. as well as on starting and stopping. At dif ferent times during the course of the experiment tests for free chloride were made but were uniformly negative and
TABLE 1 Conditions Maintained in Inhalation ExrtaiuiNT non Jolt 1 to Notsmbsh 18 and It
XATSBIAL
CBLO WN! Ten*. COMTEK?
AT. CONCtNTBAnUi Of ua IK KOX
TOTAL 1*
Mania
DAILY axmvai
%
c. mg./tm. ran**
Wtar* law!
Triehlornaphthalaoe* plus traces of tetrechiornaphthalene..................... 40.9 150-160 1 31 High 2.60 Low 0.10
1866
16
Peetasad bsxschlorosphthalcDes.... 62.8 160-170 1.16 High 2.19 1864 Low 0.51
16
9H% pants and hexschlornsphthalenee plus 10% chlorinated diphenyl. 63.0
165-ia I 37 High 3 17 Low 0 64
1806
10
Chlorinated dipheoy)........................... 68 0 MS-175 0 57 High 110 1896 Low 0 23
M
period would bring about recovery in the affected livers. Animals from group 3 were similarly removed from npOMira on October 4th and killed for examination on December 4th.
The avenge length of exposure was 16 hours daily for 6 days a week. Bteh morning at about 9:00 exposure
<*ased, and between this time and 4:00 p.m. the rats were cleaned, fed, weighed, etc. In order to secure uni formity of exposure the cages were tufted on a regular schedule, since
showed that under the temperatures used no decomposition occurred.
Table 1 shows the temperatures at which the various substances were held, the average concentrations per cubic meter of air, and the average exposures from July 1 to November 16 and 18.
The concentration of chlorinated naph thalene* and chlorinated diphenyl in the air of workrooms.--Table 1 shows that animals have been exposed to varied concentrations of the substances under
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teat. The concentrations employed may be regarded as fairly representa tive of industrial experience. Prior to the initiation of inhalation experi ments a number of estimates of chlo rinated hydrocarbons in the air of dif ferent factories were made and the
in question is passed over heated plati num in an electrically heated quart/, tube and the effluent gas scrubbed in a column of glass beads moistened with sodium carbonate containing a trace of sodium sulfite. The beads are then washed down and the chloride deter-
SUCTION
Fio. 5. Dimensioned sketch of combustion tube aad absorption apparatus.
concentrations chosen for inhalation experiments depended on these exami nations. The technic of analysis and the apparatus employed were the work of Frederick E. Millhiser and William
F. Hemperly. The method and apparatus used for
determining concentrations of chlorin ated hydrocarbons in air were adapted from well-known procedures. The air
mined nephelometrically a* silver chloride.
Tebbens (1937) has recently de scribed a method and apparatus which should be equally satisfactory for thin work. In figure 5 we show a dim * stoned sketch of the combustion tube and absorption apparatus os uml by us in both our laboratory and fh'ld problems. The absorption tube is
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somewhat easier to wash down than i9 Tebbens's but the essentials of the two devices are the same.*
In both c&sc9 conversion of the chlo rinated hydrocarbons to hydrochloric acid and subsequent absorption as sodium carbonate should be complete.
In our case concentrations in air are apt to be very low--the objective is less than 1 mgm. per cu. m. Conse quently the amount of silver chloride actually formed in the final reaction is so small that it can not be determined either gravimetrically or by titration. For this reason we have been forced to use the nephelometric procedure which is sensitive to concentrations as low as 0.1 mgm. per cu. m. of air.
It is doubtful if the sampling rate should exceed L liter per minute aa conversion of the chlorinated com pound to hydrochloric acid and its subsequent absorption are not efficient unless the velocity of the gas stream is low. Another precaution to be noted
is that the method is not selective-- any chlorinated substance will be determined. Furthermore it does not distinguish between solid particles sod gases but determines them all alike and tbs results must, of course, be com puted in terms of total chlorine.
At the present time we pone-- in formation ss to the amounts of chlo rinated naphthalenes in the air of 30 different plants, and in a number of instances the measurements have been repeated several times. Frequently the amounts have been greater than those used in our experiments, but it must be remembered that the rats
* The combustion and absorption appa ratus suited to field sampling is now mads hr Willson Products, Inc., Reading, Pa. Toe equipment includes flowmeter and sustloa pump with a carrying case.
have been exposed for 1G hours to an atmosphere constantly impregnated with the substance under test, whereas human exposure is usually a variable quantity, intense for a short time and then negligible. It is our opinion at the present time that the concentra tions of chlorinated hydrocarbons used in our experiments would be dangerous for workers in the case of compounds above trichlomaphthalene in chlorina tion. Fortunately it iB easy to venti late processes of manufacture which require these substances and to reduce air contamination practically to the vanishing point. Such treatment of the problem at once removes both the possibility of systemic poisoning and the annoyances that arise from cases of acne.
ResuiU of Inhalation Experiment*.
1. Animals exposed to a mixture of trichlorn&phthaienes plus small amounts of tetrachlornapthalene. Living animala were apparently en tirely normal. Autopsies performed near the end of exposure seemed to show alight sweliing of the liver, and microscopic examination occasionally showed swollenand bypergranular liver cells. The changes were, however, never more than slight.
2. Animals exposed to a mixture of penta and hesachlornaphthalenes. No abnormalities were observed in the living animals. Rats were killed and autopsied every 6 weeks. In the first animala sacrificed liver changes were observed. These were swelling of cells, slight granulation and hyalinization. In September and October these conditions were somewhat more ad vanced, and in November the process became stationary. There were highly
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granular cells, hyaline inclusions and mitotic figures, but, no more than 2 months previously.
3. Animals exposed to a mixture of 90 per cent penta and hexachiornaphthalenes plus 10 per cent refined chlorinated diphenyl. No abnormali ties were seen in the living animals. After 6 weeks the livers showed changes similar to those in the animals exposed to penta and hexachlornaphthalones. These advanced in grade during August and September and then became stationary.
4. Animals exposed to chlorinated diphenyl. No abnormalities were seen in the living rats. After 6 weeks' ex posure there was slight liver damage which advanced during the next 2 months. The changes consisted in slight to moderate swelling of the liver cells, an increased granularity and many mitotic figures. Hyalinization was always present as a result of inhalation of chlorinated diphenyl.
Summary of the first inhalation ex periment.--In these experiments care ful observation of appearance, body weight, activity, blood, and urine showed no abnormalities of any sort. Yet after 6 weeks' exposure ail the compounds with chlorination above trichlornaphthalene caused minor de grees of liver damage, and no changes whatsoever in other organs. There was no acute yellow atrophy or any thing suggesting it except that a slight degree of liver damage was always present and was quite clear in the liver sections examined microscopically. This damage had no detectable effect on the health of the animals. They held their weight, ate and behaved normally, being in every respect similar to the many people who have been
exposed to theee compounds without illness of any sort.
The functional appraisal of the liver damage caused by certain chlorinated naphthalenes and by chlorinated di phenyl.--There are no testa of liver function useful in such minor degrees of liver damage as were produced in these experiments. Indeed the ani mals resisted the injury so perfectly as to display no abnormalities except upon histological examination of the liver. The situation was perhaps similar to that met in industry, where, barring acne, the health of workers in these compounds has keen good with the exception of the fact that in iso lated instances jaundice has occurred which upon at least three occasions has gone on to acute yellow atrophy.
During recent years this disease has been seen following administration of carbon tetrachloride, arsphenamine and cincophen. In the case of carbon tetrachloride it is known that a low calcium diet and alcohol favor the pro duction of liver damage. For the acute yellow atrophy that occasionally complicates use of the other two drugs no cause can be assigned. One cannot produce acute yellow atrophy with arsphenamine, but somehow or other this now and then does happen to pa tients under antisyphilitic treatment.
It occurred to us that something of the same sort might be involved in this problem. The human cases have been scattered and few. They have been isolated instances out of Urge group* of healthy employees who have had equal degrees of exposure. It was our idea that perhaps many of these people got liver changes such aa existed in our rats, changes not recognisable through
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any means other than autopsy exami nation. If, upon the substratum of such changes, they got an acute liver disturbance, acute catarrhal jaundice, not a very common disease but one which any of us may experience, would this relatively innocuous disease go over to acute yellow atrophy?
Knowing that our inhalation rats had liver changes, but changes too slight to cause recognizable symptoms, we decided to test their resistance to substances known to cause liver de struction. Carbon tetrachloride and alcohol were selected. Having infor mation that 1.0 cc. of carbon tetra chloride plus 1.0 cc. of ethyl alcohol per kilogram would kill 14 per cent of normal white rats, we reduced the dose to 0.75 cc. carbon tetrachloride and 0.75 cc. of ethyl alcohol.
This mixture was given by stomach tube to the following groups of ani mals and with the results found in the following tabulation.
Rata fid 0.75 e. par kfm. each of carbon Mrachlorida and athyl alcohol by atomoch tub*
1. Trichlornaphthalana plui traca of teira~ cUomapMhabn*. Fed at 9:00 a.m. Nov. 10,1996. 10 rate. No deaths.
2. Penta and kaxachlomaphtkalanaa. Fed at 9.90 a.m., Nov. 10, 1930. 10 rata
9 died Nov. Uth between 4:90 sad 10:90 p.m.
1 died Nov. 13th at 9:30 p.m. 1 died Nov. Uth at 4:30 p.m. 1 died Nov. 13th between 9:90 and
11:90 a.m. I died Nov. 16th between night of Nov.
Uth and 12:90 p.m. Nov. 16th. 2 died Nov. 16th between 10:15 p.m. Nov. Ifith and 9:00 a.m. Nov. 16th (stiff). 8. 90 par cent ptnia and kexacMpmophIhoUnaa and 10 par cant chlorinatad diphanyl. Fed at 10:00 a.m., Nov. 10, 1936. 10 rats.
1 died Nov. 10th between 5:00 and 10:30 p.m.
0 died Nov. Uth between 4:30 and 10:30 p.m.
1 died Nov. Uth between 4:30 p.m. and 9:00 a,in. Nov. 12th.
2 died Nov. 12th about 1:00 a.m. 1 died Nov. 13th between 5:00 and
10:00 p m. 4. CJtionnoled dipkinyl. Fed at 10:00 a.m., Nov. 10, 1930. 10 rats.
1 killed Nov. 10th at 10:30 p.m. (almost dead).
2 died Nov. 11th between 4:30 and 10:90 p.m.
1 died Nov. 12thbefore6:30a.m. (stiff). 1 died Nov. Uth between 9:30 and
11:00 am. 1 died Nov. 16tfc between 10:15 p.m.
Nov. Uth and 9:00 a.m. Nov. 16th (stiff). Controls: Fed at 9:a.m.. Nov. 12. 1936. 10 rats. 1 killed Nov. mbfor normal liver.
This tabulation summarizes into the facts that:
1. No normal rate were killed by carbon tetrachloride and ethyl alcohol.
2. No trichlomaphthaJene exposed rats were killed, and this finding agrees with our inability to find lesions of moment in the Iran off the animals that inhaled this suiatuce.
3. The penta and bexachlorinated naphthalene, the mixture of these with 10 per cent chlorinated diphenyl, and finally the latter substance alone seem to have produced conditions lowering the resastanee to an agent capable of producing serious liver disease.
4. The sole lesion produced by this test of liver function was acute yellow
atrophy usually accompanied by jaundice.
This test of liver function was ac complished with a substance which itself is an organic chloride and curi ously enough it is the only substance we were able to find that was effective.
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In animals with the minor degree of liver injury which has been described we were unable to produce acute yellow atrophy or any variety of liver effect with arsphenamine, cincophen, butyl chloride, ethylene chloride and tetraehlorethylene, but carbon tetrachlo ride was uniformly effective in dis closing the existence of liver damage.
Recovery from liver damage following removal from exposure.--Animals ex posed to trichlornaphthalenes plus traces of tetrachlorruiphthalene being practically normal on removal from exposure need no consideration. In the cose of the penta and hexachlor-
signs of liver injury will be many months in returning to normal.
The effect of high concentrations of trichlornaphthalenes with traces of tetrachlomaphthalenc.--The first group of inhalation experiments showed that this material in concentrations averag ing 1.31 mgm. per cu. m. of air was relatively innocuous, judged both by direct observation and by the carbon tetrachloride test. This is an in teresting fact since such compounds cause acne, though less potently than substances of higher chlorination. In order to explore the matter further one of the inhalation boxes was arranged
TABLE 2
Conditions Maintained r>mtmo Inhalation or Hioh Concentrations or Trichlornaphthalenes plus Tetrachlornaphthalene
WATXIUAL
Trichlornaphthalenes plus traces of tetrachlornaphthalene
TINT.
AT. C0MCSWTIUT10M OP AIB IN MX
TOTAL XPMVM
c. mfjew.
rant*
Wt
137-200 10.97 High 16 49 Low 5 78
1232
naphthalene, rats after 2 months' re moval from exposure still showed swollen liver cells, increased granu larity, hyalinization and mitotic fig ures. The condition was not advanced as compared with rats killed at the time of removal from exposure but on
the other hand 2 months were insuffi cient for recovery.
The same findings were true of the mixture of penta and hexachlorinated naphthalenes and chlorinated diphenyl and for chlorinated diphenyl alone.
Apparently the changes induced in the liver cells by these substances are exceedingly persistent and one must expect that an individual showing any
so that fumes from four glass contain ers were delivered to the air line instead of one. This resulted in the conditions shown in table 2. The animals sub jected to these conditions showed no clinical effects of any sort. After I month the liver cells were slightly swollen and over-granular and there were occasional mitotic figures. These changes were similar to the early effects of more highly chlorinated compounds, and progressed only slightly during the third and fourth months. When rats in this condition were given carbon tetrachloride and alcohol, in some instances their livers showed massive central necrosis and
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in others this did not develop. Fifty rat* were used in this experiment and one may conclude that while the trichJornaphthaienes arc in no degree as toxic as those of higher chlorination they are not entirely free from effects upon the liver if high enough concen trations are inhaled over long periods.
The effect* of high concentrations of penta and hexachlornaphlhalenee.-- There can be no doubt as to the dam age done the liver by these compounds but in the concentrations so far re* ported no symptoms were caused that could be recognized clinically and nothing approaching acute yellow
the liver after 35 days of freedom from inhalation. It ia thus evident that penta and hexachlornaphthalenes are markedly toxic compounds and that recovery from their effects ia extremely slow.
The effects of penta and hexachlornaphthalenes, the mixture of these with 10 per cent chlorinated diphenyl, and of chlorinated diphenyl alone, when inhaled in low concentration$ through an 8-hour day instead of a 16-hour day as in the first experiment.--Since steady human exposure to any oi the compounds tested would invariably be for 8 hours rather than Ift-bour periods, a further
TABLE 3
Conditions Maintained during Inhalation or High CancurnAnoNs or Penta and Hexachlornafhthalbnbs
atesiai.
TEUV.
AT. CONCBNVaaTtOM
RAJ. AT. BAIL?
axMMaa sxroaesa
c. aif./m. Penta tad hexachlornaphthalenes......... 137-196 8 88
High 14 0 Low 5 73
kmrt
Abut* 16
atrophy occurred except through the use of the carbon tetrachloride test On December l, 193ft, 80 rats were subjected to the conditions sum marised in table 3. This experment 'va terminated on January 21. All of the animals lost weight and appetite and deaths began after 8 days of expo sure. Fifty-five rats died, most of them heavily jaundiced, 8 were killed for microscopic examination, 9 were killed by the carbon tetrachloride test and 8 lived through the period of exposure. The livers of the animals killed for examination showed marked fatty degeneration, central in type with necrosis of liver cells. Surviving urinals showed pronounced changes in
inhalation experiment was arranged under the conditions shown in table 4 which are quite comparable to those in table 1 except for the shorter inhala tion periods. Eighty rats were used for each of the three compounds tested. None at any time showed the slightest evidence of illness. Microscopic ex amination beginning after 0 weeks' exposure showed swollen liver cells, excess granulation, hyaline inclusions and occasional mitotic figures. These changes did not progress and were very similar to those in the animals exposed for 10 hours under the conditions set forth in table 1. The carbon tetra chloride test was uniformly fatal to them and one must conclude that con
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298 JOURNAL OF INDUSTRIAL HYGIENE AND TOXICOLOGY [Stpt. /w
centrations of these compounds such as wore employed cause a certain de gree of liver damage even if inhaled for but 8 hours daily. This injury is resisted successfully by the rata just as was the 16-hour injury but it is none the less there and destroys the ability of the animal to resist the carbon tetrachloride test.
Summary of inhalation experiments. The findings that have been described briefly will be amplified upon the pathological side in a further paper by Dr. G. A. Bennett. What has been given is, however, sufficient to indi
men never inhale enough of any of these substances to get acute yellow atrophy. They may, however, acquire a substratum of liver damage upon which acute yellow atrophy may de velop. Experience in a number of plants has shown how easy it is to reduce concentrations of these com pounds practically to the vanishing point, and every effort should be made to attain such conditions.
Gross Feeding Experiments
The various compounds used were ground as finely as possible and mixed with a standard balanced ration for
TABLE 4
Conditions Maintain* during Inhalation op Low Concentrations op Thrx* Compounds during 8-Hour Instrad op 16-Hour Pxriods
HATMUL
TBirr.
AT. CONCBKTIATIOM
TOTAL AT. *ILT
Of AJ Ilf MI
rareooM IXMMM
c. rnf hour* tour*
Pent* and hexachlornsphthelenee........ 140-199 1.44
90% pent* sod hexacblor&aphtbalenef plus 10% ohlorinated diphenyl........... 150-107 1.66
Chlorinated diphenyl............................... 153-174 0 03
High 2 58 Low 0.42
High 3.30 Low 0 66 High 3.28 Low 0 03
020
012 020
8
8 9
cate that compounds more highly chlorinated than trichlornaphthalene are capable of causing liver injury when inhaled steadily in quite low concentrations. It is an extraordinary thing that even the most searching examination fails to show injury in any other region. It is not easy to grade the toxicity of the different compounds tested, but the chlorinated diphenyl is certainly capable of doing harm in very low concentrations and is probably the most dangerous. Industrial experi ence combined with these experiments make it appear probable that work-
the white rat. The food was placed in a single container, at which the 10 animals in a cage had an equal chance, the amount of the compounds added being reduced as the number of rats lessened during the feeding period. The experiments were designed to give an idea as to the possible toxicity of the compounds selected and, if toxicity was observed, some idea as to the site or sites of damage.
The experiments were successful in both respects, and indeed one may anticipate that future appraisals of the possible toxicity of chlorinated hydro
MGNS 096656
M<. If, no. 7\ * EFFECTS OF CHLORINATED HYDROCARBONS
297
carbons may often be made by simple feeding and do not require the elabo rate apparatus and the expense neces sary for inhalation experiments. The essential reason for this opinion resides in the identity of the lesions produced by both methods, and the fact that the different compounds so far studied seem to arrange themselves identically so far as toxicity is concerned which ever way they are administered.
Tnchlornaphthalene plue trace* of
Utrachlomaphthalene--Feeding began on May 4, 1930 and continued until November 2,1936. In the begin ning 3 gm. of this mixture were added to the food for 10 rats each day, and this concentration was maintained throughout the experiment. All the animals were killed except the last which died on Nov. 2. There was no loss of weight and no appearance of wasting illness of any sort. The single death was due to some variety of re spiratory infection which had no rela tion to the material inhaled.
Histological examination showed slight changes in the liver but nothing of great significance.
Tefra and pentachlomaphthaknee.-- Feeding began on June 29, 1936. A damge of 0.6 gm. daily was employed. All the animals sickened gradually and were either killed or died by August 29,1936.
At autopsy both grossly and histo logically the liver was the single organ affected. The liver cells showed swell ing, hypergranulation, hyaline includons and vacuolation. Here and there necrotic cells were found. There was a tremendous accumulation of fat.
Penta and Kexachlomaphthalonee.-- Feeding began May 4, 1936, a 3 gm. doeage being used. By June 6, nine
rats had died. The lost one was obvi ously ill and was killed for autopsy examination. All animals lost weight from the beginning and were ill. At autopsy the liver alone was affected, the lesions observed being similar to those that have been described for tetra and pentachlornaphthalenes but worse.
90 per cent penta and hexachlornaphthalenee and tO per cent chlorinated diphenyL--Feeding began May 4,
1936 on a 3 gm. dosage. On May 16th feeding was slopped but all the animals went on to death, the last dying on June 8th. An autopsy the liver lesions were extremely severe and of the usual type.
On account of the high toxicity of the 3 gm. dosage, four rats were given a 0.5 gm. dose every other day. Feed ing began June 24, 1936 and the last animal was killed Sept. llth. There were no deaths but all the animals Itat weight. At autopsy the liver aa usual was the single organ affected, the lesions being characteristic and ex tensive.
Chlorirmted diphenyL--Feeding be gan May -4, 1936 on a 3 gm. dosage and was dmoatinued on May 10th. Seven of Che 10 rata were dead by May 12th. The three remaining rats gained in weight but were sacrificed for autopsy purposes on July 8th. The liver changes began at once. There were no changes in other organs.
A second group of 10 rata was fed a much smaller dose--0.5 gm. every other day. Feeding began May 20, 1936. The first rat died on May 29th and four more before June 24th. The remaining were sacrificed. Those rata that died showed losses in weight, while those sacrificed had recovered
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298 JOURNAL OF INDUSTRIAL HYGIENE AND TOXICOLOGY [Sept 1097
their initial loss in weight and were and rabbits, the dosage being calcu
gaining. The liver lesions were similar to those found in rats fed penta and hexachlornaphthaienes plus 10 per
lated on the basis of 4 mgm. per cu. m. of air. Again similar results were obtained. In all such experiments
cent chlorinated diphenyl but not so there must of necessity be differences
marked.
Summary of gross feeding experi ments.--Of the various materials fed rats in large doses trichlonuphthalene plus traces of tetrachlomiphthalene
in the degree of effect but invariably the liver was the sole organ affected and the lesions were those already described many times.
Discussion
was quite innocuous. Tetra and pentachlornaphthalene showed definite liver damage. Fenta and hexachlornaphthalcnes caused a similar grade of injury. The addition of chlorinated diphenyl to penta and hexachlornaph thaienes increased the toxicity. Chlo rinated diphenyl alone produced liver lesions but in the dosage used was less effective than when mixed with highly chlorinated naphthalenes. In no case did the compounds used produce acute yellow atrophy but the lesions ob served indicate this might be possible if one found a dosage which could act for the proper period of time.
These experiments leave no doubt as to the possibility of systemic effects from the chlorinated naphthalenes nnd chlorinated diphenyl. As in the cote of the effects upon the skin, the degree of chlorination seems to determine the systemic toxicity, and it is a striking thing that when trichlornaphthalene is reached systemic effects are never marked and are produced with the greatest difficulty. It is most remark able, too, that all the compounds tested attack the liver and the liver alone. During the past few months we have determined the organically combined chloride in the livers of ani
Feeding Precise Doses by Stomach Tube
The compounds employed were sus pended in gum acacia. In figuring the dosage the total amount a man of 50 kg. would inhale in an 8-hour day assuming an air concentration of 20 mgm. per cu. m. was first calculated and reduced to milligrams per kilo gram. The rats and rabbits received this dose each clay. The compounds used were those employed in the gross feeding experiments and the results were essentially similar though the lesions were less severe.
mals very severely poisoned by penta and hexachlornaphthaienes but have found no increase over normal figures, though the livers, as determined histo logically, were very severely affected. At the present time we are conducting inhalation experiments on a chlorin ated diphenyl containing 55 per cent of chlorine instead of 64 per cent as in the case of the experiments reported in this paper and on a compound with a chlorine content between tri and tetrachlornaphthalene. We are also determining the degree to which the diet may increase or decrease toxicity,
Subcutaneous Injections
this being suggested by similar work
The same gum acacia suspensions upon carbon tetrachloride. were injected subcutaneously into rats In the basis of these experiments
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Wl. 19, no. 7\ EFFECTS OF CHLORINATED HYDROCARBONS
299
and on many field determinations of different compounds in the air of work rooms, it appears safe and it is cer tainly easily attained, to ventilate so that the air breathed docs not contain more than 0.5 mgm. per cu. m. of any of these compounds above trichlornaphthalene. In the case of the latter compound concentrations of 10.0 mgm. are permissible. We know from many examinations in many different plants that such concentrations have been greatly exceeded during the past 20 years, and we are conscious of the fact that our rat exposures have been inexorably constant whereas human exposure is never so ordered. Time and careful observation may change these opinions as to standards, but today we are convinced they are safe. Impregnating tanks and other arrangements utilizing the chlorinated hydrocarbons are easy to hood and to safeguard. Compared with benzene, lead tetraethyl and many other com
pounds, these substances are very little toxic and operations employing them can easily be safeguarded. It
may be argued that where possible trichlomaphthalene should be used,
but this compound will cause acne and if employed very carelessly might do
more. Furthermore, higher chlorina
tion is often essential for highly prac
tical reasons. The solution consists in
thoroughly adequate ventilation plus
good housekeeping around all wax
containers.
A final word of natim bean upon
the use of carbon tetnchknide as a wax
solvent. Obviously tins compound
adds readily to the tonicity of the
highly chlorinated wane* If carbon
tetrachloride is used,
nhmilrj
be excellent, but in our qswa it
would be better to dispean with car
bon tetrachloride and depend on other
solvents, especially upon those con
taining no chlorine.
BIBLIOGRAPHY
Coc*TOis-ScrriT: Etude sur ('intoxication profeeeionnelle par U triehloronaphtaltoe. Ann. da mid. legate, H, 422 (1984). Abetr. of paper by Tovainb, A., ajvd MCnCtrsl, B.: Dermatoses profeseionneUea par la naphtaline et see derives. Prat. m6d. franc. 835 (1954).
Fumr, F. B., and Jajsvik, N. E.: Action of certain chlorinated naphthalene* ob the liver. Proe. 8oe. Exper. Biol. A Med., 91, 118 (1936).
Lssuann, K. B.: Kurses Lehrbuch der Arbeite- und Gewerbehygieae. S. Hirsel, Leipsig, 1919 (p. 261).
MittbutAdt, 0.: Cnwt--chddifgen dnrch Haftax (TMehlemapfcthaiin). Inaug. dasawt, iern, 1MB.
Tnaua, B. D.: PcrtaHi eomfeuitmn ap paratus far Mf determinations of chloHaatsd hydmcaihona. Tara J., if, 204 (IMF).
Tslbkt, L.: Dia Peraakvankheit (Chloracne). Klin. Wchnaohr., 9, 897 (1937).
Toobaims, A., Bolbmtb, Mtntraat, B., amd Avaaim: Cinquante-quatre caa de dermatitas par tricbloronapbtaline. Bull. Soc. dermat. et ayph., 41, 265 (1934).
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