Document GKxmbqMbvqqxwD2jX7Lko1qkr
CONFIDENTIAL
FOR YOUR USE ONLY
NOT FOR PUBLICATION
LITERATURE SURVEY "Potential Hctards of Ingesting Metal
Containing Paints" by
The DeDartment of Environmental Health University of Cincinnoti Medicol School
Cineinnofi, Ohio for
The Notionol Point and Coatings Association Washington, D. C.
December 1972
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University of Cincinnati Medical Center
3223 Eden Avenue Clneinniti, Ohio 45219
January 4, 3973
Mr. Royal A. Brown Technical Director National Paint and Coating*
Association 5100 Rhode laland Avenue, H.W. Washington, D. C. 20005
Deer Mr. Browns
Enclosed ia the eopy of the preliminary litaratura survey on the "Potential Hazards of Infesting Metal Containing Paints" carried out for the National Paint and Coating Association by this Department.
Ai you can see, the effort necessary was larger than originally planned. 1 hope it serves its purpose well. If the report is to be reprinted or widely circulated, it will need to be acre carefully edited and retyped. Please call on am if you nave any questions, or whan you plan to coot to Cincinnati to discuss the report.
Sincerely yours.
..
SBSinp Ene.
Stanley B. Cross, Ph.D. Associate Professor of
Environmental Baaltb (Toxicology)
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0007--SWP-036831
0007-SWP-000112960
potential Hazards ofNlngestlng Metal Containing Paints
A preliminary literature survey carried out for the
National Paint and Coating Association Washington, D.' C.
by
The Department of Environmental Health . University of Cincinnati Stanley B. gross, Ph.D. Project Director Raymond R. susKind, M. D. Department Head
December, 1972
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0007--SWP-036832
0007-SWP-000112961
Potential Hazards of Ingesting Metal Containing Paints
by Stanley B. Gross, Ph.D.
I. Introduction
Recent concerns over the hazards to children of
Ingesting leaded paints has prompted a ban on the use of
such paints on children's toys and appliances and for in
terior use. The National Faint and Coatings Association
(NFCA), concerned with potential dangers of other metallic
constituents, as well as lead, has asked the University of
Cincinnati's Department of Environmental Health to carry
out a preliminary literature survey on the toxicological
significance oftmetal compounds used by the paint industry,
with special concern for hazards by ingestion.
Table 1 contains a list of the specific compounds
provided by NPCA which were evaluated. The percentages of ...
these compounds used in paints are found in Section III and
in the Summary (Section IV). The search was based on
materials readily available within the files of the Kettering
library rather than a search of the new literature. Many
more references were available in the Library than could
be used for the present survey.
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0007-SWP-000112962
Table 1, Compounds of specific Interest provided by the National Paint and Coatings Association.
Antimony 0::ide
Aluminum Silicate
Nickel-Antimony Titancte, Barium Sulfate
Aluminum Oxide and Hydroxide Aluminum Stearate
Barium Meta Borate lithopone (30% Zinc Sulfide -
Aluminum Metal * Borates (Barium meta-borate,
70% Barium Sulfate)
' sodium tetraborate, etc.)
Cadmium Lithopone
Borer, tri-fluoride
Cadmium Selonide Cadmium-Barium Soaps
Calcium carbonate Calcium oxide
(Stabilizers) Chromium Oxide Lead and Zinc Chromates Cobalt Naphthenate and other
Calcium Naphthenate and other * metallo-organic soaps
Lithium hydroxide
Lithium Naphthenate
metallo-organic soaps Cobalt Nickel Titanate
. Magnesium Silicate Magnesium Aluminum Silicate
Copper Oxide
Magnesium Oxide
Copper Phthalocytnine Copper Naphthenate and other
' Mnnganeso Dioxide Manganese Naphthenate and other
metallo-organic soaps (Tipper Mt. 1
* metallo-organic soaps Lead Molybdate
Basic Lead Carbonate Basic Lead Silicate
Zinc Molybdate Titanium Bioxide'(commercial
Lead Qircmates
grades)
Lead Oxides
Titanates (Nickel, Antimony,
Lead Silico-Chromate
Tungsten)
Lead Naphthenate and other
Zinc Oxide
metallo-organic soaps Lead Metal
Zinc Stearate iithopone (30% Zinc Sulfide -
Phenyl Mercuric Acetate, Phenyl
70% Barium Sulfate)
.Mercuric Oleate and other
Zinc Naphthenate and other
metallo-organic compounds
metallo-organic soaps
Mercury Cadmium Lithopone
Zinc Metal
Nickel Titanate
Zinconiurn Naphthenate and other
cadmium selenide Pigments
metallo-organic soaps
Strontium Qxremate
Zirconium Oxide
Tri-butyl tin oxide
Other tin orguo compounds
-0-
This report Is divided Into a brief summary of body metals and their absorption from the gastrointestinal tract, a review of the specific compounds by elemental classes, a summary, and recommendations.
II. Absorption of Metals Metals In the Body
There is an extensive literature on the role of metals In biological systems. Bowen (5), Lee(37), and the numberous articles by Schroeder and Tipton appearing In the section on References provide an overview of body metals; Browning (6), Cafafer (10), and Stoklnger (22) provide recent overview of the toxicity of metals.
The essential bulk metals of the body -- calcium, potassium, sodium and magnesium -- comprise 1.5, 0.2, 0.15
and 0.05^ of the body weight, respectively. The remainder of the body metals (the trace metals) make up less than one percent of the total body weight (12). Many trace metals are essential in only milligram and microgram quantities. These metala are important in neuromuscular function, in acid-base balance, in structure and as acti vators or constituents of many of the body's enzymes.
According to schroeder's publication in i960 (25), trace metals found in man may be divided into four groups: 1) metala considered to be essential for mammal*, in that the requirements for growth have been established, deficiency
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0007-SWP-036835
0007-SWP-000112964
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states discovered or essentially inferred as cofactors for certain purified metalloenzymes -- manganese, cobalt, copper, zinc, and molybedenum; 2) metals ubiquitous in plant and animal tissues with suspected metabolic functions but with essentialities unproven -- rubidium, boron, bari um, strontium, vanadium, chromium (now considered essential), nickel and aluminum,' 3) metals without known functions, believed to be contaminants -- silver and lead; and h) metals usually not detected in infants but apparently ac quired and accumulated as environmental contaminants -- cadmium, tin, titanium and in some locations, bismuth, gold and gallium (rarely).
Excesses of essential or nonessenti&l metals are toxic by inhibiting the absorption of essential metals, by interfering with metallic enzyme activators, by replacing metals in metallo-enzymes or by direct action on nonmetallic biochemical systems.
Absorption of Paint Metals There is a large literature dealing with gastro
intestinal tract anatomy, physiology and biochemistry. The reader is referred to such texts as Kimber et al. (1) and Wilson (2) for general information on intestinal absorption and to SXoryna and Waldron-Edward (3) for a discussion of the intectlnal absorption of specific metals.
fife
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0007-SWP-036836
0007-SWP-000112965
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Figure 1 and Table 2, Pathways for Mineral Metabolism, taken from Altman and Dlttner (31), summarize the absorption and disposition of many metals (and nonmetals). This information is derived from the literature cited by Altman and Dlttner and applies primarily to lab oratory animals under experimental conditions. These results are not always consistent with data for humans, such as those data of Tipton and Stewart (24) who carried out balance studies for 22 elements on several individuals. Two of these subjects were followed for 347 days.
Absorption of metals from the alimentary tract is potentially complex. It Involves the grinding action of chewing, the mixing due to the physical action of peristalsis, the chemical interactions with saliva, acid gastric juices, alkaline bile, pancreatic and intestinal juices, the poten tial changes (metabolism) by microorganisms and the inter actions of metals with food digests (chelating agents). Other factors are the chemical form cf an element, its concentration, its molecular size, its solubility in the different fluids of the intestinal tract and, ionization at the various pH levels. Specie, sex and age differences may also be important.
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0007-SWP-036837
0007-SWP-000112966
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Fieure 1. Pathways of mineral metabolism. Diagram for Table 2. Taken from Altman and Bittner (31)-
OCAGAAH fOB TABLE M
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t "able 2. Pathways of mineral metabolism. Taken from Altman and Dittner (31)
Tim twrM. or turiii. of M*m lono durtiif motabolum eon fco local** in IN* diagram ut i*ftl by tracing tb# i combination of )#Rrs an* numbara aeeompanrift| oaeA in (eolumn* B *id C BcM)*!- Obotrvbiiuft# ofc made on 4
m\dd uirity #1 mammalian apoclct.. (on* *rt t4muuUrt4 m iha form ( at molt *bLibtt tampounO* or metallic u 4i i, unlcaa tMinuM opoctfied, Vndcracorlng indicatra radiooeli** dcmonl*. or that data wort obtain** at Itaoi jit part iron MidUl naing radtoaem* looiopoo. Oi/formi taetapoo of im aam* d*m*nt may !* diffr rent la true predilection*. but there ta uouaJJy mb airUftnea in tbeir tbeorptien or mi* of eaertuon. "Plw$" tymoolt ladicote raUnee tutu ip hieb data apply. Wiar K*o m 7tUii^l (column C) am luii on Ur M po**iblt. tA orter of 4Kru*iAf unpertanoc.
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1 Actinium I Aluminum 3 Am^r^lum 4 Antimnny^r 1 *. 1 Aryng*** 1 Barium . v 1 Beryllium BumutA*** a 9 Cadmium ' \ .? *10 Calcium H Citium^
a Ctnuni
1) Chrumium*** la Cobair*
* a Copper**
a . .. U Curium * IT Dvieroaivm*
It Eriuum4 r a Europium* it Francium ii Gaaoliniuf* Z2 Gallium 2i Germanium 24 CM--* Hafnium* . A* H Hoinu^ff* 2? Indium U indium 21 lrtm*r 3* LanlSomij* 1 31 Lead32 LitMy* 33 Lvtetlwm* * 3a 1 Mamarivn - 35 Uanf*oaa++ 30 Mcmm* 3T Nmnnsium* 31 Sffmruwm 31 Ntcstl*1*
411 Palladium Platinum
4> Plumnrum* 44 Polonium
Fruuipil Oral Allmyi'
OUmr Known Falhwayp
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I 0007--SWP-036840
0007-SWP-000112969
9
Toxicity and Hazard s
The term "toxicity" as used in thifc report, re fers to the Innate ability of a material to induce harm cnee inside the body. "Hazard" refers to the ability of a toxic material to be abaorbed into the body where it might effect lte toxic action. A highly toxic material, for example, which cannot be absorbed appreciably from the gastrointestinal tract would not be a significant hazard. The mere presence of a toxic material at a low concentration inside the body also may not constitute a significant hazard. A toxic substance to be considered a hazard, should cause measurable adverse effects (such as irritation, growth Impairment, disease, etc.) when used as intended and at levels approximating intended use. Usually safety factors are applied when setting standards.
Table 3, taken from Spector (18), presents commonly used terms that are associated with acute ex posures by various routes. These terms are used in the body of this report in similar fashion.
Til. Compounds by Tleaental glass
This section considers the toxicity and hazards of the specific compounds by elemental classes. The ori ginal list suggested by N7CA is found in the Introduction.
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0007-SWP-000112970
10
Table 3 Combined tabulation of toxicity claaftee* taken
from page 4 of Spector (18).
--------------
- -'Vr?-: - Jr
Yerloui Routii of Administration
Toxicity Commonly RaUCg Osad Term
U)j o Stn|le Oral**
Dose Rata
Inhalation 4 hr
Vapar Sxpccvra Morullty
l/i-/*Rxts
1-0 s# Skin ttaemu
Probable Lethal Dime
for Man
i xircmljr 1 mg or lass/kg <10 ppm toxic
5 mg or laaa/kg
A taste. 1 grain
1 Highly
1-50 mg
10-100
5-4} mg
l tCABpOOft
i toiic
4 ce
t; VU
3 IKoderateiy SO-$00 mg
100-1000
44-540 mg
1 Ounce
toxic
50 gra
4 Slightly toxic
0.S-S g
1000-10, 000
J5-l.ll g/kg
1 plat 159 gm
s Practically 5-11 g nan-toxic
10.000-100.000 1.11-11. 55 g/kg 1 .uart
t Relatively 15 g and mere >100,900 harmless
11.5 or mar* g/kg >1 quart
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Hodge. K. C., and Sterner, J. n., American Industrial Hygiene Association Overlrly. 10:4,51. Dee I54J
SiisSn Is fer intravenous LDM tor rau ana rabbits may ba obuinad iperoximaialy t>7 dieidtng Hit oral tealctty sianoarsa (or rata by to.
0007-SWP-036842
0007-SWP-000112971
- 11 -
Since many of the compounds belong to more than one elemental class, they appear listed at the beginning of each class to which they belong, along with the concen trations at which they are used in paints.
References h to 26 were used "routinely" for all elements or compounds while the other references generally refer to specific compounds or classes of compounds.
In each section are provided, when available, the following types of information: (a) overall toxicity, estimated from.animal and human data obtained primarily from ACGIH (&), Browning (6), Christensen (7), Falrhall (8), Sax (16), Spector (18) and stokinger (22); (b) body burden data, taken primarily from the ICRP committee II report (12) and (c) data on absorption and disposition (18, 24, 25) pro viding an indicator of absorption and excretion rates and the amount of body pools which might assimilate the absorbed metals; (d) acute oral hazards, taken from Christensen (7) and Spector (18), based primarily on animal studies; (e) water supply criteria and standards which describes human chronic oral exposure, primarily taken from McKee and Wolf (13); (f) toxicity data on specific compounds obtained primarily from Christensen (7), Spector (18), Sax (16) and stecher (14); and (g) oral hazards in paints, which, based on the above information, suggests the degree of potential hazard in using these compounds in paints.
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0007-SWP-03 6843
0007-SWP-000112972
In many cases there are insufficient data available on which to base safe levels of these compounds in paint formulations, Hecoamendations for studies to obtain this information are presented in Section V, Hecermendaoions.
Aluminum 'Compounds
Aluminum Metal
0 - 25%
Aluminum Hydroxide
0-5%
Magnesium Aluminum Silicate
0 - 2=56
Aluminum Oxide
0-5%
Aluminum Silicate
0 - 50%
Aluminum Stearate
0 - 10%
There is a considerable literature on aluminum
and its health effects. In addition to the "routine"
references (4-26), the 1957 review of Campbell et ai. (27)
of this Department Is useful. Dr. John Sorenson, also of
this Department, is currently updating the 1957 review.
Aluminum is very abundant in the earth's crust
and is widely used in metallurgy, in various chemical
industries, and as a therapeutic agent. This element is
considered to be nonessential to man and generally of
low toxicity once inside the body. In the Industrial
setting, the oxide (AlzCj) is considered only as a
nuisance duet. The Threshold Limit Value, TLV, is set
at 30 mppcf (4). However, a benign pneumoconiosis
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0007-SWP-036844
0007-SWP-000112973
13 -
(aluminosis) due to very high levels of dust exposure has been reported. The etiology of the aluminosis is debated
(6, 10).
The body contains an estimated 100 mg of aluminum distributed relatively uniformly In most organs in concen trations of approximately 1 ppm, wet weight basis (12). The lungs contain approximately 24 ppm while the skin, ileum, trachea and blood contain 24, 28, 1.8, 2.0 and 0.16 ppm, respectively. The concentration of aluminum in the lungs increases with age In men (26).
The human diet contains 10-150 mg of aluminum per day (26), almost all of which is excreted in the feces. Tipton and Stewart (24) found in two subjects on normal diets averaged over '47 days, daily oral intake of 17 mg each, a fecal excretion of 17 and 15 mg and urinary excretion of 0.87 and 0.72 mg.
Large oral doses of aluminum compound are nec essary to kill or damage experimental animals -- lethal
mg/kg doses (IB's) from 3730 to 4280/(18). The species and types or compounds used are important. Spector (18) reported an oral ID50 (lethal dose killing 50$ of the animals) for AlClj in the rat as.3730 mg/kg AlCl^ while Svenshtmln (28) reports! a study in which 750 mg AlCl^ administered to a rabbit caused death in two hours. Christensen (7) lists the oral ID50 for aluminum sulfate for the mouse at 770 mg/kg.
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0007-SWP-036845
0007-SWP-000112974
14 -
There are no standards set for domestic water supplies because of the low level of toxicity of aluminum. Cooking with aluminum utensils can add 70-75 mg to the diet with no apparent harm. In one study (28), one man reported ingesting 26^ mg/day for 70 dayB without ill effect. Rabbits, however, maintained on water with 1400 ppm aluminum developed decreased blood, bone and urine phosphate (13).
Specific Paint Compounds. Aluminum metal dust has been reported to produce contact dermatitis and bron chial asthma (14) and pulmonary fibrosis (16) in industrial use but is not generally regarded as an industrial poison. Aluminum hydroxide is used as a food additive (29) and as.-' an anti-acid with good safety. Aluminum oxide (Alumina) industrially has been associated with pulmonary fibrosis (Shaver's disease), the etiology of which is controversial. Toxicity data on the other compounds were not readily available in the literature.
Oral Hazard in Paint. Based on the poor ab sorption from the gastrointestinal tract and on the rela tively low toxicity of aluminum compounds in man, the specific aluminum compounds under consideration by the _ Falnt industry should be safe at the concentrations specified.
--v .
0007--SWP-036846
0007-SWP-000112975
Antimony Compounds
'"Nickel - Antimony Titanate
0 - 15#
Antimony Oxides
0 - 10#
Antimony plays no known essential metabolic
role in biological systems and has been known for its
toxicity since Roman times (32). This toxicity haB been
demonstrated in its therapeutic uses as an emetic (potas
sium antimony tartrate) and for the treatment of human
parasitic diseases (schistosomiasis and leishmaniasis),
In food poisoning from enameled cooking ware and in acci
dental and industrial poisonings. Lethal doses by parental
routes vary from 3.07 to 4000 mg/kg. Industrial TLV for antimony and its compounds is set at 0.5 mg/m^. The TLV
of the highly toxic hydride of antimony, stibine, is also 0.5 mg/m^.
Antimony probably exerts its toxic action by reacting with sulfhydryl-containing enzymes, thus inter fering with cellular metabolism.
The body is estimated to contain about 90 mg of antimony with tissue levels of 0.05 to 4 ppm, wet weight basis (12). Little appears to be known about normal dietary levels of Sb. Woolrich (30) indicated less than 100 ng Sb per day is contained in the diet. Gastro intestinal absorption is between 5 and 70#, most of which is excrttsd rapidly in either the urine or the feces (31).
0007-SWP-036847
0007-SWP-000112976
- 16 -
Acute oral LD50 studies for Sb compounds In animals range from 100 to 20,000 ng/kg (7, 18). A lethal dose of antimony potassium tartrate Is estimated at 2 mg/kg for man.
There is no permissible level established for domestic water use. Antimony added to the food of rabbits caused progressive increases In both Kb and RSC's and when fed to rats caused an increase in WBC's (6). Antimony fed at 5 ppm over a life time caused a decreased survival and longevity 'in rats (26).
Specific Paint Compounds. Antimony oxides. The pentoxide was reported to have low toxicity (ip LD50 in rats, 4 gm/kg). Rats tolerated well 4 mg daily, how ever, both rats and rabbits experienced reduced growth rates on dietary levels of 2% (13). Toxicity information on the tetraoxide or on nickel antimony tltanate was not readily available.
Oral Hazard in Paint. Because various antimony compounds have been found to be highly toxic in man and animals, oral hazards of antimony compounds in paints should be adequately evaluated to determine if currently used concentrations in paint ars safe.
;
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0007-SWP-000112977
- 17 -
Barium comoounds " Barium Metaborate 3arium Soaps Barium Sulfate (in lithopone)
o;- 15# 0-3#
>*.
m
1
O
Cadmium-Barium soaps
0-3#
Lithopone
0 - 50#
There is a relatively large literature on barium
available in the Department's library, including several
recent reviews by Browning (6), Schroeder (33), Miner (3^),
and Rumyantsev (35) Barium is relatively abundant in nature. It is
nonessential to man and soluble forms are considered highly toxic. Lethal doses range from 4-700 mg/kg depending on the route of administration and species. The industrial TLV is 0.5 mg/m^ as Ba. Barium stimulates smooth, striated
and cardiac muscle and may produce violent peristalsis, arterial hypertension, muscle twitching and cardiac dys
function. 3arlua sulfate, used extensively as an x-ray contrast medium, is relatively insoluble and apparently innocuous when ingested. Prolonged Inhalation of Sa com pounds has been reported to cause a benign form of pneumo
coniosis known as baritosis. Barium behaves similarly to Ca and Sr and is
found notably in bone tissue and the aorta, where it is deposited irreversibly (33). 3a presumably can displace Ca to seme extent in biological systems by mast action.
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0007-SWP-000112978
- 18 -
The body contains approximately 15 mg of 3a with most of the organs containing levels in ppb range except for bone which contains approximately 1.63 ppm (12). Barium has been shown to accumulate In the lungs with age, apparently due to deposition from inhalation. The diet contains approximately l6 ng/day (26). Tipton and Ste wart's (2^) individuals' diets contained an average of 0.65 and O.92 tag/day over 3^7 days. Excretion averaged 0.69 and 0.88 mg in feces and 0.037 and 0.017 mg in the urine re spectively.
Acute oral lethal doses in animals range from 7-9600 mg/kg. Five hundred to 600 mg of a barium compound in man has been reported as fatal (13). The USPHS 1962 water standards for domestic water supplies limits 3a to 1 mg/1 based on the toxicity of barium (13)-
Speclflc Paint compounds. BaSOi, is used as a contrast medium for gastrointestinal x-rays. It is con sidered innocuous; however, this use is on a short term basis -- usually a single pass through the gastrointestinal tract. Data on humans, especially the young, on a chronic exposure basis are not apparently available. Lithooone has been considered "non-toxic"; however, Ss j c (16) indicates that hydrogen sulfide can be liberated from lithopone on decomposition by moisture, acid, or heat.
' j -;.. .
0007-SWP-036850
0007-SWP-000112979
'-3
Oral Hazard In Paint Barium chloride apparently Is readily absorbed and Is highly toxic to many species (18). Since Insoluble barium compounds might form chlorides In the stomen all the barium compounds of concern (soluble or Insoluble) used In paints should be adequately evaluated for chronic and short term exposures.
Boron Compounds
Boron Tri-fluoride
0 - 1*
0
1 VJ1
Borates (3ariun aetaborate
sodium metaborate, etc)
The literature on the health effects of boron
compounds is relatively limited. Browning (6) and
Durocher (38) offer recent reviews of this subject.
Although essential to higher plants, boron Is
net considered essential to man and has no known metabolic
role. Boron and its compounds are considered by Sax (16)
as not highly toxic to man. The most common health hazards
have been accidental ingestion of household 'chemicals,
such as boric acid or borax, and absorption of boric acid
from wounds or bums. The most highly toxic boron com
pounds are the boranes used in high energy fuels. Lethal
parenteral doses of boron compounds range from 20 to over
2000 mg/kg depending on the species, route of administra
tion, and phe compound. Industrial TLVs are set at
:
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0007-SWP-036851
0007-SWP-000112980
20 -
3, 0.3, 0.1 and 0.01 mg/m^ for boron trifluorides, deca-
borane, dlborane, and penta'oorane, respectively.
Boric acid may produce primary skin irritation
and conjunctivitis locally. The ingestion of excessive
doses of borates may cause nausea, cramps, convulsions,
i
coma, and other symptoms of distress. Inhalation of the
boranes may lead to chest tightness, cough, headache,
dizziness, convulsions and unconsciousness.
The body contains approximately 10 mg of boron.
Most of the tissues contain sub-ppra quantities except
bone which may contain nearly 3 ppm. The diets in Tipton and Stewart'8 studies (24) contained 1.2 and 11 mg/day
with most of the boron being absorbed and excreted in
the urine (0.95 and ^.7 mg). Lethal oral doses in animals
ranged from 45 to 5140 mg/kg (7, 18). Fifteen to 20 gm of
boric acid has been lethal to adults and 506 gm to children.
Bats drinking water containing C.25# boric acid exberienced drinking water
decreased growth rats; however, boron in publie/ls not
generally regarded as a hazard to human beings (13)- Con
centrations to 30 mg/1 of boron in drinking water have
been reported as not harmful. Hoskins, however, has
recommended a boron limit of 20 mg/1 in drinking water (13).
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SoecIfIs Paint Compounds. Boron trifluorideIs highly hazardous by the Inhalation route (TVX, 1 mg/m^). It is highly irritating to mucous membranes. Oral hazard data were not readily available from the references used. Borates Sodium borate is strongly alkaline and soluble in water. Its oral LD50 for the mouse is 2.0-3.0 gm/kg (38), which can be considered only slightly toxic. Intra venous administration of 0.3 gm/Xg of sodium metaborate to the rabbit caused no notable toxic effects.
Oral Hazard in Paint. Orally, the borates are probably relatively non-toxic on a short-term basis; however, inadequate data at * available on long-term expo sures . Since boron once inside the body can be quite toxic, the oral hazards of these compounds In paint formulations should be more adequately investigated to determine safe levels for paints.
Cadmium Compounds Cadmium Barium Soaps Cadmium Lithopone Mercury Cadmium Lithopone Cadmium Selenlde Cadmium Selenid# Pigments Cadmium Soaps
0 - 3# 0 - 15# 0 - 15# 0 - 15# 0 - 25#
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0007-SWP-036853
0007-SWP-000112982
There is an extensive and rapidly growing litera ture on health effects of cadmium and its role in the pollution of our environment. Recent survey articles by 3rowning (6) and Fasset (39) and extensive reviews by Athanassiadis (40) and Friberg (4l) are available.
Cadmium is not widely distributed in nature and finds its way into the biosphere primarily as waste pro ducts of technology. Cadmium is considered to be highly toxic to man by any route of administration. Although Cd tends to be deposited irreversibly in the liver and kid neys (metallothlonine) as a possible protective storage of the metal, cadmium in toxic levels interferes with the many -SH containing enzymes and many metal-containing enzymes.
Ingestion of cadmium has caused nausea, sali vation, vomiting, diarrhea, and abdominal pain. Locally, it is irritating to mucous membranes, produces yellow dis coloration of the teeth, and contact dermatitis due to hypersenaltlzatlon. Inhalation of cadmium fumes may be followed by respiratory irritation, dry throat, metallic taste, chest pain and dyspnea due to bronchitis, pneumonitis and pulmonary edema. Liver, kidneys and bone marrow may be damaged.
Lethal doses in animals range from 2 to 250 sg/kg depending on the chemical form and species (7, 13).
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0007-SWP-036854
0007-SWP-000112983
- 24 -
Cadmium, fumes at 9 mg/m^ has caused death in man. The
i S
TLV's for Cd^ are 0.1 and 0.2 mg/ar for the oxide fumes
and soluble dusts, respectively.
The body is estimated to contain approximately
30 mg of cadmium. Most tissues contain less than 1 ppm
except for the kidney (32 ppo), the liver (2.4 ppm), and
the pancreas (1.2 ppm). Under normal exposures, Cd accumu
lates in the kidney with age. The diet contains approxi
mately 25 /ig/day, the major portion of which is absorbed
and excreted in the urine (42 and 0356) (12, 24).
Acute deaths in animals are seen with oral doses
of 70-369 mg/kg. Pood poisoning from Cd-plated containers
has been reported. One boy died two hours after Ingesting
8.7 gm of CdCl2. Limits for domestic water supplies were
--------------------- *
Standards
set at the low levels of 0.05 mg/1 by the WHO European/1962
Standards
and 0.01 mg/1 by the USPHS/1962 organizations because of
the highly toxic nature of cd (13).
Specific Paint Compounds. Most of these com pounds listed in Sax (16) and the Merck Index (14) were listed with cross reference to the high toxicity or cadmium and mercury compounds. Llthopone compounds would have added potential hazard due to the possible liberation of H^S gaa (See Barium Compounds above). Cadmium selenide has a low toxicity because of the compound Insolubility (14). Cadmium stearate has an oral LD50 of 1225 mg/kg in the rat, giving this a "moderate" toxicity rating.
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0007-SWP-036855
0007-SWP-000112984
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Oral Hazard In Paint. 3ecause of the highly toxic nature of cadmium in man, cadmium salts should not be used in interior paints or on children's articles without extensive research showing its nonabsorbability from paint formulations, both from short-term and long-term exposures.
.1
'Calcium Compounds.
Calcium Carbonate Calcium Napthenate
0-70# 0-2#
Calcium oxide Calcium Soaps
0 - 15# 0-2#
Calcium is the most abundant metal in the earth's
crust and is essential to all forms of life, it is also
the most abundant divalent metal in the body and is essen
tial for many functions including the activation of many
enzymes, neuromuscular irritability, and the structure
of bone and teeth. There is a large literature on the
rolee of calcium in living systems.. However, for the pur
pose of this review, the "routine" references (^-26) pro
vide the primary sources of toxicological information.
Many calcium compounds are used therapeutically
and are considered to be relatively non-toxic. Problems
of dietary deficiency of calcium have been of more concern
to the general population than the toxicity of calcium.
On the other hand, industrial exposure to duets containing
v... v
0007-SWP--036856
0007-SWP-000112985
- 20 -
calcium oxide (lime) and calcium arsenate have'oeen of concern -- the oxide because of its irritation to the
i
skin, conjunctiva, cornea and mucous membranes of the respiratory tract and the arsenate because of the arsenic toxicity. The TLV's for these materials are 5 and 1 mg/m^ respectively.
The body contains about 1030 gm of calcium most of which (99#) is found in the bones. Tipton and Stewart (24) reported 940 and 2300 mg per day of calcium in the diet with only 140 and 230 mg being excreted in the urine, the rest appearing in the feces. The human body requires approximately 0.7 to 2.0 gm of calcium per day as a food element and amounts considerably in excess of these re quirements are consumed with the use of hard water with out overt adverse effects.
Parenteral and oral lethal doses in animals range from. 100 to 25,000 and 15 to 7340 mg/kg respectively depend ing on the compound's, species and routes of administration (7, 18). Because of its low oral toxicity, the USPHS drinking water standards of 1962 and the WHO European Standards or 1961 do not contain limits for calcium; how ever, the WHO International Standards of 1958 indicate 75 mg/1 as a permissible limit and 2000 mg/1 as an excess ive limit.
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0007-SWP-036857
0007-SWP-000112986
Specific Paint Compounds. Calcium carbonate is used as a nutrient and/or dietary supplement '(29), anti acid and anti-diarrhea agent and is relatively non-toxic. Calcium Oxide is also used as a dietary supplement (29) but is relatively toxic as an industrial dust. In short
Rockhold term studies using calcium naphfchenate/rcported an oral 1C50 greater than 6 gm/kg in rats (42). The soap, calcium stearyl-2-lactylate, is used as a food additive and is considered relatively non-toxic.
Oral Hazard in Paints. Based on the fact that relatively high levels of calcium can be safely tolerated in''the diet or as oral therapeutic agents in man, the rela tively low toxicity of the calcium compounds in question and the probable unabsorbability of these compounds from ingested paint chips, these compounds can probably be con sidered as only a slight oral hazard in paint formulations.
Chromium Compounds
Chromium Oxides
0 - 15*
Lead Chromate
0 - 25*
Lead Slllco Chromate
0 - 25*
Strontium Chromate
0 - 25*
There is an extensive literature on the health
aspects of chromium. Browning (6), Sullivan (47) and
Smith (48) provide recent overviews for chromium.
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0007-SWP-036858
0007-SWP-000112987
Chromium is an essential element involved with glucose and lipid metabolism (an Insulin factor). The biologically active form of Cr is nou known. Chromium metal itself is relatively inert. Dl- and tri-valent chromium compounds are relatively non-toxic; however, the hexavalent forms (chromates and dichromates) are considered highly toxic. Most toxic hazards are from airborne chro mium in industrial settings. Cutaneous allergy Is not uncommon from hexavalent compounds but are rare from trivalent chromium compounds. Contact with chromates or chromic acid can produce small, painless cutaneous ulcers as well as primary irritation or hypersensitivity. Allergic bronchial asthma has been associated with chromium tri oxide fumes. 3ronchogenic carcinoma has occurred at an abnormally high rate among chromate workers. Industrial TLV's are 0.1 mg/m^ for chromic acid and chromates 0.05 mg/m^ for soluble chromic ana chroous salts, and 1 mg/m^ for metallic chromium and insoluble salts.
The body contains approximately 6 mg of Cr, the bones containing 0.^9> the lungs 0.2, the skin 0.33 and the uterus 0.24 ppm. Chromium accumulates in the lungs with age. The daily diet contains approximately 60ng (25) per day. In Tipton and Stewart's studies (24), 0.20 and 0.29 mg appeared in the diet with 55 and 41$ excreted in the urine. ?arenterally, lethal doses of various chromium
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0007--SWP-036859
0007-SWP-000112988
- 29 -
compounds vary from 0.11 to 6185 mg/kg while acute oral doses vary from 1870-3250/^7^8). Babbits receiving
1.9 gm of K2Cr27 died within two hours. Schroeder found the 5 ppm of Cr +3 In the diet
of rate to be beneficial. 3oth the USPHS 1962 and the WHO European 1961 agencies set 0.05 mg/1 as a standard for hexavalent chromium In drinking water apparently be cause of a concern for possible carcinogenicity (13). McKee and Wolf (13). however, question this restrictive ness because of & case of a family which had drunk water containing 25 mg/1 of Cr +6 for years (1957 on) with
1
no apparent adverse effects. i
Specific Paint Compounds. Chromium oxides. All of the hexavalent oxides are orally toxic, producing gastrointestinal irritation, vomiting and diarrhea, and in experimental animals, renal damage. Oral toxicity data on the other compounds were not readily available from the references used in this survey.
Oral Hazard in Paints. Chromium compounds, especially the hexavalent forms of chromium, have the potential of toxic action at relatively low levels. It is not sufficiently clear from this brief survey what oral hazard would be provided by ingesting the specific compounds to be used in paint formulations. Experimental investigation will probably be necessary to establish acceptably safe levels.
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0007-SWP-036860
0007-SWP-000112989
- 30 -
Cobalt Compounds
Cobalt Naphthenate Cobait'Nickel Titanate
0 - 15* 0 - 205?
Cobalt Soaps
0 - IS
Cobalt is a relatively rare element, composing
about 0.001* of the earth's crust. The toxicity litera ture on cobalt is relatively limited. The "routine"
references (1-26) were used. Stokinger (22) and Browning
(6) deal with the general toxicity of cobalt and Valberg
(63) discusses the gastrointestinal absorption of cobalt.
Cobalt is an essential trace element for man and animals.
It is an important constituent of vitamin
and certain
enzymes, and is associated with the production of erythro
poietin, and red cell stimulating factor.
Parenteral lethal doses of cobalt compounds in
animals vary from 21 to 1J*00 mg/kg (7, 18). Administration
of cobalt salts produces polycythemia. In one case of
human poisoning, liver and kidney damage was attributed to cobalt. Metallic cobalt dust and cobalt salts may produce
allergic contact dermatitis and corneal irritation. Inha
lation of cobalt dust has been associated with gastro
intestinal irritation and possible bronchial asthma. The
industrial TLV for cobalt metal dust or fume is 0.1 mg/m .
The body contains an estimated 3 mg of cobalt
with moat tissues containing 0.1 ppm or less. Cobalt is
a .
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0007-SWP-036861
0007-SWP-000112990
- 31 -
concentrated in bone, liver, kid.-ey and cecum at 0.5, 0.3, 0.2 and 0.26 ppm, respectively. In the studies of Tipton and stew&rt (2h), the diets contained 300 and 500 ug per day with most of the cobalt being excreted in the feces {U8 and 7?%).
Oral lethal doses of cobalt range from 0.5 to 1700 mg/kg (7, 13). Excessive oral intake causes nausea and vomiting. Five hundred mg/day for 30 days was lethal for calves and 50 mg/kg was lethal to chicks. Three to 4 n^/day given to children for the treatment of anemia was goitrogenic. The Ingestion of 0.1 to 0.25 mg per day does not appear to have any adverse effects whereas single daily doses of 25 mg per day over a period of one week or longer increase the hemoglobin content of blood. McKee and Volf (13), however, state that maximum safe concentration for cobalt in drinking water cannot be established or estimated on the basis of present knowledge.
Pa.--t Compounds. Cobalt naothenate was found by Rockhold (ha) to have an oral LD50 in rats of 3.9 ga/kg, Toxicity or solubility data on the other cobalt compounds v c t not readily available.
Oral Hazard in Paines. Since relatively low levels of cobalt intake can be toxic to children, appropriate studies to establish safe levels of cobalt compounds in paint formulations should be carried out.
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0007-SWP-036862
0007-SWP-000112991
Cornier Comoounds
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' copper Metal
0 - 50?g
Copper Naphthenate
0 - 556
Copper Oxides
0 - 25#
Copper phthalocyanine
0 - 5%
Copper Soaps
0 -- 5%
Copper is an essential element to man in that
it is required for the formation of erythrocytes and
hemoglobin as well as being an essential part of several
proteins: ceruloplasm, tyrosinase, cerebrocuprein,
erythrocuprein, cytochrome oxidase, and other proteins.
There is a large literature on copper essentiality, bio
chemistry and toxicity. Scheinberg and Stemlieb (43)
and Davenport (68) provided extensive reviews. For more
recent reviews see Scheinberg (45), Browning (7), and
Van Campen (46).
The toxicity of copper compounds has been known
for centuries. Soluble copper salts are strongly irritating
to the skin and mucous membranes. Ingestion of excess
quantities (copper sulfate) in man has caused vomiting,
gastric pain, convulsions, and death (16). Nerve, kidney
and liver damage has been recorded. Metal fume fever
("brass chills") results from the inhalation of copper dust or fumes (TXV for fumes, 0.1, and for dusts, 1.0 mg/m^)
E -- ' '
-
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0007-SWP-036863
0007-SWP-000112992
M 33
The body contains approximately 100 mg of Cu, concentrated mainly in the liver, brain, kidney, heart and stomach (12). The diet normally contains from 2 to 20 mg per day with most of it being excreted in the feces (2k).
Lethal oral doses in animals range from 22-940 mg/kg. Hemolytic anemia has been induced by the therapeu tic use of copper sulfate. Sixty to 100 mg in the diet due to heating tea in a copper pot has caused gastroenteritis (13). Three ounces of l copper sulfate also caused one case of enteritis. Ten to 30 mg per day in drinking water apparently causes no symptoms; however, because of bad taste problems, USPHS 1962 standards limit copper to 1 mg/ liter (13).
Specific Paint Compounds. Cooper metal is in soluble in water but soluble in acids and therefore may fora absorbable compounds in the stomach. Cooper naohther-ate, orally administered to rats (42), had an LD50 greater than 6 gm/kg (low toxicity); however, Gefafer (10) describes the nafhthenate as an irritant. Cooper oxides, used in fungicides, are irritants (10) and are soluble in acid. Capper soap are generally insoluble in water or acid (19, 20).
iuss?.:
0007-SWP-036864
0007-SWP-000112993
i - 34 -
Oral Hazard in Paints. Relatively small amounts of absorbed copper can exert a toxic effect on the body. None of the above information is sufficient to assume safety of oral ingestion of copper-containing paints in children, especially for long-term expoauree. Therefore, studies should be carried out to establish safe levels for these materials In paints.
" lead Compounds
Lead Carbonate, basic
0 - 60*
Lead Chromates Lead Metal
0 - 25* 0 - 25*
Lead Molybdate Lead Naphthenate Lead Oxides
0 - 15* 0 - 3* 0 - 50*
Lead Silicate, basic Lead Silico-Chromate
0 - 15* 0 - 25*
Lead Soaps
0 - 3*
Lead is biologically ncnessential to man.
has created considerable concern for its possible environ
mental health effects because of its use in automobile
gasolines, paints and many other products. There exists
an extensive literature on the biological effects of lead.
This literature ia regularly reviewed and abstracted in
our Department's Lead Abstracts. Several recent reviews
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0007-SWP-036865
0007-SWP-000112994
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\
are available, such as the National Academy of Sciences' "Airborne Lead In Perspective" (^9), Hammond's "Lead Poisoning: An Old Problem with a New Perspective" (50), and more recently Goyer and Chisolm's lead review (51)*
Lead poisoning is one of the moat common of occupational diseases. The industrial TLV's (4) for lead as lead, lead arsenate or tetramethyl lead are0.15 mg/cu. m. and for tetraethyl lead, 0.1 mg/cu. a. Inorganic lead poisoning may produce abdominal pain (colic), constipation, headache, weakness, muscular aches or cramps, loss of appetite, nausea, vomiting, anemia and other signs and symptoms. Lead palsy and lead encephalopathy resulting from industrial exposure is rare but not infrequent in t children exposed to lead. Children poisoned by lead may
and other sequelae. develop mental retardation as well as permanent paralysis/ Symptoms of organic lead poisoning are usuelly confined to the nervous system.
biochemically, lead interferes with several enzymes involved with the synthesis of hemoglobin which leads to increased urinary excretion of coproporphyrins and delta-aminolevulinic (ALA) acid and decreased blood ALA synthetase and AIA dehydratase. High levels of lead are also associated with hyperglyeuria, hyperamino aciduria, hyperphosphaturia and hypophosphatemia. The action of lead on the Kidney and on neuromuscular activity is not well understood.
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0007-SWP--036866
0007-SWP-000112995
V. -
- 36 -
The body is estimated to contain 80 to 120 mg of lead, most of which (over 9Q&) is stored in bone. Except for bone, most tissues contain 1 ppm or less of lead. The normal adult diet contains approximately 0.3 mg of lead per day, most of which is excreted in the feces. About 10 of the dietary lead is absorbed and excreted in ^ the urine. Lead .normally accumulates in bone and other calcified tissue (aorta) with age. Kehoe (52) found in young adults that supplementing normal diets with 0.3 mg of lead (total of 0.6 mg of dietary lead/day) caused ele vations in blood leads which remained at acceptable levels of 0.4 ppm or less. Supplementation with 1 mg (a total ' o'f 1.3 mg lead in the diet) caused blood lead levels of 0.4 to 0.6 ppm. 31ood leads of 0.4 to 0.6 ppm are con sidered suspicious of excessive lead exposures.
The acute toxicity of lead compounds varies considerably, ranging from 1.4 to 35>0OO mg/kg depending ... n the species, route of administration, the compound and experimental conditions (7, 18). Lethal doses of lead, acetate in the rabbit given intravenously ranged from 50 to 300 mg/kg and in the dog from 9 to 300 mg/kg for differ ent investigators. This was also true for lead arsenate which ranged from 100 to 825 mg/kg administered orally to dogs. The individual values for these experimente are given below under Specific Paint Compounds.
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0007-SWP-036867
0007-SWP-000112996
Lead poisoning in human beings has been re ported to have been caused by drinking of water containing lead in concentrations varying from 0.0U2 mg/1 to 1.0 mg/1 or more. However, concentrations of 0.01 to O.lo ng/1 have been apparently non-polsonous over long periods of time (13) Far many years, the mandatory limit for lead in the USPHS drinking water standards was 0.1 mg/1; but in the 1962 StonslardD, tho limit for load was lowered to 0.05 mg/1. In the WHO International Standard^and the WHO European Standards the limit for lead was set at 0.1 mg/1 (13).
Specific Paint Compounds. There have been many studies on the toxicity of lead compounds. Tables H and 5 are taken from Spector (18) and Christensen (7) and are presented to emphasize the wide variation of responses of animals, discussed above, to the various compounds and methods cf administration. An oral LD50 for rat6 for lead ctdchwiato (not in the tables) was found by Kochold (^2) to be 3 gm/kg.
Three reports found in the literature involved the administration of lead in paint or paint materials to animals (53-55). 'White and Cotchin in 19U8 (53) re ported the results of a study of the absorption of lead
lead carbonate and lead acetate given to calves. The authors refer to a similar study by Haltenhoff who
:$ Vh &/
r-'
*
S. zx
;
0007-SWP-036868
0007-SWP-000112997
33
Table b. Toxicity data for lead compounds taken from Spector (18). References to the original literature are provided by Spector.
Clow*
Lm*
l*m4 nU*M>
u h auiai*
im* Mnmi UlMWHt
Lm4 arlMiu Uil tairl4t Lo*9 T-~iin Lam* 4Um* U4 * ^*-------- UUtttmii La >i*M Ui4--- ------L** --r--- --Ut L. ii-*t L**4 atlicw Jl *** HUrtw
Aptm*! AMI* Dpi*
JlUUbfcPPiltt m1*r
CKG?Mulu|wtM**m*I ph(|
119* *
M1MMLLDD*' LLLLODDt>n,,
Dmmgik{f V* It* <19*9 *mIM1090*
Cut*** 90 mr MLD* n.Dt# * CCuUtM**** Nf im1p9r tLLaDDn 22UQti90*)09t
fGGGUvuuulirilttC**** HpHig|i 1LP99r fRlUelbtMPHIt Ui*
<MtLaDLntDs Ii1UtI9.)99I9M MMMLLLODD* )Iltl-4U
FJUf*t tGJttDoneeeU*ibttMlrMnUt
9la* ifm1tmtv*9v**r
. . JtfteUeUbtlMtotitl
Atcap
m9mmrrrrrr
GGGuluUmuA*mt** pppiilggf
mr >ipP
CiBIM* Plf r
LLDD uLLLLILLLDDDDDDDD
U1190I m1)*31399M90*00909-499
JLL-D*Wt9l** MLLDDL1D0*
4I2<U1U99>90'
LMDLD* *M*LD}
111X0)9949 1109-2094
CguWiltM**i H*lUf *ipP
cGtttsMw* pil>l( iipi
6uum> Mf
1 G6ta*tWia** p9VigC { **if
11 tCeltilMI Hif ImPr
! Guinv* pig | *r
!I
CCuutt******
ppigf f
V
ip
|I Cfiunlla***l PUg i mip
[tGetm* | 11 **f
1F GCmwalict*** *pi(g iipp
| Gian** [Cmmi
ttg *if
i 1
** w
ULB**l. iin
LLD)i,i DinO
LDu 1009-4999
|lLdB,m *24100(091
|Ill
d d
*2T9099
IU> 1009
I(Ll Dd wiM I>M1
|ILl dD 1 219,19
j)uII>LD,, 1[ 029999
|ILl dDi* 1 iXnl
|U> 11 {MLD , it.494
Bs
U:
l
0007-SWP--036869
0007-SWP-000112998
Table 5. Toxicity data for lead compounds taken from
Christensen (7). References to the original literature are provided by Christensen.
Compound
Animal
Route Dote
Dotage
Lead
Guinte Pig Man
P ih
LDce
100 3
LC 0.43mg/m
Lead Acacatc
Ric ip 1050 ISO iv LDSO 120
Lead Areenace
Rac or LD50 100
Lead Arsenate (baaic)
Man or LDce 1.4
Lead Carbonaea
Gulnaa Pig ip
LDca
124
Lead Chloride
Guinte Pig or
LDce
2000
Lead Chromate (vl) Lead Compounda-Triethyl-Chloride Lead CompoundaTriethyi-Oleatt Lead Dioxide Lead Fluoberate
Guinea Pig ip Ret ip Ret or Guinea Pig ip Rat or
LD50 LD50 LDce LDca LDce
600 11 SO
115 30
Lead f 11) Cyanide Lead (11) Fluoatllcace
Rat RAC
ip LDca 100 or LDca 250
Lead Lactate
Guinea Pig or
LDca
1000
5'-plvS
0007-SWP-036870
0007-SWP-000112999
Table 5. Continued
Lead Monoxide Lead Nltrata Land Orehoarcenaea Lead Crthpphoaphate Lead Oxida Lead Parchloratea Laad Silicate Lead Sulfate Laad Sulflda Laad 7e that thy1 Laad Tetrapropyl Lead Totroxida Laad Ti tana tea Lead Triecbyl Lead Trlmethyl Lead Trlphenyl Pluoailleate Leod Tripropyl
Rlt ip RftC ip Guinea Pig ip Gulnaa Pig ip Rat ip Mua iP Culoaa Pig ip Culnaa Pig ip Rat ip
LD50
400
LDca
270
LDSO
38
LDca
131
L050
450
LDca
275
LDca
136
LD50
300
LD50 1600
Rat
or 1050
35
Rat
ip LD50
200
Guinea Pig ip
LD50
220
Rat ip L05O 2000
Rt
ip LD50
11.2
Rat
ip LD50
25
R*C or LD50 100
Rat
ip LDca
20
:**
Hi
nrrrr
0-
0007-SWP-036871
0007-SWP-000113000
used red lead paint dead oxide) with si.-r.ilar results. Calves were given single or repeated doses orally in gram quantities. The signs of poisoning and the concentrations of lead in the tissues were similar irrespective of the form of lead given. All animals died from their expo sures. Nervous symptoms varied but included seizures, blindness and Kidney degeneration. Flakes of lead paint < could be decected in the stomachs days after administra tion. Concentrations of lead in the liver varied from 9.5 to 132 ppm and in the kidney from 0.5 to 300 pm.
Gage and Litchfield (5L) studied the absorption of lead in rats given four polymer formulations in their diets: Polythene convening lead carbonate pearlesce.ot pigment, polypropy'sne containing a lead chromate-molybdate pigment. FVC st-jilized with tribaslc lead sulphate and rigid urethruie foam catalysed with lead 2-ethylhexoate. Th-se polymers were fed at the level of 1# of the dietary formulations for i to 5 months. The lead contents of blood, bile, urine, liver, kidney and bone were measured. Control animals received no lead, and reference animals
received 2, 6 and 20 ppm of lead as lead nitrate in their
diet. Appreciable quantities of lead were absorbed from
the ?vc containing lead sulfati (containing 230 ppm as
lead in the diet). Che abeorptlon cf lead from the other
i-'i* ;.fr
fie'.-.j-rr1
"V i.\
' / ''Svf.-i-.y -
0007-SWP--036872
0007-SWP-000113001
*2
diets was not much different from that of the control diets. The authors concluded t'lat lead was poorly absorbed from the rat intestine.
A second study by Gage and Litchfield (55) in volved the absorption in rats of lead from paint films contained in the diet at a level of 1%. Two paint films were used: one containing middle orange chrome pigment and the other, lead nmhthenate drier. The diets were fed up to 12 weeks. Control groups and reference groups using lead nitrate at 20, 50 and 100 ppm and lead napthenate at 100 ppm of the diet were also used. Blood, bone, kidney, liver, bile and urine lead determinations were made. The authors concluded that one-half of the lead in the chromate paint migrated (was absorbed) from the film under the experimental conditions.
Oral Hazard In Paints. The hazards of ingesting paint flakes containing lead has been the subject of con siderable study. The above mentioned references (**9-51) also provide review of this problem.
The Deputy Commissioner of ?ood and Drugs, fanes D. Grant, recently declared a limit of 0.05% of -he total weight of the contained solids cr dried paint fil= for paints to be used in or around the household (56). This decision was made on the bases of several publications,
is*!?
i r
0007-SWP-036873
0007-SWP-000113002
48
announcements and testimonies (57-51). A detailed account of the bases for the Commissioner's decision is outside the scope of this survey. However, it perhaps should be pointed out that a daily permissible intake of lead for children (6l) was based on the human lead balance studies of Kehoe (52), using a soluble lead compound, extrapolated to children and verified indirectly by studies on lead intoxicated children.
lithium Compounds
lithium Hydroxide
o - 1%
lithium Naphthenate
0 - 2%
Lithium is nonessential to man and is found in
low levels in human tissues. The literature on the health
effects of lithium compounds is relatively limited. Most
of the information provided here comes from the ''routine"
references (1-25), especially Browning (6) and Stoi&nger
(22). Schow, in 1957 (52), reviewed the pharmacology and
bio logy of the lithium ion.
The body contains approximately 0.9 mg of lithium
distributed throughout most of the tissues in levels cf
approximately 0.01 ppm. Being or.e of the alkali metals,
ii behaves chemically in the body much like Ha and K.
lithium compounds are moderately to highly toxic depending
on the species, route cf administration and the compound
used. Sodium antagonizes the action of Li.
i
0007-SWP-036874
0007-SWP-000113003
The most prominent .symptoms or acute lithium poisoning in animals, when given by mouth or intraven ously, include anorexia, nausea, vomiting, diarrhea, weight loss, dehydration and fall of body temperature. Effects on the central nervous system are manifested by muscular weakness, hyperirritabillty, stupor, and con vulsion; on the heart by EXG ch;incco, auricular otandotlll or fibrillation; on the kidney by oliguria, a ri3e in blood protein nitrogen and degenerative changes in the tubular epithelium. Many of these symptoms have been seen in humans in years past when lithium compounds were used therapeutically for gout.mental diseases and as a salt substitute.
Normal dietary levels of lithium were not readily available; however, lithium is readily absorbed from the gastrointestinal tract (greater than TO%) and excreted in the urine (31). Lethal oral doses of lithium compounds range from 0.025 to 200 mg/kg. Information on chronic oral exposures is lacking; however, the industrial TLV (4) for the highly toxic lithium hydride is set at 0.025 mg/cu. m. because it is intensely irritating and corrosive. No limits have been set for drinking water; however, Hibbard recommends, without references, that lithium should not exceed 5 mg/1 (13).
Specific Paint Compounds. The hydroxide is is strongly alkaline and caustic in high concentrations. Information on the naphthenate was not readily available.
I
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*v*y "r'.i-w.-_.--.
i
v
it
a T>y.
,0.V
- ' V
:r-
0007-SWP--036875
0007-SWP-000113004
Oral Hazard In Palr.t. Because of the highly toxic
nature of lithium compounds, studies should be carried out to confirm the safety of any levels of those materials In
~h
paints.
! rr-'.
Magnesium Compounds
Magnesium Aluminum Silicate
0 - 20*
Magnesium Oxide
0 - 156
Magnesium Silicate
0-50*
Magnesium is abundantly distributed in nature
and is an essential element. There is a large literature
on the biological role of Mg in living systems. Schroeder
et al. (69), Browning (6) and Stohlnger (22) provide re-
cent views of the essentiality and toxicity of magnesium
compounds.
Magnesium is the second most abundant divalent
cation in the body amounting to a total of about 25 Cn>
70* of which is found in bone (530 ppm). Cartilage con
tains 200-300 ppm while other tissues contain from 100
to 200 ppm (12). On normal diets containing 190 and 360
mg/day (2^), one-third of the dietary intaKe appeared in
the urine, the other two-thirds appearing in the feces.
Aside from its structural functions in bone and teeth,
magnesium is important in neuromuscular conduction of
skeletal and cardiac muscle and to the activity of numerous
entities involved with oxidative-phosphorylation, protein,
lipid and carbohydrate metabolism. Magnesium deficiency
produces symptoms of hyperirritability (tetany) sometimes
. --i. r
vie: "hr. r.
_ / - >
0007--SWP--03687 6
0007-SWP-000113005
seen in patients on i.v. fluid therapy inadequate in magnesium. In cattle, magnesium deficiency produces "grass staggers".
Magnesium compound toxicity varies from slightly to highly toxic depending on the species, route of admini stration, and the compound used (7, 18). When administered intravenously, magnesium salts can produce general an esthesia, narcosis and muscular paralysis which can be counteracted by intravenous calcium administration. In dustrial TLV (-1) for magnesium is set at 10 mg/cu. m. for MgO fumes because of fume fever reactions.
Oral ingestion of magnesium is considered rela tively non-toxic to man. Magnesium acetate, however, has an oral LD50 of 13 mg/kg (highly toxic) in the mouse. At high concentrations, magnesium salts have a laxative ef fect. Drinking water standards do not impose maximum allowable concentrations but do suggest limits under 150 mg/1 primarily for taste problems.
Specific Paint Compounds. Magnesium Oxide is used ao a dietary supplement for magnesium and therapeu tically an an antiacid and eathnric and can be given in gram quantities safely. Long-term use of Mg compounds as laxatives can develop dependency (constipation) as the only apparent acjvoroo offoet from Uiolr uuo (G'j), Magnesium silicate (tale) has been "generally recognized as safe" (FDA's GHAS list) as an anticaking agent in table
0007-SWP--03 6877
0007-SWP-000113006
salt up to 2* and in vanilla powder and in vanilla-var.illin powder under food standards (29). Information on magnesium aluminum silicate was not readily found but this compound might be expected to behave similarly to magnesium silicate.
Oral Kazard in Paints. 3ecause of the low-
acute or chronic oral toxicity of magnesium compounds,
the oral hazard due to magnesium in paints Is probably quite low.
^ Manganese Comoounds
Manganese Dioxide
0-2*
Manganese Naphthenate
0-1*
Manganese Soaps
0-1*
Manganese is widely distributed in nature and
is an essential element for both plants and animals.
There is a relatively large literature dealing with normal,
deficiency and toxic states of manganese. Cotzias (55),
Schroeder (67), Browning (5), gtofcingtr (22), and Smith
(ft8) provide recent reviews of manganese health literature.
Manganese is involved with the -unctions of
numerous enzymes governing carbohydrate,
protein
metabolism and oxidative phosphorylation, Lr.-lading ar-
genase, aiicaiine phosphatase, prolidase, can>-?inase,
cysteine desulfhydra.se, thiaalnase, deoxyribonuclease,
giycyl-i-ieucine dlpeptidase and other enzymes ('7).
0007-SWP--036878
0007-SWP-000113007
Parenteraily administered lethal doses of man
ganese compounds vary from C.12 to -10 mg/kg (7, IS)
depending on the species, route of administration and the
compound. Organic manganese compounds tend to be con
siderably more toxic than inorganic compounds, in chronic
exposures of human beings, manganese is a nerve toxin,
with polymorphic manifestations of psychic and neurological
disorders. Manganese can also cause a pneumonia-like
condition known as "manganese pneumonitis" (6). Acute
exposure to manganese fumes can cause metal fume fever.
The industrial TLV for manganese is set at 5 og/cu m. (4),
The body contains about 20 mg of manganese with
most of the tissues containing C.l to 0.2 ppm (12). The
kidney, liver, and pancreas contain 0.18, 1.3 and 1.16
ppm, respectively. Tipton and Stewart's (2^) .
subjects over a
3U7 day period averaged 3.3 and
p.5 ng/day in the-diet, 2.5 and 3*0 mg In the feces, and
0.04 and 0.05 mg cf manganese in the urine.
Manganese is considered only slightly toxic
orally. The oral 1050 of manganese acetate for the rat
was 3.7 ga/kg (7) while daily oral doses of 0.5 to 6.0 ga/kg in
the rabbit produced decreased growth and bone development
(13). A small outbreak of an encephalitis-like disease,
with early symptoms of . lethargy and edema, was traced to
manganese in the drinking water in a village outside of
Tokyo; three persons died as result of poisoning by
well water contaminated by manganese derived from dry-
cell batteries buried nearby (13)- There are no limits set
on the amounts cf manganese domestic water supplies.
:.i c.
yi.lr .
0007-SWP-036879
0007-SWP-000113008
-
The normal dietary intake is-far higher than the amount that would be tolerated estheticaliy in drinking water (13).
Specific Paint Compounds. No toxicological information on the specific compounds of interest was readily available.
Oral Hazard in Paints. Because manganese com pounds are poorly absorbed and the amounts of such compounds used in paints are relatively small (2* or less), their use In paint probably orovideslow toxic hazard.
Mercury Compounds Phenyl Mercuric Acetate
0 - 0.5*
Mercury Cadmium Lithopone
0 - 15*
Phenyl Mercuric Oleate
0 - 0.5*
Mercury Soaps, other
0 - 0.=*
Mercury is a nenesssntial element for humans
and its toxicological history dates back to the earliest
=f medical writers. There is an extensive health litera
ture on mercury which recently has grown at an explosive
rate in response to the concerns of mercury contamination
in the environment. Bldstrup (69), StaJhl (70), Friberg
et al. (71), Friberg et al. (72) and Goldwater and Clark
son (73) represent Just a few of the recent reviews on
mercury toxicity.
Mercury is considered highly toxic to man. The
i'isfer ->#
0007--5WP-036880
0007-SWP-000113009
signs and symptoms are numerous and depend on the compound and the rate and the route of exposure. Acute severe ex posures may produce abdominal pain, vomiting, diarrhea, gingivitis, pneumonitis, renal damage, circulatory fail ure, and respiratory failure. Chronic excessive exposures may result in one or more of the three classical signs of gingivitis, tremor and emotional instability (10). Lethal doses in animals range from 16 to 500 mg/kg. Three to thirty gm of mercury have been fatal to man. The indus trial TLV.for alkyl mercurial compounds is 0.01 mg/cu. m. and for other mercury compounds, 0.05 mg/cu. m. (4).
The diet normally contains about 5 micrograms daily of mei-ury, most of which is- absorbed and excreted in the urine (26). The drinking water standards of the USPHS and the WHO do not include limits for mercury but the maximum permissible concentration of mercury or mer curic ions in drinking water in the USSR has been set at 0.005 mg/I. According to one investigator, adults may safely drink water containing about 4-12 mg of mercury (Inorganic) per day and a fatal dose of such water would te 75 co 300 mg/day (13).
Specific Paint Compounds. Oral LD50s for phenyl morcurlc acetate were reported as bo ng/kg for the nt and 70 mg/kg for tho mouse, ^unntitat.ivo toxicity data on the other mercury compounds were not readily found.
* -- - tusfcc.-
-
0007-SWP-036881
0007-SWP-000113010
Oral Hazard in Paints. The amount cf mercury to be used in paints is relatively small. However, sue to the highly toxic nature of mercury compounds, the possi bility of chronic exposures (months), and the possible increased susceptibility of young children, studies should be made to ensure safe levels of mercury used in paints.
- . *' a
Molybdenum Compounds
Lead Molybdate
0 - 15#
Zinc Molybdate
0 - 2ejf
Molybdenum is essential for certain plants and
animals. Toxieity data on humans is limited. Fairhall
(75) provides a summary of industrial exposures. More
recent reviews include those of Browning (6) and Stokinger
(22).
Molybdenum compounds are moderately toxic in
animals. Lethal doses for molybdenum compounds in animals
ranged from 100 to 500 mg/kg (7, 18, 22). Available in
formation concerning exposure to molybdenum compounds in
industry is insufficient to define a health hazard (10);
however, based on animal studies, the TLVs are sst at
5 ng/cu. m. for soluble molybdenum compounds and 10 mg/cu.
n. for insoluble compounds (4).
The body contains an estimated 5 mg.of Mo with
rest of the tissues containing C.l ppm or lesB. Bone,
liver, adrenal and kidney contain 1.5, 1*1. 0.6 and 0.4 ppm,
respectively (12). The diets reported by Tipton and Stewart
(24), contained 0.21 and .46 mg/day half of which was ex--"
:. A
"it... a\:
.V. -v.
F.n^eyr-'1.mmwmmmm :r.'
0007--SWP--036882
0007-SWP-000113011
52
ere ted in the feces and half in the urine. There are no limits set on the amount of molyb
denum in drinking water; however, molybdenum levels in feeds and domestic animals have been of concern (13). Five mg/day given to rats in their water caused increased mortality (13).
Specific Faint Compounds. No quantitative toxic ity data on these compounds were readily found.
Crsl Hazard in Paints. Insufficient information is available to estimate oral hazards for humans. Adequate studies will need to be performed to establish safe levels of these molybdenum compounds in paints.
Nickel Compounds
Cobalt Nickel Titanate
0 - 20#
Nickel Antimony Titanate
0 - 15#
Nickel Titanate
0 - 15#
There is a considerable literature on the health
effects of nickel-, Recent reviews include those cf
Sullivan (76), schroeder (77) and smith (48), as well as
3rownlng (6) and stokinger (22). Nickel is considered
r.onesseatial to man. Most of its toxicological concerns
in can have centered on the industrial use of nickel car
bonyl. The TIV for nickel carbonyl is 0.007 cg/cu. m., for
ether nickel compounds, 1.0 mg/cu. m. Nickel carbonyl
2>
**i;s*r
-rm
:v * S-,
-sv. ^
0007--SWP-036883
0007-SWP-000113012
:3
has been associated with an increased incidence cf cancer of the lung and ethmoid sinuses in men exposed to dust in nickel refining.
Nickel salts are considered to be highly toxic following access to the blood stream (22). Acute lethal doses in animals range from 5 to 1620 mg/kg (7, IS). Systemic poisoning by nickel salts in humans, however, is unknown (6). Allergic contact dermatitis Is not in frequent with skin exposures.
The body contains about 10 mg of nickel with most tissues containing approximately 0.1 ppm (12). Bone, skin, tongue, lung and adrenal contain 2.0, 0,44, 0.24, 0.27, and 0.28 ppm, respectively. The diet contains about 450 micro grams of nickel per day. In Tipton and Stewart's study (24), the diets contained 0.39 and 0.01 mg, the feces 0.22 ar.d 0.35 mg and the urine 0.11 mg each.
Orally, chronic administration of 2 mg of nickel per day in the drinking water of rats caused no harm; how ever, 10 to 20 mg/kg proved fatal to dogs (13). The USPHS Orinking Water Standards do not place a limit on nickel; however, it is reported that in Russia, the maximum per missible concentration is 1.0 mg/1 (13).
Specific Paint Compounds. Quantitative toxicolog ical data for these compounds were not readily found in the literature.
-upkKsiW.h
t
0007-SWP-036884
0007-SWP-000113013
- CJi _
Oral Hazard in Paint. Nickel and titanium (sec Titanium Compounds, below) compounds tend to have low 11.ixity with oral administration and probably offer low haz.tri risks in paints at the levels used. Antimony ar.J cobalt (see individual sections above) offer considerable poten tial hazard and these compounds should be evaluated experimentally to determine safe levels for paints.
Strontium Compounds
Strontium Chromate
0 - 25%
Except for radioactive strontium, strontium com-
pounds are considered ' elatlvely non-toxic to man, similar
to calcium compound'. (6, 10, 16, and 22). Since chromates
are toxic, strontium chromate is discussed under Chromium
Compounds, above
Tin Compounds Organic (specific compounds)
Tributy' Tin Oxide
0 - 1st
Tin Or/.nno Compounds
0-
'.he full toxicity of tin is observed almost
cxclusive.y from its organic compounds - the alkyl deriv
atives (>). Tin itself when taken by mouth is practically
i.nnocurut, but its dust cr fume when inhaled can cause a
lymptomless pneumoconiosis. The TLV for inorganic
'-in (except tin hydride and tin oxldo) is 2 mg/cu. is. (l).
The alkyl derivatives are highly toxic and one of them.
x . * ' irVi'r
0007-SWP-036885
0007-SWP-000113014
- 55 -
diethyl tin, has proved lethal to hur.ar. beings with symptoms of cerebral edema and gastrointestinal disturbanoe (6). Certain organo tin compounds, especially the tri-butyl series, are potent skin irritants. The TLV for organic tin compounds is 0.1 mg/cu. m. (k).
Numerous articles on the toxicity.of tributyl tin oxide and other alkyl tin .compounds (78-81) and other organo tin compounds are available in the Kettering Library. Zlsea and Paynter (7&f'found the acute oral LD50 for tri butyl tin oxide to hi W8 mg/kg (moderately toxic) for.rats. The oxide fed" tp^rats in the diet at levels of 32, 100 and
?' -320- ppm^yUppressed growth. Stoner et al. (79) and Barnes and Stoner'(3o) studied a series of tetra-, tri-, di- and mono-
/
alkyl tin compounds in rats, rabbits, guinea pigs, and fowls in both acute and chronic experiments. In rabbits, triethyl tin, the most active compound, produced muscular weakness, tremors and death. Other species and compounds showed vari ations of this 'pattern. The outstanding sign of chronic poisoning was muscular weakness.
Oral Hazard in Paint. Since organo tin compounds are moderately to highly toxic in animals and man, the use of these compounds in paints should be adequately studied to determine the levels which can be used safely.
' '... V.:: .
: .I..'
0007-SWP-036886
0007-SWP-000113015
Titanium Compounds Titanium Dioxide
0 - 50#
Titanates:
Antimony
0 - l=#
Nickel
0 - 15#
Tungsten
0 - 15#
.Cobalt Nickel
0-20#
Titanium is widely distributed in the earth's
crust where it is the eighth element in abundance. It
is not essential for plants or animals nor is it regarded
as toxic to animals or humans. The lack of toxicity of
titanium and its compounds by contact with skin and tissues
has been amply demonstrated by its use in the therapy of
skin disorders and as a surgical prosthesis (6).
The body contains an estimated 15 mg of titanium
with most of the tissues containing approximately 0.1 ppm
or less. Lung contains about 2.8 ppm and the bone 1, the
thyroid 0.4 9 and the skin 0.61 ppm. Titanium accumulates
ir. the lung with age, apparently due to polluted air.
Tipton and Stewart's studies (24) indicated 0.75 and 2.0
mg/day in the normal diet with 0.46 and 0.82 mg/day and 0.4 9 and 0.47 mg/day appearing in the feces and urine,
respectively. Oral administration cf large amounts of
titanium salts nixed with the diet is stated by Breaux not
only to have no toxic effect but actually to have an im
provement on health (6). There are no water drinking
limits set for titanium (13)-
0007--SWP-036887
0007-SWP-000113016
CtSwt
Specific Paint Tcnrcu.-.ds. Anoinor.y, cobo.lt, nickelj and tungsten are discussed in ether sections cf this survey. Titanium dioxide is used as a food additive (29) and is considered to be chemically inert in the body (82, 83, 6, 22). The TLV Tor titanium dioxide is set at 10 mg/cu. m.
Oral Hazard in ?air.t. Antimony, cobalt, nickel and tungsten possess significant toxicities of their own and should be considered on individual bases (see corre sponding sections in this survey for these metals). Titan ium dioxide is apparently inert and should pose no oral hazard in paint formulations.
Tungsten Compounds
Tungsten Titarate
0-
The literature cn the health effects of tungsten
is limited. stoklr.ger (22) and Browning (6) provide re
cent reviews on tungsten; however, the literature cited is not very recent.
Tungsten is nonessential to humans. Data on the body burden (12), dietary levels (26, 2i) or cn the absorp
tion of tungsten (31)were not readily found.
Data on the toxicity of tungsten compounds was
also limited (7, i). The following, taken from the
"Documentation cf Threshold limit Values1' (^), represents
i-fiCCX-
r.0>
0007-SWP-036888
0007-SWP-000113017
similar data presented in Browning and stckir.ger. Tine 1D50 cf sodium tungstate was between 14-0 to 160 mg/kg when injected subcutaneously into adult rats, making this compound moderately toxic. On oral administration to rats, the toxicity of this compound was greater than that of tungsten oxide while amnunium ;:aratur.gstate was the least toxic of the three'' Both radium tungstate and the oxide proved leth?.'- to rats or. a diet containing 0.556 as w. me ammonium salt was not lethal at this level but resulted in weight loss (4-5056). A similar weight loss was pro duced by dietary levels of 0.15? of the oxide and the sodium salt, tungsten powder when fed to weanling rats of both sexes at levels of 2, 5 and 10)6 of the diet resulted in a 15/6 reduction in body weight gain among the females but not the males.
long industrial experience has indicated no pneumoconiosis among workers exposed solely to w or its insoluble compounds. Dust chamber exposures of animals to v, tungsten dioxide and tungsten carbide produced only minor pulmonary changes. The T1V fcr soluble tungsten compounds is 1 mg/cu. m. and fcr insoluble compounds, 5 mg/cu. m.
Calcium, magnesium and iron salts of tungsten are insoluble; hence they are r.ot likely to occur in natural waters or to remain in solution in waste waters
0007-SWP-036889
0007-SWP-000113018
from industry. Therefore, there are r.o Limits set for tungsten in domestic water supplies (13).
Specific Paint Compounds. Toxioologlcal data on tungsten tltanate wax not readily found.
Oral HazatJ in Paint. Since tungsten compounds can he significantly toxic, adequate investigation should be made to establish the safety of using tungsten tltanate in paint ut the 15# level used in paints.
+
Zinc
Zinc Chromate
0 - 25#
Llthopone
0 - 50#
Zinc Metal
0 - 80#
Zinc Molybdate
0 - 20#
Zinc Napthenate
0 - 1#
Zinc Oxide
0 - 25#
Zinc Scaps (other than stearate)
0-1#
Zinc Stearate Zinc Sulfide (in Llthopone)
0-5# 0 - 1=#
Zinc is widely distributed in nature and is an
essential element to humans. There is a large literature
on the biological importance of zinc, primarily dealing
with zinc deficiency, metabolism and its role in metallo-
enzymes and lees so on the toxic effects of zinc compounds.
/
i-:
0007-SWP-036890
0007-SWP-000113019
Srowning (6) and stokinger (22) provide recent reviews of the literature on zinc toxicity.
Sine salts in high enough concentration are astringent and corrosive to the skin and irritating to the gastrointestinal tract (22). When ingested they act as emetics. Zn ion, however, is ordinarily too poorly absorbed to induce acute systemic intoxication. After large doses have been ingested, fatal collapse may occur as a result of serious damage to the buccal and enteric mucous membranes.
In industrial exposures, zinc chloride fumes have been found to cause damage to the mucous membranes of the nasopharynx and respiratory tract. The TLV of the cnlcride fume is set at 1 mg/cu. m. The TLV for zinc oxide is set at 5 rng/cu. m. due to its ability to induce netal fume fever (zinc chills, brass founder's augue, etc.).
The human body content of Zn is estimated to be about 230 mg. Most of the tissues contain from 3 to 30 ppm with high concentrations being found in bone, kidney, liver, muscle and prostate (12). Tipton and Stewart (2U) found normal dieta to average 11 and 18 mg/day with most of this.. ` excreted in -the feces (14 and 15 ag/day) and about 10ft excreted in the urine (1.3 and 1.2 mg/day).
Acute oral lethal dooon for zn compounds listed lr. Spector (2.2) and Christensen (7) range from i*0.5 to 2l6c mg/kg depending on the species and compound. There
i i1
\ 5SS
0007-SWP-036891
0007-SWP-000113020
- 5: -
have been numerous cases of food poisoning from one use of galvanized containers. Six hundred and sevenoy-five to 2230 rag/1 has been reported to have an emetic effect. Ingestion of 6 gm of zinc chloride has been fatal in nan.
The USPHS 1962 limit for zinc in dringing water is set at 5 mg/1 based on the oad taste (13). Community water supplies have been reported with 11.2, 17, 18.5 and 25.6 mg/Wl with no ill effects. Pigs drinking water ^ntalr.ing 100C mg/1 developed lameness and mainecrition. Rats, however, receiving 1000 mg/1 showed no effect. In these latter studies, rats receiving 5000 mg Z.n/1 had slight toxic effects and rats receiving 10,000 ag/1 experiences decreased growth rates and early death.
Specific Paint Compounds. lithooone, liberates hydrogen sulfide upon decomposition by moisture or acids (it, 15). Zir.c oxide is used as a trace mineral food supplement (29) and in skin ointments. It is considered relatively non-toxic orally. Freshly formed ZnO fumes can be tcxic to workers in industry (ii). Zir.c Nachthenate was reported by Rockhoid (U2) to have an oral ID50 greater than 5 gm/kg in rats, which makes it of low acute toxicity for rats. Zinc stearate, like zinc oxide, is used as a dietary and nutritional supplement but is toxic, producing pulmonary fibrosis, when inhaled. Zinc metal is considered by Sax (16) as not inherently toxic.
i-': r rV>v>;
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. r.`- - -r'-
- - . -i
0007-SWP-036892
0007-SWP-000113021
.nr-s'
Dral Hazard In ?alr.t. Most of the zinc compounds
of interest do not appear to offer much of an oral hazard
at the concentrations used in paints. Some of these com
pounds such as the chromate and possibly the molybdate,
may be toxic because of the accompanying anion and there
fore should be adequately evaluated to determine safe
levels. Although zinc metal is relatively inert biologi-
. .4
cally, the use of it at an 80# level in paint may lead to
?
the formation of the zinc chloride in the stomach which
could produce toxic effecte.
Zi ounds
Zirconium Naphthenate Zirconium Oxide
0-2# 0 - 1#
Zirconium Soaps
0-2#
Zirconium is not essential to nan. Browning
;5), Stokiriger (22) and Schroeder and Balassa (3U) pro
vide recent reviews of zirconium toxicity.
Zirconium is relatively non-toxic to animals
and there is no well authenticated evidence of toxic
effects from industrial exposure (5). However, there
have seen reports of pulmonary granulomas in zirconium
workers and granulomatous skin lesions from its use In
deodorant sticks (16). The TZ7 for zirconium compound# iB 5 mg/cu. m. (J4).
. -
1 Sl TZ\ " *V.\-
-*
0007-SWP-036893
0007-SWP-000113022
- 63 -
The body contains about 6 mg of c ire or. fur. In Tipton and Stewart's (2b) study, normal diets contained 0.b3 and 0.55 sg/day with 0.12 and 0.059 ag appearing in the feces and 0.00 and 0.13 rag appearing in the urine, providing for an average positive balance of 0.23 and 0.31 rag/day over the 3^7 day period. Retained zirconium is thought to accumulate In bone (6).
There are no limit* for zirconium in drinking water (13)- The toxicity of zr salts is very low by the oral routethe LD50 dose of the nitrate, chloride, sulfate, and acetate of Zr and sodium zirconyl sulfate for rats ranged from 2.5 to 10 g/kg (22). Intraperitoneally, the same Zr compounds were considerably more toxic acutely, (ICpO's from 0.175 to b.l g/kg). Hydrated Zr carbonate is physically inert in rats in oral doses up to 10 g/kg. Zr gluconate, however, was moderately toxic (1D50, 2^7 mg of ZR/kg) acutely by intraperitoneal administration in rats.
Animal studies reported by'Rothsteln (in 13) in dicated neither acute or chronie injury in response to Zr compounds given orally for as long as two years. Even 2051 Zr oxide in the diet was not harmful.
Specific ?aint Compounds. Zirconium oxide is relatively non-toxic orally. Toxieological data on the other Zr compounds was not readily found.
v'.vt:.
0007-SWP-036894
0007-SWP-000113023
- ll -
Oral Hazard In Paint. Zirconium compounds have low toxicity orally and probably represent little oral hazard when used in paints at levels of up to 2-i.
IV. Summary
This study was Intended to provide a preliminary survey of the literature pertaining to the potential hazards of ingesting paints containing metals. Over 100 specific compounds containing 25 different elements were reviewed for possible inclusion in this report.
As was expected, very little experimental data were available on the ingestion of paints pontaining metals, e.g., cnly three articles were found on leaded paints. Relative to the toxicity of specific compounds per se, again there were few data which could be used to predict ingestion hazards for acute or chronic exposures in children or adults.
Each section on the different compounds ir. part III contains a summary of hazards for that elemental class. As am overall summary, aluminum, calcium, magnesium, man ganese, strontium, titanium and zirconium compounds are generally of low oral toxicity. Except when toxic components 'such as antimony in antimony tisenate) are contained in the formulation., these compounds 6ht-uld be of low oral hazard.
I
i i !.
V
0007-SWP-036895
0007-SWP-000113024
- 65 -
Compounds of antimony, barium, cadmium, lead, lithium, and mercury are generally highly toxic and should be limited to low levels in paints. Compounds of boron, cobalt, chromium, copper, molybdenum, tungsten and zinc vary from slightly to highly toxic depending on the chemical form and therefore need to be evaluated on individual bases.
fable 6 presents a listing of most of the specific .^compounds, their ranges of concentrations used in paints,
and crude estimates of oral hazards in paints based on the findings of this survey.
fhe concern of the paint industry for potential hazards of the ingestion of paints involves both acute and chronic exposures of children to specific paint formu lations. Most of the known toxicity of the compounds considered in this report is based on animal experiments (acute, and chronic) and on human experiences (mostly acute intoxication) of exposures to compounds which might not be related closely enough chemically to the compounds of interest. Therefore, any conclusions based on this study should be adequately verified by animal and human experi ments with flakes from commercially formulated and applied paints (see recommendations below).
i;
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0007-SWP-036896
0007-SWP-000113025
CO -
Table 6. Preliminary Estimates of Oral Hazard rcr Specific Compounds in Paints.
v U.
Table legend: The ranges indicate the percentages '
of the compounds (..garafcfd ej. dry fii-Tj ujad-aw-Baints. The
predicted oral hazards are only crude estimates based on
toxicity data derived from this search of the literature.
r Hazard ratings are 0, 1, 2 and 5 for no, slight, moderate and high relative hazard, respectively. A dash in the
hazard column indicates insufficient data available to make
an estimate. An asterisk indicates that the estimate is
r.-1.;
based loosely on information about the general class of the compound. Note; Many compounds have several oxides depend
I.
ing on the valence states. The designation of "soap" refers
to salts of oleic, laurlc, palmitic, stearic and eruclc acids.
/V/ , T-i&ti
Coaoound
Range [$)
Oral Hazard
Aluminum Eviroxide
0- 5
Aluminum Metal
0- 5
Aluminum Oxide
0- 5
Aluminum Silicate
0m 5
Aluminum Stearate
0 - 10
Antimony Oxide
0 -10 .
Barium Meta Borate
0 - 15
Barium Soaps
0m 3
Barium Sulfate
0 - 30
Barium Sulfide (Llthopoae)
0 m 50
Boron Trifluoride
0- 1
Cadmium Sarium Soaps
0- 3
Cadmium Lithopone
0 - 15
Cadmium Selenide
0 - 15
Cadmium Selenide Pigments
0 - 25
Cadmium Soaps
. 0- 3
Cadmium Stearate
0- 3
Calcium Carbonate
0 m 70
Calcium Nanhthea&tes
0- 2
Calcium Oxide
0 m 15
0 0 0 o* . 0* 0-1 2* 2* 0
; ' ,,*,, , *, .
I . *. `
to O 1 :t
U) H
3*
3* l*
1*
2-3* 2 - 3*
0
0/ 0 ' . 'V
/; i ' rjS-
ff. V'l- . f ;* v '' a ** ' I .i
i>
1-
v 0007-SWP-036897
0007-SWP-000113026
Table 6. Continued
67 -
Calcium Soaps Chrcnium Oxide Cobalt Naphthenate Cobalt Nickel Titanate Cobalt Soaps Copper Metal Copper Naphthenate Copper Oxide Copper Phthalocyanine Copper Soaps Lead Carbonate Basic Lead Chromates teed- Chrome tea VI-- Lead Metal Lead Molybdate Lead Naphthenate Lead Oxides Lead Silicate Basic Lead Silico-Chromates Lead Soaps Lithopone Lithium Hydroxide Lithium Naphthenate Magnesium. Aluminum Silicate Magnesium Oxides Magnesium Silicate Manganese Li oxide Manganese Naphthenate Manganese Soaps Mercury Soaps Nickel Antimony Titanate Nickel Titanate Phenyl Mercuric Acetate Phenyl Mercuric Oleate
10 1
von
iOn o
0-2
0-15
0- 10-20 0-1 0-1 0-5 0-25 0- 5 0 .- 1 o - 60 0-25 0-25 0-25 0-15 0-3 0-50 0-15 0-25 0-3
0-1 0- 2
0-20 0-1
0-2 0T 2 0-1
0-0.5
0-15 0-15 0 - 0.5 0 - 0.5
v-'- .
0
1-3 0-1
2*
2*
2*
0-1 2*
-
0 3* 3* 3* 3* 3* 3* 3*': 3* 3*
0-1 2-3* 2-3*
0*
0 0 1-2 0-1 1-2 2-3 2* 2* 3* 3*
1 -' . . ..
*
*u
:;r: tv / ` . X
M:; .r
v. %Y*
T-Sli-
'-
0O07-SWP-O36898
0007-SWP-000113027
Title 6. Continued
Sodium Tetraborate Strontium Chromate Titanium Dioxide (commercial grades) Tributyl Tin Oxide Tin Organo-Compounds Tungsten Titanates Zinc Chromates Zinc Metal Zinc Molybdate Zinc I'aphthenate Zinc Oxide Zina Soaps Zinc Stearate Zinc SulXide (Lithopone) Zirconium Kaphthenate Zirconium Oxide Zirconium Soaps
0 - 15 0.- 25 ' 0 - 50
. o - s*
ft -
o - 15 o - 25
0 - 80 0 - 20
0- 1 0 - 25 0- 1 o- 5 0 - 50
0- 2
0- 1
0- 2
___
2*
0-1
3*
2* 2*
-
2* 2*
0-1 0-1 0-1 0-1 0-1
0 0
0
" i ..
` S?
m
v<;! .v;v<**.. .
yA* "t ' l' .
rAyf.'i-
T^.-I-V-/'.;-'
.....................
. . ...; ._
0007-SWP-036899
0007-SWP-000113028
69 -
V. Recommendations
3 e c emend a 11 on 1. The purpose of this survey was to examine super
ficially the literature on the potential hazards of in gesting paints containing metallic constituents. The survey did not yield much information on which to base standards for permissible levels of metals in paints. In this author's view, an exhaustive literature search on each of the specific compounds or elemental classes of compounds would not be especially productive either. However, before undertaking laboratory experiments to generate the required data, more detailed, but not ex haustive, literature searching should be carried out in order to give direction to the initial experiments. Auto mated literature searching techniques such as those pro vided by Medlars or Medline of the National Library of Medicine or by Chemical Abstracts could be used. Utilising the additional literature contained in the Kettering Library files would also provide considerably deeper coverage.
Recommendation 2. Man is his own best model and any conclusions
based on animal data should be, if at all possible, con firmed by human studies such as those cited for lead. 3efore human studies are undertaken, extensive studies using animals will need to be conducted in order to
rt'rrrr??-
~-T*" 0007-SWP--036900
0007-SWP-000113029
characterize the degree of toxic hazard, both acute and
chronic; to determine the mechanisms of toxicity and
early indicators of toxic effects; and to determine the
r degree of absorption, the distribution patterns and the rates of excretion. Only when safety seems assured should small quantities of the paint flake materials be
i_ I
given to children or adults to make certain that the types of metabolism and the degree cf absorption are similar to test animals
Uv
r --. -
It is beyond the scope of this study to detail
if
the types of experiments which should be carried out. However, in addition to the studies involving the health hazards of lead exposures (hg-6l;, the reader is referred to such
-->
K--1
documents as those of Lehman (85), Fitzhugh (86), Irwin
(87), and the National Academy of Science (88) for back
ground in toxicological testing.
R.ec emendation Z Studies used for predicting the hazards due to
metal-containing paints should involve the use of the metal-containing paint formulations themselves. Toxi cological Information on pure compounds or related metal compounds should not be considered a sufficient substitute for actual paint flake ingestion studies. Paint fillers, binders, modifiers, etc., nay increase the absorption of the metals concerned, or as is most likely, they may reduce the taocic hazards by reducing the solubility of the metals in intestinal Juices.
0007-SWP-036901
0007-SWP-000113030
Recommendation 4 Since there is a large number of compounds and
varieties of paint formulations, it is desirable to develop in vitro testing techniques for screening purposes. Crampton (89) and others describe a number of in vitro methods such as closed loops, inverted sacs, etc., which could be used. Solubility studies using synthetic intestinal Juices have been discussed with members of the National Paint and Coatings Association on previous occasions. Any in vitro studies should be validated for their ability to predict in vivo behavior.
:':; vr.^,
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0007-SWP-000113031
72
VI. References
1. Kimber, D. C., Gray, C. E., Stackpole, C. E., Leave1, y. A., Miller, F. M. (1966) "Anatomy and Physiology'1 15th ed. The Macmillan Company, New fork.
2. Wilson, T. H. (1962) "Intestlal Absorption" W. B. Saunders Co,, Philadelphia,
3* Skoryna, S. C., and Waldron-Edward, D. (1971) "Intestinal Absorption of Metal Ions, Trace Elements and Radionuclides" Pergamon Press, New York.
to. American Conference of Governmental Industrial Hygienists (1971) "Documentation of Threshold Limit Values for Substances In Workroom Air" Secretary-treasurer, ACGIHV P. 0, 3ox 1937> Cincinnati, Ohio ^5201.
5- Bowen, H. T., (1966) "Trace Elements in Biochemistry" Academic Press, London, New York.
6. Browning, Ethel (1969) "Toxicity of Industrial Metals" Appleton-Century-Crofts, New York,
7. Christensen, H. F. (1971) "Toxic Substances. Annual List" National Institute of Occupational Safety and Health, U. S. Dept, of H.E.W., Rockville, Md. 20852
8. Elkins, Hervey B. (1959) "The Chemistry of Industrial Toxicology" John Wiley and Sons Inc., New York.
9- Fairhall, L. T. (19^9) "Industrial Toxicology" Williams and Wilkins Co., Baltimore.
10. Gefafer, W. M. (1966) "Occupational Diseases" Public Health Service Publication No. 1097, U. S. Govt. Printing Office, Washington, D. C.
11. Gleason, M. N., Gosselin, R. E., Hodge, C. H., Smith, R. ?. "Clinical Toxicology of Commercial Products" Williams and Wilkins Co., Baltimore.
12. International Commission on Radiological Protection (1959) "Report of Committee IL Permissible Doee for Internal Radiation" Pergamon Press, New York.
Lviv
fer?
0007-SWP-036903
0007-SWP-000113032
- 73
13- McKee,. J. E., and Wolf, H. W. (1963) "Water Quality Criteria" State Water Quality control Board pub. No 3-A. Sacramento, California.
14. stecher, Paul g . (1968) "The Merck Index" (2th Ed.) Merck and Co., Inc., Rahway, New Jersey.
15. Patty, F. A. (1963) "Industrial Hygiene and Toxicology" Vol. II. Interscience Publishers, Division of John Wiley and Sons, New York.
16. Sax, Newton Irving (1963) "Dangerous Properties of Industrial Materials" Relnhold, New York.
17. Schroeder, H. A. (1970) "Metallic Micronutrients and Intermediary Metabolism (Report #3). Final progress report" U. S. Army Medical Research and Development Command, Washington D. C.
18. Spector, W. S. (1956) "Handbook of Toxicology" Vol. I. National Research Council, Saunders, Philadelphia.
19. lange, Norbert A. (1956) "Handbook of Chemistry" 10th ed. Me Graw-Hill Book Co., New York.
20. Kodgman, Charles (I949) "Handbook of Chemistry and Physics* Chemical Rubber Pub. Co., Cleveland, Ohio.
21. Stewart, C. P., and Stolman, A. (I960) "Toxicology Mechanisms and Analytical Methods" Academic Press, New York.
22. Stokinger, H. E. (1963) Chapter XXVI-. The metals (Excluding lead) pp. 787-1191* in Patty (15).
23. Tipton, I. H. et al. (1965) Trace elements in human tissue, part III, Subjects from Africa, the Near and Far East, and Europe. Health Physics 11:403-^51.
24. Tipton, I. H. and Stewart, F. L. (1969) Patterns of elementary excretions in long-term balance studies. Health Phys. 16:455. Note: Only the data from subjects C&D were used in the body of this survey.
25. Schroeder, H. A. (i960) Possible relationship between trace metals and chronic diseases. Chapter 6, pp. 59 in Seven, M. J. "Metal Binding la Medicine" J. B. Lipplncott, Philadelphia.
Sfc&l
'4?V '
0007-SWP-036904
0007-SWP-000113033
- 74 -
26. Schroeder, H. A. (1965) ?he biological trace elements
or peripatetics through the periodic table. J. Chron. Dis. 18:217-228.
27. Campbell, A. B., Cass, J. S., Cholak, J., Kehoe, H. (1957) Aluminum in the Environment of Man. A.M.A. Archives of Industrial Health 15(No.4-6):359-448.
23. Evenshtein, A. M. (1967) Toxicity of aluminum and its inorganic compounds. Hyg. St Sanitation 32:244-249.
29- Purla, T. E. (1968) "Handbook or Food Additives" Chemical Eubber Co., Cleveland, Ohio.
30. Woolrich, Paul F, (1972) The occurrence of trace metals in the environment. Presented at the Industrial Hygiene Conference, May 14-19, 1972, San Francisco, California
31. Altman, P. L., and Bittner, B. S. (1946) "Biology Data Book" Federation of American Societies for Experimental Biology.
32. Fairhall, L. T. (1947) "The Toxicology of Antimony". U. S. Public Health Service Publication Supplement No. 195.
33- Schroeder H. A. (1970) "Barium Air Quality Monograph #70-12". American Petroleum Institute, 1801 K Street, N.W., Washington, D. C., 20006.
34. Miner, Sydney (1969) "Preliminary Air Pollution Survey of Barium and its Compounds. A literature review". 0. S. National Air Pollution Control Administration. Publication No. APT 0-69-28, Raleigh, N. C.
35. Rumyantsev, G. I. (1967) Barium compounds. pp. 118-25 in Izrael'son 2. I. ed. Toxicology of Rare Metals Jerusalem, Israel Program from Scientific Translations, J erusalem.
36- Barnes, Abigail A. (no date) Annatated Bibliography of Barium. Laboratory of Industrial Medicine. Eastman Kodak Company, Rochester, N.Y.
37. Lee, Douglas H. K. (1972) "Metallic Contaminants and Human Health" Academic Press, New York.
:: ' . '
'
&
/i:\ 0007--SWP--036905
0007-SWP-000113034
- 75
38. Durocher, N. S. (1969) "Preliminary Air Pollution Survey of soron and Its compounds. A Literature Review". U. S. National Air Pollution Control Administration, Raleigh, N. C. Publication No. APT 0-69-31.
39. Fassett, David W. (1972) cadmium, Chapter 4, pp. 98117, in Lee (37).
40. Athanassladis, Y. C. (1969) "Air Pollution Aspects of Cadmium and its Compounds . Report by Litton Systems, Inc. Bathesda, Maryland for the National Air Pollution Control Administration, Consumer Protection and Environmental Health Service, Dept, of Health Education and Welfare. Contract No. (PH-22-68-25) APTD.
41. Friberg, L, Piscator, M. and Nordberg, G. (1971) "Cadmium in the Environment". Chemical Rubber Company, Cleveland, 0.
42. Rockhold, W. T. (1955) Toxicity of naphthmlc acids and their metal salts. Arch. Ind. Health 12:477-82
43. Scheinberg, Herbert, I.and Stemlieb, Irvin (I960) Copper metabolism. Pharmacol. Rev. 12:355*381.
45. Scheinberg, H. (1969) The essentlability and toxicity of copper in man. pp. 79-82 in "Trace Substances in Environmental Health" Proceedings of University of Missouri. 3rd Annual Conference, Columbia, Missouri, June 24-26, 1969.
46. Van Campen, D. R. (1971) Absorption of copper from the gastrointestinal tract, pp, 211-26, in SHoryna, S. C. and Waldron-Edward (3).
47. Sullivan, Ralph J. (1969) "Preliminary Air Pollution Survey of Chromium and its Compounds". U. S. Dept, of HEW Public Health Service, Consumer Protection and Environmental Health Service, National Air Pollu tion Control Adm., Raleigh, N. C. Prepared under contract No. P.H. 22-68-25.
48. Smith, R. G. (1972) Chapter 6. Five of potential lgnifieince. pp. 139-162 in Lee (37).
t.,,
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1
,
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ite ! iVrrW:
i
*&\ l*
0007-SWP--036906
0007-SWP-000113035
- 76 -
49. National Academy of sciences(i972) Lead. Airborne Lead In Perspective", Committee on Biologic Effects of Atmospheric pollutants, National Research Council, Washington, C. 3.
50. Hammond, P. B. (1969) Lead poisoning, an old problem with a new dimension. Chapter 4, cp, 115155- in Blood, Frank, R. "Essays in Toxicology", Academic Press, New fork.
51. Coyer, Robert and Chisolm, Julian (1972) Lead, Chapter 3* PP 57-95, in Lee (37).
52. Kehoe, Robert (1961) "The Metabolism of Lead in Man in Health and Disease. The Harben Lectures i960". Reprints from the Journal of Royal Institute of Public Health and Hygiene.
53. White, E. G. and Cotchin, E. (1968) Natural and experimental cases of poisoning of calves by flaking lead paint. Vet. J. 104: 75-91.
54. Gage, J. C. and Litchfield, M. H. (1968) The migration of lead from polymers in the rat gastro-intestinal tract. Fd. Cosmet. Toxicol. 6:329-338.
55. Gage, J. C. and Litchfield, M. H. (1969) The migration of lead from paint films in the rat gastro-intestinal tract. J. Oil Col. Chem. Assoc. 52: 236-243.
56. Federal Register, (1972) Fart 191 - Hazardous substances; Definitions and Procedural and Interpretative Regulations. Classification of Certain Lead-Containing Paints and Other Similar Surface-Coating Materials as Banned Hazardous Substances. Volume 37, number 49, pp. 52195272.
57. Statement by Dr. Merlin K. DuVal, Ass't Secretary for Health and Scientific Affairs, Department of h ew , before tne Subcommittee on Health, Committee on Labor and Public Welfare. United States Senate. March 10, 1972.
58. Levine, R. M., Technical Director, Dutch Boy Paints. Testimony before Senate Sub-committee on Lead Based Paint Poisoning. Legislations S. 3080 March 8, 1972.
i^
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1 r;v*.
t
0007--SWP-036907
0007-SWP-000113036
59. Statement by Robert A. Roland, Executive Vice President, National Paint and coatings Association. Before the Sub-committee on Health of the Senate Labor and Public Welfare Committee on Amendments to the Lead-Based Paint Poisoning Prevention Act. (S. 3080) March 9 1972.
60. American Academy of Pediatrics. "News Release, March 30 1971. A. A. P. Recommends Reducing Lead Contents of Paints" Department of public Information 1801 HInman Ave., Evanston, 111.
61. King, Barry (1971) Maximum dally intake of lead without excessive body lead-burden in children. Am. J. Dls, in Children 122:337-40.
62. schow, M. (1957) Biology and pharmacology of the lithium ion. Pharmacol. Rev. 9:17-49*
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64. Schroeder, H. A. (1970) "Manganese. Air Quality Monograph #70-17" American Petroleum Institute. 1801 K Street, N. V. Washington, D. C. 20006.
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