Document 7RE86pB55qGkjRZ7jN6Ry4Ojo
FILE NAME: ICI (ICI) DATE: 1955 Jan DOC#: ICI005 DOCUMENT DESCRIPTION: Article from Scientific Journal
>ys. J. A. Bonnell. d Urine Proleins in
181
G
198
206 <rkers. and J. C. Gilson .. 217
>f Rats. 228
233
237
Plant with a Report 240
mental Study of the
244
Law rence ..
249
262
M1LEY.......................... 263
279
290
ence to Mines Rescue
M. Jones
296
d its Absence when fydrocarbon Vapours.
304
309
Coal-mining Industry. 320
inai Handicap among 322
326 nlth and Disease in
330 335 337 341
7
'OL. 12 No. 1
JANUARY, 1955
BRITISH JOURNAL
Industrial medicine
EDITOR
_____(
RICHARD SCHILLING
ASSISTANT EDITORS
J. C. GILSON
L. G. NORMAN
EDITORIAL
J. M. Barnes Sir F rederic Bartlett Thomas Bedford G. R. Cameron C. M . F letcher M. W. Goldblatt A. Bradford H ill
COMMITTEE
T. G. F aulkner H udsoi D onald H unter R. E. L ane A. Mekleiohn J. N . Morris J. R. Squire Editor, British Medical Journal
/H?
CONTENTS
K/
pa g e
.esearch in Industrial H ealth in the Chemical Industry. M . W. Go l d b l a t t .......................... / y
Manganese Poisoning in M oroccan Miners. J. R odier . .
' ............................................... 21
Dermatoses in Jute Workers. John K innear, John Rogers, Owen A . F inn, and"
Alexander M air
................................................................................................................
Talcosis o f Unusually Rapid Development. G. P. A uvisatos, A . E. Pr /Irakis, ar:
B. Terzis . .
,.
. ......................... ...........................................................................
Injury to the. Respiratory Tract by Isocyanates Used in M aking Lacquers
A ke Swensson, Carl-Eric H olmquist, and Karl-David Lundgren ........................... 50
Dimethyl Sulphate Poisoning. T . R . Littler and R . B. M cConnell .
Vanadium Poisoning from G as Turbines. R . C. Browne - . ...........................
The Toxicity o f Ozone in the Presence o f O xides of Nitrogen. W. M . D iggle and J. C. Gage
The Construction o f Critical Orifices Working with Small Pressure Differences and Their Use in Controlling Airflow. H. A . D ruett ......................................... 65
M iscellanea: .
The Health Hazards o f the Senior Executive. A . R . Cooper . .
.............................
..
71
The Health of the Industrial Worker in Iraq. A. M ichael Critchley .......................... 73
Book Reviews - . ....................................................................
-7 6
Abstracts
......................................... ." .............................
; .......................... 78
sz X - 8
/***.
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Single N umber 12/6
Brit. J- industr. Med., 1955, 12, 1
. Merewether ORRIS V. Perry 'ND-CLARKE Stewart :nald Watson-Jones he Transactions of the Association
ion of original contributions in sections for book reviews and
Schilling, Nuffield Department ag, York Place, Manchester 13. ly to this Journal, and that they of the paper only, with double uction of x-ray illustrations is ographs and photomicrographs d graphs accompanying papers or stout, smooth, white paper, be lightly inserted in pencil, a took is referred to, the place year of publication must follow by a small letter (a, b, c) after ribution references are arranged ire given as follows : Author's talics, abbreviated according to abic numerals), and first page
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lutors. A limited number of i returning proofs. An estimate lical Association. Journal o f Industrial Medicine
Ivertisement Manager, British
: British Medical Association
RESEARCH IN INDUSTRIAL HEALTH IN THE CHEMICAL INDUSTRY *
BY
M. W. GOLDBLATT
From the Imperial Chemical Industries, Ltd., Industrial Hygiene Research Laboratories, Welwyn, Herts
The satisfaction I feel at the opportunity afforded me to add my homage to that of old colleagues who have preceded me in the commemoration of James Mackenzie and his work is of a special kind. Mackenzie was a man with a mission. He also had a vocation, and his life was rich in worth. If James .Mackenzie sought to bring what might be called " physical " light to the dark and sick lives of the industrial workers of his time, he brought much spiritual light also. To have enlisted the cooperation of some of the most notable and busy men in public health and medicine through his Industrial Health Education Society required qualities which, when they impinge on other men's minds, raise them to heights they would never wish to leave. These qualities of Mackenzie are those which every medical officer in industry requires.
The workers and staff of an industry are in a real sense the flock of the industrial doctor, and he should be as preoccupied about their physical and mental well-being as the parson is presumed to be about the spiritual life of his flock. His factory is his industrial health education society, but there the people to be taught are not only the workers but the employers also.
Thirty years ago, when James Mackenzie was founding his society, industrial medicine was in the stage of exhortation. The workman was suspicious of the " compo " doctor; the employer might employ a doctor to examine new entrants, for firstaid services, and in compensation cases. Many doctors thus appointed were not permitted to enter the factories at all. The health and well-being of a worker were then of consideration only as they might affect the employer's interests. Then, as now, the appointment of an industrial medical officer and what he was asked ro do lay with the employer.
* The M ackenzie Industrial H ealth Lecture delivered in M anchester on July 13, 1954, at the A nnual Provincial M eeting o f the A ssociation o f Industrial Medical Officers.
The coming of the second world war gave an impetus to industrial medicine in this country and in many others for which the workers may be thankful. Practitioners now visit factories, join in lectures and discussions, avail themselves of services provided byindustry in the factories, and exchange information with the industrial doctor. To-day the stage of exhortation is almost over.
James Mackenzie died in 1944, his society having been wound up at the beginning of the war, but he must have seen the movement towards more and more social realization of responsibility for the health of the nation in a sense more profound than it had ever been. My own satisfaction in paying my tribute to Mackenzie consists in the knowledge that after following with so many of my friends his path in the health education of the worker and his employer I was put in charge of the first industrial hygiene laboratories established by industry in this country, a tangible proof of the awakened realization among industrialists that industrial health is not a question of policy, but one of science, of conscience, and of civility.
M aximum Allowable Concentration o f Atmospheric
Contaminants in the Working Environment
For an industrial environment where harmful elements, compounds, or radiations are known to be actually or potentially present, it has become customary to prescribe an allowable concentration of dust, gas, fume, or vapour which must not be exceeded if an assurance is sought that men and women may work in that environment without harm. Perhaps more customary in the U.S.A. than in Britain, the term " maximum allowable concentra tion " (or variants of it) is becoming more familiar here also. It may be recalled that the conception was foreshadowed in this country by Thomas Legge some 45 years ago when he (and Duckering) gave 5 mg./lO cm. as the atmospheric concentration of
1
1
BRITISH JOURNAL OF INDUSTRIAL MEDICINE
lead in which engineers and chemists might work. By prescribing a maximum intake of lead, however, there is the implication that the harder a man works in the atmosphere containing lead, the shorter time he should be permitted to do so. Thus, merely to
! give a maximum permissible concentration without giving the severity of the work and the time engaged per day in such work, leaves one entirely in the dark as to what a man is absorbing. Lane (1949) and Kehoe (1949) substantially agree that at 1-5 to 2 mg.,/10 cm. " cases of disabling lead intoxication do not occur among men who work regularly in such workrooms, and cases of questionable or mild intoxications are rare
But Lane is not slavishly attached to this maximum allowable concentration and insists {loc. cit.) that the final test must be the effect on the workmen and, by implication, that mere analysis of the atmosphere is not enough. This statement is of great general significance and may be considered in conjunction with the views of Cook (1945), one of the distin guished workers in the field of maximum allowable concentrations. Cook says :
" It is to be emphasized that the intent in presenting the maximum allowable concentrations is to provide a handy yardstick to be used as guidance for the routine industrial control of these health hazards--not that compliance with the figures listed would guarantee protection against ill-health on the part of exposed workers, nor should the maintenance of the suggested concentrations be considered a substitute for medical control."
The use of the words " suggested concentration " is
I a sufficient indication that the conception is not precise.
Drinker and Cook (1949) in a later contribution emphasized, by implication, the imprecise nature of
these concentrations when they proposed a zoning
system, whereby, it was stated, the toxicity of an
industrial atmospheric contaminant could be quickly
assessed from the zone in which it falls. Six zones
were given as follows :--
500-2,000 p.p.m. 100- 500 p.p.m . 2 0 - 100 p.p.m .
2 - 20 p.p.m .
0-1- 2 p.p.m. 0 1 p.p.m.
acetone, petrol, ether methanol, toluene benzene, butanol, CC 14, C O H,,S, C S .,C o H .C l,, HC1, H C N Ci, C O C l2, A s H 3, (C H 3)2S O , radon, radioactive gases, etc.
They added : " The zoning scheme is for the classification of information and not for the justifi cation of excessive exposure or misguided legal interpretation."
Tables of maximum allowable concentrations must not evoke responses which are entirely unjustified and even dangerous. Classification in zones cannot fail to influence non-medical personnel by suggesting similar toxicities of substances, the effects of which are entirely different. For a doctor the association
of a hazard with a value or a zone of values is desirable to supplement the picture already in his mind of one or more features of the effects of the compounds. Non-medical personnel, however, are not as a rule in the same position. They are likely to use, and in fact do use, phrases such as " Arsine-- oh yes, about as toxic as bromine, isn't it ? " , or, " Tetrachloroethane--yes, yes, quite troublesome-- about as bad as hydrochloric acid " , because, in fact, their maximum allowable concentration values are identical, but, it must be noted, for very different reasons. Toxic hazards should, in general, be con sidered as identities with their own numerical data attached to them and their own effects attached to the numerical data.
Hazards may have to be classified into groups for convenience or as aids to memory, but this must be on the basis of similarity of toxic effects and not on the fortuitous closeness of maximum allowable concentrations.
The fact that both HC1 and HCN are in the same Drinker and Cook zone (2-20 p.p.m.) as aniline, acetic acid, and acrylonitrile tells us nothing of their effects or relative dangers. This is even more strongly illustrated in the highly dangerous zone OT-2 p.p.m.
D RINK ER AND COOK ZONES (EXPANDED)
01 p.p.m.
0-5 p.p.m .
1-0 p.p.m .
2-0 p.p.m .
H ydrogen selenide
Iodine Stibine
Arsine Bromine Cyanogen chloride
Ethyleneglycol dinitrate
Phosgene Phosphorus tri
chloride Ketene N itro g ly cerin e
Chlorine
H y drazoic acid
! p-C hlor aniline /3-Chior-nitrabenzene
Ethylene chlorohydrin H ydrogen fluoride
N .B .-- H C N 10 p.p.m .
In this table we have some of the most fulminating poisons met with in industry, and it would be in the highest degree undesirable to bracket them together in any sense whatever. For, whereas some of the limits set are those for immediate irritation, others are for delayed effects, and others again for cumu lative effects. Some appear because of their effects on the circulatory mechanics ; others because of the effects of their metabolic products on haemoglobin : still others because they cause a dangerous increase of the permeability of the pulmonary vessels ; and others because of disruptive effects on the envelope of the blood corpuscles.
So diverse a picture demands different degrees of urgency in persons whose responsibility it is to prevent concentrations above those prescribed. Moreover, the sense of urgency must clearly depend
IND USTI
also on the physical properi involved. Everyone concern scious of clinical urgency as urgency. The state of mind approach to environmental implied in the table of cone my laboratories (Table 1).
The actual values given m in the light of experience, emerged from a searching < and experimental records, gre likely. Still, some have ah example, in the case of \ ammonia, ethanol.
The first three columns inc by certain concentrations to dangerous symptoms ; the concentrations which are r two columns give concentrai limit to satisfactory condr. particular substance (design
The use of the words concentration " has been a 1 we hold that no concentra . are worse than others but z
Animal Exp
For industrial toxicologic;: to use animals in experime conditions. Most industr result of absorption by ini much more rarely by ingest most, acute and chronic, are Very little is known of the substance thus absorbed on
Factors of safety must i animal experiments are a depending upon m an's g: upon his greater activity dm can be made of the amount absorbed by men at work, environmental conditions i estimated by exposing anil estimate. Since the metab many times greater than th; fume concentrations at w' without adverse effects ma as equally inoffensive to mt concerned.
Cutaneous absorption great importance in the o and in the field use of toxi and herbicides.
Quantitative measureme neous absorption in anim
zDICIN E
INDUSTRIAL HEALTH IN THE CHEMICAL INDUSTRY
3
a value or a zone of values is ament the picture already in his ore features of the effects of the -medical personnel, however, are 3 same position. They are likeh lo use, phrases such as " Arsine--j [oxic as bromine, isn't it ? ", or, le--yes, yes, quite troublesome-- irochloric acid ", because, in fact; lowable concentration values are tust be noted, for very different zards should, in general, be con:s with their own numerical data ind their own effects attached to'
ve to be classified into groups for aids to memory, but this must be lilarity of toxic effects and not on seness of maximum allowable
th HC1 and HCN are in the samt c zone (2-20 p.p.m.) as aniline, ylonitrile tells us nothing of the)
dangers. This is even more i in the highly dangerous zone
D COOK ZONES (EXPANDED)
loride il
1 0 p.p.m.
Chlorine Hydrazoic
acid
2 0 p.p.m.
p-Chlor aniline p-Chior-nitrobenzene Ethylene chlorohvdrini Hydrogen fluoride ,
tri-
ie
M B.-- H C N 10 p.p.m .
iave some of the most fulminating n industry, and it would be in the esirable to bracket them together ever. For, whereas some of the 3 for immediate irritation, other1 acts, and others again for cumui ie appear because of their effect: aechanics ; others because of tht abolic products on haemoglobin ; ; they cause a dangerous increase i of the pulmonary vessels ; and disruptive effects on the envelope scles. ture demands different degrees ol is whose responsibility it is tc itions above those prescribed. 3e of urgency must clearly depend
also on the physical properties of the compounds involved. Everyone concerned must be made con scious of clinical urgency as well as of quantitative urgency. The state of mind which informs our own approach to environmental contaminants is that implied in the table of concentrations issued from my laboratories (Table 1).
The actual values given may require modification in the light of experience, but as each figure has emerged from a searching examination of clinical and experimental records, great modifications are not likely. Still, some have already been made ; for example, in the case of formaldehyde, acetone, ammonia, ethanol.
The first three columns indicate the times required by certain concentrations to produce very severe and dangerous symptoms ; the next two columns give concentrations which are not tolerated ; the last two columns give concentrations which set an upper limit to satisfactory conditions in respect of the particular substance (design concentrations).
The use of the words " maximum allowable concentration " has been avoided because at J.C.I. we hold that no concentration is allowable. Some are worse than others but all are bad.
Animal Experiment
For industrial toxicological purposes it is important to use animals in experiments simulating industrial conditions. Most industrial poisonings are the result of absorption by inhalation or by the skin, much more rarely by ingestion and by the eyes, and most, acute and chronic, are to mixtures of substances. Very little is known of the adjuvant effects of one substance thus absorbed on the toxic effects of others.
Factors of safety must be assumed if results of animal experiments are applied to man, factors depending upon man's greater susceptibility and upon his greater activity during work. If an estimate can be made of the amount of a toxic substance daily absorbed by men at work, the acceptability of the environmental conditions in which it occurs can be estimated by exposing animals to multiples of that estimate. Since the metabolism of small animals is many times greater than that of man, gas, vapour, or fume concentrations at which animals can subsist without adverse effects may be reasonably regarded as equally inoffensive to man as far as overt signs are concerned.
Cutaneous absorption of toxic materials is of great importance in the organic chemical industry and in the field use of toxic insecticides, fungicides, and herbicides.
Quantitative measurement of the degree of cuta neous absorption in animals is difficult, but com
parative measurements can be made with small animals by time measurements from the onset of symptoms to death, or to measurable biochemical effects after immersion of anatomical appendages, such as paws or tails, in known concentrations of the compounds studied. Many substances are more toxic cutaneously than orally.
The demonstration of dermatitic effects in animals which do not perspire in any sense similar to that seen in man is usually impossible although an urticaria-like reaction is sometimes seen. The phenomena of " contact dermatitis ", " sensitization dermatitis ", " allergic dermatitis ", or " eczema " are not reproducible in animals in experimental conditions. Complicated immunological demon strations that some chemical compounds can act in appropriate conditions as skin allergens are possible and such demonstrations have corresponded with the known properties of some organic compounds. Erythema and oedema should be measured according to determined scales (Draize, Woodard, and Calvery, 1944). The skin of laboratory animals does not respond as does human skin to the host of chemical substances which induce dermatitis of the acute variety so frequently seen in industrial conditions. In the case of cutaneous cancer the correspondence is closer. Thus, animal experiment is largely directed to finding whether given chemical com pounds induce direct irritant effects on the skin.
Physiological effects (on the circulation, respira tion, blood pigments, tissue and blood enzymes, renal and hepatic function, growth, fertility, central nervous system), in the sense of reversible effects, can be demonstrated by animal experiment with relative ease, and the results in some cases applied to the clinical control of hazards in the factory. Contact derm atitis in m an disappears on rem oval from exposure, but the effect is not truly reversible.
A fall in blood pressure, readily demonstrable in animals, is used by some American authorities as a clinical-statistical index of undue absorption of many toxic organic compounds. There are some explosive compounds (made and used both here and in other countries) which are rapidly hypotensive in working conditions: blood pressure determinations are essential for proper medical control in these cases, especially as pseudo-anginal attacks may follow long-term exposure. Many industrial compounds can be shown experimentally to depress the heart, dilate the peripheral vessels, or increase vascular permeability. Others, by cholinesterase inhibition, lead to parasympathetic stimulation and vagal effects on the heart. The question of the establishment of hypertension, perhaps of renal origin, in chronic lead absorption is not resolved.
4
BRITISH JOURNAL OF INDUSTRIAL MEDICINE
T able 1 TOXIC CONCENTRATIONS OF VARIOUS GASES, DUSTS, FUMES, A N D METALS IN THE ATMOSPHERE
(I.C .I. Industrial Products and H ealth R esearch C om m ittee)
INDUSTR
No.
Gas
0)
(2)
(3)
Concentrations Causing Severe
Concentrations which,
Concentrations in
Toxic Effects in Persons
if Exposure Continues
General Atmosphere
No.
Gas
Exposed for the Stated Times
for more than a Short
o f Plant Greater than
Time, may Lead to
those below
Symptoms of
Indicate U nsatisfactory
Illness
Conditions
(p.p.m. v/v)
(mg./cu.* metre 20C.)
Time of Exposure
(Min.)
(p.p.m. v/v)
(mg./cu.* metre
2 0 DC. )
(p.p.m . v/v)
(m g./cu*
m etre 20 C.)
64
Ethylene oxide
65
Ethyl formate
66
Ethylidene dichloride
1 Acetaldehyde
Acetic acid . .
3
Acetone
4
Acetone cyanohydrin
5
Acetonyl acetone . .
6
Acetophenone
7
Acetyl chloride
8
Acrolein
9
Acrylonitrile
.............................
10
Ally] alcohol
11
Allyl chloride
.............................
12
Ammonia . .
13
iso Amyl acetate . .
14
iso Amyl alcohol . .
15
Aniline
16
Arcton 6 (Freon 12)
(Difluorodichloromethane)
17
Arsine
18
Benzene (Benzol)
19
Benzine (as Hexane)
20
Benzyl acetate
1,000 200
4,000 40 300 80 10 20 100 40
200 500 1,000 400
80
50.000 10
1,500 3,000
100
1,830 500
9,650 140
1,424 400 33 46 220 96
636 355 5,410 1,464 312
251,700 32
4,800 10,728
616
60
500
915
200
3G6
60
40
100
20
50
60
800
1,930
400
965
1
20
70
10
35
60
150
712
75
350
60
40
200
20
100
1
2
6-6
1
3-3
1
8
18-6
11-6
1
50
110
20
44
1
20
48
5
12
--
--
60
100
318
50
159
1
200
142
100
71
60
300
1,623
100
541
60
200
732
100
366
60
20
78
10
39
60
20,000
100,680
10,000
50,340
1
I
3-2
7-fi
60
500
1,600
50
160
60
1,000
3^576
250
S94
60
50
313
15
94
67
Ethyl silicate
68
Formaldehyde
Freon 12 (Arcton 6)
69
Hydrazoic acid
70
Hydrogen chloride
71 l Hydrogen cyanide. .
72 I Hydrogen fluoride. .
73
Hydrogen selenide. .
74
Hydrogen sulphide
75
Iodine
76
Isophorone..
77
Ketene
78
Lauryl mercaptan . .
79
Mesityl oxide
80
Methacrolein
81
Methacrylic acid
82
Methallyl alcohol
S3 Methanol (Methyl alcohol)
84
Methyl acetate
85
Methyl acrylate
86
Methyl bromide
21
Benzyl chloride
22
Bromine
23
Butadiene
24
-Butanol (Butyl alcohol)
2-Butanone (Methyl ethyl ketone)
25
-Butyl acetate
26
-Butyl methacrylate
27
Carbon dioxide
28
Carbon disulphide..
29
Carbon m onoxide..
30
Carbon tetrachloride
T T p-Chloraniline
32
(mono) Chlorobenzene
33
2-Chlorobutadiene
34
Chlorine
35
p-Chloronitro benzene
36
Chloroform
37
(o & p ) (mono) Chlorotoluene
38
Cyanogen chloride
39
Cyclohexane
40
Cvclohexanol
20
3 8,u00
1,000 See No.
2,000 800
30,000
500 400 2,000
100
20 17,968 3.080 90 Methyl ethyl
9,650 4,724 54,930 1.600
464 I 12,800
1
1 60 60 ketone
60 60 60 60 60 60
8
44
1
400
1,872
60
100
368
1
10
29
1
10
66
1
2,000
9,960
60
400
2,106
60
5
13
2,000
6,990
60
1,000
4,160
60
10
1 5,000
100
500 400 10,000 150 100 500
4 200
50 4 4
500 200
2 800 400
50 6-6
11,230 308
2,412 2,362 18,310
480 116 3,200
22 936 184
12 26 2,490 1,053
5-2 2,796 1,664
5 0-5 2,500 50
200 200 5,000
10 50 50
75 25
1 1 50 75 (H 400
100
25 3-3
5,615 154
965 1,131 9,155
32 53 320
11 351
92 2 9 0-6
249 395
1 3 1,393
410
o / I Methyl iso-butyl ketone
88
Methyl a-chloracrylate
89
Methyl chloride
90
Methyl ethyl ketone (2-Butanc
91
Methyl iodide
92 1 Methyl cyclohexanone
93
Methylene chloride
94
Methyl formate
95
Methv! methacrvlate
96
Naphtha distillate (as Cumene
97
Nickel carbonyl
Qfi
Nitrobenzene
99 Nitroethane
100 Nitrous fumes (as N O . ) . .
101
Nitroglycerine
102
Nitromethane
103
1-Nitropropane
104
2-Nitropropane
I0S
o-Nitrotoluene
106
PerchloroethyJene (Tetrachk
107
(-Propiolactone
41
Cyclohexanone
42
Cyclohexylamine . .
43
-Dichlorobenzene
44
3 2 'Dichlorodiethyl ether.
45
(cis & irons) Dichloroethvlenc
46
Dicvclohexylamine
47
Diethyl carbonate
48
Di-isobutylene
! u
49
Di-isobutyl ketone
50
Dimethyl dioxane . .
51
Dimethyl sulphate. .
52
Dioxane
53
Ethanol (Ethvl alcohol)
54 1 Ether (diEthyl)
55
0-Eihoxyethyl methacrylate
56
Ethyl acetate
57
Ethyl acetoacetate. .
58
Ethyl benzoate
59
Ethyl bromide
60
Ethyl chloride
1,000 100 300 100
2,000 50
800 4,000
400 500
15 500 8,000 8,000 500 2,000 200 200 250 10,000
4,080 410
1,836 593
8,072 388
3,928 18,640
1,896 2,412
78 1,830 15,312 24.624 3,285 7,320 1,080 1,248 1,135 26,830
60
200
816
#4
300
40
164
20
S2
60
100
612
25
J 53
1
30
178
n
SU
60
1,000
4.036
500
2,013
60
40
302
20
151
60
400
1,964
200
932
60
2,000
9,320
1,000
4,000
60
200
948
100
474
60
300
1,447
200
90 5
1
10
52
26
60
300
1.098
200
* 32
60
2,000
3,828
1,000
1,914
60
2.000
6,156
500
1,539
60
200
1,314
100
657
60
800
2,928
400
1,464
60
100
540
50
270
60
100
624
50
312
60
100
454
50
227
60
5,000
13,415
2,000
5,366
108
uo-Propyl alcohol. .
109
Phosgene ..
110
Phosphorus trichloride
111
Stibine
112
Styrene
M3
Sulphur dioxide
114
Sulphur monochloride (S.CK
115
Sulphury] chloride. .
116 Tetrachlorethane . .
--
Tetrachloroethylene (Perch!
117
Thionyl chloride
118
Thiophosphoryl trichloride
119
Trichloroethvlene . .
120 Toluene (Toluol) . .
121
(o, m, & p) Toluidines
122
Vinyl chloride
123
Xylenes (Xylols)
124
Xylidines ..
61
Ethylene chlorhydrin
62
Ethylene dichloride
63
Ethylene glycol dinitrate . .
20
68
500
2,050
20
128
60 -
10
60
100
60
1
34 410
6-4
2 50
0~5
7 205
32
125
Antimony (dust or salts) (as
126
Arsenious oxide
127 1 Barium salts (as Ba)
become available.
1 mg./cu. metre = 4-37 x I 0 - 4 grains/cu. ft.
will be subject to review as more data
Continued
Concentrations shown in italic a become available.
EDICINE
ETALS IN THE ATMOSPHERE fee)
(2) ntrations which, osure Continues are than a Short
may Lead to 'mptoms o f
Illness
1
(3)
Concentrations in
General Atmosphere 8
o f Plant Greater than
those below
Indicate Unsatisfactory
Conditions
! (mg./cu.*
n.
metre
20C.)
{p.p.m . i V v)
{mg./cu.* metre
20 C.)
915
200
100
20
1,930
400
70
10
712
75
200
20
6-6
1
18-6
5
110
20
48
5
318
50
142
100
1,623
100
732
100
78
10
366 50
965 ! 35 1
356 i 100
3-3
116
44
51
159 3
73
541 366 li
39 S
100,680
3-2 1,600 3,576
313
10,000
0-5 50 250 15
50,340 l|
1-6 1: 160 Jl 894 I
94 l
50 6-6
11,230
308
5 05 2,500 50
25 I
3-3 ! 5,615 9
154 5
2,412 , 2,362
18,310 480 116
3,200
22 936 184
12 26 2,490 1,053
5-2 2,796 1,664
200 200 5,000
10 50 50
;
75 25
1 1 50 75 O' 400 100
965 J
fisi
9,155
32
58
320
11
351 92
816 164 612 178
4,036 302
1,964 9,320
948 1,447
75 20 25 15
500 20
200
1,000 100 200
300 82
153 80
2,018 151 082
4,000 474
005
52 1,098 3,828
6,156 1,314 2,928
540
624 454
13,415
5 200 1,000 500
100 400
50
50 50
2,000
20 732 1,914 1,539 057 1,464 270 312 ?27
5,366
34 410
6-4
2
50
205
0-5
3
" will be subject to review as more i
Continued
INDUSTRIAL HEALTH IN THE CHEMICAL INDUSTRY
Table 1 continued
No.
Gas
Concentrations Causing Severe Toxic Effects in Persons
Exposed for the Stated Times
(2) Concentrations, which, if Exposure Continues
for more than a Short
Time, may Lead to Symptoms of
Illness
(3) Concentrations in General Atmosphere o f Plant Greater than
those below Indicate Unsatisfactory
Conditions
(p.p.m. v/v)
(mg./cu.* metre
20C.)
Time of Exposure
(Min.)
(p.p.m v/v)
(mg./cu.* metre
20C.)
{p.p.m. v/v)
{meg. lu.*
metre 20 C.)
<a Ethylene oxide ,< Ethyl formate f(i Ethylidene dichloride h? Ethyl silicate o8 Formaldehyde _ ; Freon 12 (Arcton 6)
69 Hydrazoic acid ^0 Hydrogen chloride
250
450
60
1,000
3,080
60
400
1,648
60
400
3,464
60
100
120
1
See No. 16 Arcton 6.
10 i
18
60
50
75
1
100
180
10
400
1,232
200
200
824
50
200
1,732
100
30
36
10
4
7-2
1
20
30
10
IS 616 206 866
12
IS 15
71 Hydrogen cyanide. . 72 Hvdrogen fluoride. . ij Hvdrogen selenide. . 74 Hydrogen sulphide 75 Iodine 76 Isophorone.. 77 Ketene 78 Lauryl mercaptan . . 79 Mesityl oxide SO Methacrolein
M Methacrylic acid 82 Methallyl alcohol . . S3 Methanol (Methyl alcohol) 84 Methyl acetate 85 Methyl acrylate 86 Methyl bromide 87 Methyl iso-butyl ketone . , 88 Methyl a-chloracrylate 89 Methyl chloride 90 Methyl ethyl ketone (2-Butanone)
40 40
2
200
0-5 40
2
20 200
10
44
1
34
1
6
1
280
1
5-5
1
228
60
3-6
1
168
1
816
1
29
1
1,000
3,575
I
150
450
1
2.000
2,560
60
500
1,540
60
100
356
1
250
1,000
1
1,000
4,160
60
20
1
1,500
3,150
60
2,000 ! 5,990
60
20 10 0-5 50 0-2 20
1 10 100 5
400 100 500 200 50 50 400
2 500 500
22 8 5 1-5
70 2-2
114 1-8
84 408 15
1,430 300 640 616 178 200
1,664 10
1,050 1,498
10
01 20
0 1 10
0 5 5 50 i
200 50
200 100
25 20 200
1 100 200
11 17 0 3
28 11
57 0-9 42
204 5-8
715 150 256 308 89 80 832
5 210 599
91 Methyl iodide
92 Methyl cyclohexanone 93 Methylene chloride 94 Methyl formate 95 Methyl methacrylate
96 Naphtha distillate (as Cumene) . . 97 Nickel carbonvl 48 Nitrobenzene 99 Nitroethane
100 Nitrous fumes (as N O .) ..
40 300 2,000 1,000 3,000
300 4
200 800
100
236 1,400 7,072 2,495 12,480 1,500
28
1,020 2,496
190
1
20
118
60
150 I 700
60
1,000
3,536
10
59
75
350
500
1,768
60
400
998
200
409
60
2,000
8,320
1,000
4,160
60
150
750
1
7
14
60
40
204
50
250
1
7
1
5-1
60
500
1,560
200
624
1
30
57
10
19
101 Nitroglycerine 102 Nitromethane
103
I-Nitropropane
104 2-Nitropropane
105 o-Nitrotoluene
106 Perchloroethylene (Tetrachloroethylene)
307
3-PropioIactone
108 1 /so-Propyl alcohol. . 109 Phosgene ..
no
Phosphorus trichloride
in
Stibine . . . .
112 Styrene
113 Sulphur dioxide 114 Sulphur monochloride (S-CL) . 115 Suiphuryl chloride..
116 Tetrachlorethane . .
-- Tetrachloroethylene (Perchloroethylene) 117 Thionyl chloride
118 Thiophosphoryl trichloride 119 Trichloroethylene .. 120 Toluene (Toluol) ..
20
189
60
800
2,028
60
400
1,480
60
400
1.480
60
200
1,140
60
1,000
6,905
60
100
300
I
2,000
4,995
60
5
21
1
2
12
1
0-5 1,000
200 20 10 50
See No. 106 20 10
2,000 1,000
2-5
1
4,330
60
520
1
112
1
56
1
350
60
Perchloroethylene.
100
I
70
1
10,940
60
3,830
60
1 500 200 200
40 400
20 800
1 1
0-2 200
20 10 4 20
10 4 800 300
9-4 1,268
740 740 228 2,762
60 1,998
4-2 5-8
I 866
52 56 22 140
50 28 4,376 1,149
0-5 200 100 100
1 200
10 400
0-5 05
0-1 100
10 5 1
10
5 1 400 100
4-7 507 370 370
57 1,381
30 999
2 1 2 9
0-5 433
26 28
5'6 70
25 7
2,188 383
121 (o, m, & p) Toluidines 122 Vinyl chloride 123 Xylenes (Xylols) .. 124 Xylidines
40
176
60
10
44
3,000
7,800
60
1,500
3,900
1,000
4,410
60
300
1,323
40
200
60
10 1 50
5
22
500
1,300
100
441
5
25
Dusts. Fumes, and Metals
125 Antimony (dust or salts) (as Sb). .
_
_
_
0-5
126 Arsenious oxide
--
--
--
0-5
127 Barium salts (as Ba)
-
--
-
--
--
--
0-5
Concentrations shown in italic are tentative and are issued as a guide. Figures in all columns will be subject to review as more data become available.
* 1 mg./cu. metre = 4-37 x 10" 4 grains/cu. ft.
Continued
6
Table 1 continued
BRITISH JOURNAL OF INDUSTRIAL MEDICINE
I
No.
Gas
. 0)
Concentrations Causing Severe T oxic Effects in Persons
Exposed for the Stated Times
( 2) C oncentrations which, if E xposure Continues for m ore than a Short
Symptom s of Illness
(3) Concentrations in Generai Atmosphere
o f Plant Greater than
those below Indicate U nsatisfactory
Conditions
128
Benzidine
129
Cadm ium . .
130
C hlorinated diphenyl
131
Chlorinated naphthalenes
132
C h ro m a tes (as C rO a)
133
D initrocresol (and salts) ..
134
D initrophenol (and sa lts)..
135
D initroresorcinol ..
136
D initrotoluene
137
" Dowthern A " ..
138
Lead (and salts) ..
139
M ercurv
140
a-N aphthylam ine ..
*
141
-N aphthylam ine
142
" Parathion "
143 1 P e n ta c h lo rp h e n o l ..
144
/j-Phenylene diam ine
145
Phosphorus pentachloride
146
Potassium perm anganate..
147
Sulphuric acid
148
Sodium cyanide
149
Tetrvl
150
T .N .T .........................................
151
Zinc oxide . .
(p.p.m . v/v)
__ --
--
_ -- _ -- -- -- -- -- --.
"
-- --- -- -- -- -- -- -- .--
--
--
(m g./cu.* m e tre 20C.)
_
__ ,,
_
-- .--. -- -- .-- .--. -- --
--
-- -- -- -- -- --
--
-- --
--
-
Time of Exposure
(M in.)
__ --
--
_
-- -- -- .--. -- -- -- --
--
-- -- -- -- --
--
_--
--
--
-
(p.p.m . v/v)
__ -- --
__ -- -- -- -- -- -- -- -- --
-- -- -- -- -- -- -- -- -- --
--
(m g ./cu .* m etre 20C.)
__ -- : --
-- -- -- -- -- -- -- -- -- --
-- -- _ -- -- -- -- -- -- --
-
(p.p .m . v/v) __
-- __ -- __ -- -- .--
~ -- -- -- ---
----
--
--
i --
(m g./cu.* m etre 20~C.)
0-015 0-1 1
1 0-1 0-5 1 1 1- ti 0 15 0-2 0-01
0-01 1 0-5 0-.1 1 5 1 1-5 2
10
C o n cen tratio n s show n in italic are tentative and are issued as a guide. Figures in all colum ns will be subject to review as m o re data becom e available.
*1 m g ./cu . m e tre = 4-37 X lO " 11g ra in s/c u . ft.
Changes in respiration and the respiratory system are usually secondary to irritation of the respiratory tract, to changes in blood pigment, to central depres sion, and to direct damage of the alveolar network. Less direct effects are produced by cholinesterase inhibitors, which lead to powerful parasympathetic stimulation, and by inhibitors of oxidative enzymes. The asthma-like attacks induced by some aromatic diamines and di-isocyanates are reversible.
It is unusual for the lungs to be the seat of trans form ation of compounds. But in the case of ethylene oxide, which has a wide application in the present-day chemical industry and in the fumigation of food, combination with water in the lung can yield toxic glycols which may easily have long-term effects.
Delayed effects on the lung itself (oedema, haemorrhage, emphysema) can be foreseen by animal experiment. Recent investigation in my laboratories of the notorious " nitrous fumes " , which have been responsible for many deaths from pulmonary oedema, shows that the potent agent is N o0 5 and that N 20 4 is much less toxic as is also nitric acid vapour (Diggle and Gage, 1954).
Any toxic dust is injurious to the lungs although the pneumoconioses, and in particular silicosis, are
our most serious and extensive industrial pulmonary diseases.
Fig. 1 shows a section of a lung of a rat which, with a group of other rats, was exposed for eight hours a day for many months to an atmosphere of 2 mg./cm. K 2C r 0 4 as a very fine dust. The animals were well enough :there was a period of coughing and harsh breathing, but nothing serious. They lived on in quietude and sustained the chromate with bored fortitude but the lung shows large and small areas of exsanguinated alveoli crammed with loaded histiocytes in various stages of degeneration. Functionally these areas are out of action. The cell debris in the alveoli contributes further to loss of function until disposed of. Dilated respiratory bron chioles and some emphysema, due partly to the injurious effect of the chromate on the alveolar septa, and partly as compensation to the loaded alveoli, are also seen.
Fig. 2 is a high-power picture of a portion of a guinea-pig's lung after exposure for months to a very high concentration of lead acetate (40-50 mg./cm.). The origin of the dust cells from the alveolar septal cells is clearly seen, but m ono cytic cells undergoing hypertrophy from the capillary blood appear also to be passing into the alveoli.
F ig. 2.-- G uinea-pig lung tio n o f fine lead a< m ononuclear phagoc alveolar walls. A ct b o th in the wall and alveoli and coarse gra rial in the phagocytes.
ICINE
*1
tions which, e Continues han a Short ay Lead to
toms of ness
(3) Concentrations in General Atmosphere o f Plant Greater than
those below Indicate Unsatisfactory
Conditions
(mg./cu.* metre 20C.)
[p.p.m v/v)
[mg./cu.* metre 20'- C.)
0-015
-
Jo
0-01
0-01
*
will be subject to review as more data
xtensive industrial pulmonary
on of a lung of a rat which, r rats, was exposed for months to an atmosphere of a very fine dust. The 2 was a period of coughing and xhing serious. They lived on ned the chromate with bored shows large and small areas eoli crammed with loaded is stages of degeneration, is are out of action. The cell ontributes further to loss of of. Dilated respiratory bronphysema, due partly to the iromate on the alveolar septa, sation to the loaded alveoli,
;er picture of a portion of a exposure for months to a
on of lead acetate (40-50 of the dust cells from the is clearly seen, but monoypertrophy from the capillary be passing into the alveoli.
FlG. 2.-- Guinea-pig lung after chronic inhala tion of fine lead acetate dust--origin of mononuclear phagocytes from blood and alveolar walls. Active phagocytosis seen both in the wall and in the lumen of the alveoli and coarse granular pigmented mate rial in the phagocytes, x 300.
Fig. 1.--Rat lung after chronic exposure to fine potassium chromate dust ; many areas of exsanguinated, functionless alveoli filled with histiocytic phagocytes and many ruptured alveoli, x 100.
Fig. 2a.--Phagocytosis of blood phagocytes by macrophages deriving from septal cells ; details of coarse pigment granules in guineapig lung. X 1200.
.*.H 1 * !uiVwf..,'
IN DUSTfi
F ig. 3.-- R abbit lung showing chronic inhalation o f fine lead acetate dust. Three areas o f same lung showing different stages in development and death o f lung phagocytes ; small alveolus cram m ed with dead and dying phagocytes swollen w ith absorbed particles ; n o te multinuclear m acrophage. 560.
These cells are later engulfed by the macrophages developed from the septal cells after having acted as dust cells themselves. The macrophages are seen to contain dark pigmented granules and nuclei in various stages of degeneration (Fig. 2a). In Fig. 2a the extent of phagocytic activity is striking. In Fig. 3 we see the progressive changes from the well stained cell in the alveolar wall to the dead dust cells in the alveolar spaces.
The effectiveness of the lung barrier to a toxic dust must depend upon the availability of phagocytes to act as a brake on absorption. At so high a concen tration as that used in these experiments blood cells evidently enter as an additional defence. The barrier
to dusts presented by the lung is paid for in the case of toxic dusts by a denudation of the precursors of the so-called dust cells (/.e. modified septal cells) and in oxygen capacity by the occupation of alveolar spaces by highly charged cells and cell debris when the toxic material is discharged. The formation of giant multinucleate cells also occurs in the chronic inhalation of toxic dust (Fig. 3). In a universe of dust processes of this kind are inevitable but it is our business to combat industrial dust with other weapons than our lungs.
Changes in blood pigments are mainly found in industry among those exposed to carbon monoxide, various aromatic nitro- and amino-compounds, and
metallic elements which inter formation. These effects cam with equal ease in all species
The deliberate induction of
in the treatment of cyanide p importance, and recovery in been obtained by Lloyd Potti depends upon the intraveno nitrite which, by forming ms the circulating cyanide to rea; toxic cyanmethaemoglobin a: injection of sodium thiosulr the formation of thiocyanaii liberated cyanide.
Renal and hepatic functi many chemical agents ; an industrial metallic poisons, o chlorinated aliphatic hydroci vatives of glycols. Reverse endangered for the change-c structural breakdown is po peculiar position of trichlc commonly used solvents, 1' subtle must be the mechani? low toxicity, which is perhr metabolism to the non-to? (Taylor, 1936 ; Powell, 194:
For certain metabolic a carcinogenicity the use of isc and wider significance. A >. one carbon C14 has rece: members of my departmer Amersham (Henson, 1953 Somerville, 1953). We ha: establish important metabol retention of compounds ca> in the body (Henson, Some Goldblatt, 1954). The detc toxic compounds in cells histological sections is alrea
The ultimate fate of mo< industrial conditions is uni known about some of the fi: chemical substances are dis we are very rarely able to str or even extraordinary chen ways in which complex sui the body in large part " difficulties and apprehens using labelled compounds a in obtaining almost complei and output of substances c< and in discovering how lonj derivatives are retained in is possible to track them tl
B
g showing different stages in lien with absorbed particles ; note
the lung is paid for in the cast ienudation of the precursors of !s (/.<?. modified septal cells) and by the occupation of alveolar rged cells and cell debris when discharged. The formation ol ;ells also occurs in the chronic :ust (Fig. 3). In a universe of kind are inevitable but it is our
industrial dust with other ngs. pigments are mainly found in a exposed to carbon monoxide, o- and amino-compounds, and
INDUSTRIAL HEALTH IN THE CHEMICAL INDUSTRY
9
metallic elements which interfere with haemoglobin formation. These effects cannot all be demonstrated
with equal ease in all species of laboratory animals. The deliberate induction of methaemoglobinaemia
in the treatment of cyanide poisoning is of practical importance, and recovery in very severe cases has
been obtained by Lloyd Potter (1950). The method depends upon the intravenous injection of sodium nitrite which, by forming methaemoglobin, permits the circulating cyanide to react to form the much less toxic cyanmethaemoglobin and upon the intravenous injection of sodium thiosulphate which accelerates tire formation of thiocyanate from the now slowly liberated cyanide.
Renal and hepatic function can be affected by many chemical agents ; among these are certain industrial metallic poisons, organic solvents, notably chlorinated aliphatic hydrocarbons, explosives, deri vatives of glycols. Reversibility in these cases is endangered for the change-over from dysfunction to structural breakdown is poised precariously. The peculiar position of trichloroethylene among the commonly used solvents, however, indicates how subtle must be the mechanism which determines its low toxicity, which is perhaps related to its ready metabolism to the non-toxic trichloroacetic acid (Taylor, 1936 ; Powell, 1945).
For certain metabolic aspects of toxicity and carcinogenicity the use of isotopes is assuming wider and wider significance. A bladder carcinogen with one carbon C14 has recently been prepared by members of my department in collaboration with Amersham (Henson, 1953 ; Catch, Huggill, and Somerville, 1953). We have already been able to establish important metabolic pathways and the long retention of compounds carrying the labelled atom in the body (Henson, Somerville, Farquharson, and Goldblatt, 1954). The detection of the location of toxic compounds in cells by autoradioactivity in histological sections is already a developing method.
The ultimate fate of most materials absorbed in industrial conditions is unknown. A great deal is known about some of the final forms in which many chemical substances are disposed of in animals, but we are very rarely able to strike a balance by ordinary or even extraordinary chemical means. The subtle ways in which complex substances introduced into the body in large part " disappear " raise many difficulties and apprehensions. Nevertheless, by using labelled compounds a new era has been opened in obtaining almost complete balance between intake and output of substances containing isotopic atoms, and in discovering how long such substances or their derivatives are retained in the body. In addition it is possible to track them through the various routes
they can take in the body and, if retained for long periods, to learn where they are deposited.
Industrial metabolic poisons interfering with phosphorylating processes are dinitroorthocresol (D.N.O.C.), dinitrophenol (D.N.P.), and pentachlorphenol, the former two being responsible for both clinical and industrial deaths, and the latter for recent industrial deaths. Dinitro aromatic com pounds require careful study as some may induce cataract. Indirect metabolic effects may arise from interference with normal thyroid function as in the case of some alkyl-nitro-amino derivatives of phenol.
The haematopoietic system is one of the first examined in the case of most industrial chemical hazards with chronic effects. Blood counts are some times undertaken on workers in many diffrent branches of the chemical industry, especially where hydrocarbon and chlorinated hydrocarbon solvents, explosives, some metals, radioactive materials, and many other materials are made or used. Animal experiment often gives the appropriate lead as to the nature of the attack on the blood-forming organs or on the blood itself, although there are difficulties from the much greater variability of the blood picture in animals than in man. Reversibility of effects on the blood depends upon removal of the noxa and on the functional recovery of the bone marrow.
Clinical and Experimental Aspects o f Lead
Intoxication
Much has been done to elucidate the clinical picture and pathological processes of lead intoxi cation and poisoning. As the result of 12 years' experience of men in a factory where lead acetate, lead pigments, and paints were manufactured certain clinical and elementary propositions have been formulated. The first is that the control of the health of workers exposed to any lead hazard is easy and effective by routine determination of (a) haemoglobin, and (b) stipple and polychromatic red cells. More complex methods are required in certain of the more highly dangerous lead hazards, e.g., volatile organic lead compounds.
The expertise to do this is minimal, and a junior boy or girl can be trained to do it and even interpret the findings in a short time. If the conventional method by transmitted light be used, then it should be realized that the polychromatic cell is a stipple cell with the stipples very closely set, and they should be counted together, and can readily be confirmed by dark-ground examination (Figs. 4 and 5).
Haemoglobin determination alone is not sufficient, for many patients are found with 100 to 90% haemo globin who may be presumed to be absorbing lead from the high (stipple and polychrome) counts. Nor
B
10
BRITISH JOURNAL OF INDUSTRIAL MEDICINE
INDUSTRI
F ig , 4.--R abbit blood stained with alkaline methylene blue and ph o to graphed by transm itted light showing various-sized basophilic (polychrom atic) cells due to chronic lead exposure.
F ig . 5.-- R a b b it blood stained with alkaline m ethylene b lue and p h o to g ra p h ed by d a rk ground illum ination show ing ease oi recognizing stipples (golden granules) and two polychromatic cells ; the p o lychrom atic cells are m anifestly very1 finely stippled cells.
is the stipple and polychromatic count sufficient, for a relatively low count is frequently found with a very low haemoglobin (Fig. 6).
The second proposition is that it is not difficult to prevent the notification of cases of lead poisoning by removing men from exposure at a critical moment and giving them other work. This is, in fact, what happens in most factories with a hazard from lead.
Since in most cases rapid recovery is the rule, the statistics of lead intoxication can be kept low, and the national returns become valueless as far as a national industrial picture of lead absorption is' concerned. Moreover, men kept on at work in spite of evidence of lead intoxication do not develop a proper respect for lead and hence develop recurrent attacks of lead poisoning (see also Fullerton, 1952) (Table 2). As a rule (this is my third proposition) no man at work makes as good or as quick a recovery from lead intoxication as he does at home or in hos pital (Table 3), so the importunities of men to be kept at work in spite of evident lead intoxication should be resisted and they should not be allowed to return to work until the normal blood picture is re-established. The recent introduction of chelating agents may
expedite recovery and return to work (Foreman, Hardy, Shipman, and Belknap, 1953).
Kehoe (1951) has emphasized that the usual forms of lead intoxication are self-limited, of relatively short duration, and that there is complete recover' when the exposure has been terminated, and that no irreversible damage to the blood-forming tissues is associated with plumbism. The cases to which this statement would not apply are the now exceedingly rare encephalopathies and muscle palsies.
Fig. 7 shows the kind of picture one would wish to avoid, that of a man who took five years to recover his haemoglobin although removed from contact with lead (see also Fullerton, 1952).
Fig. 8 shows the data on a case of some interest. Three months of work on lead were followed by a fairly acute episode from which the patient was allowed to recover while still at the factory doing odd jobs not involving contact with lead. In spite of a very big drop in the number of stipples and polychrome cells, the haemoglobin level recovered poorly. A subsequent period on work with lead again led to an episode which was certified. Certi fied as fit to work after 21 days, the patient was again
iiG . 6.--R elation between haem oglol in w orkers exposed to a lead c exam ined show n with H b valu-
Ceni
Year JUJti IM 7
J9JS
No. Name 1
1 F.G. t , W.P. 3 G .F.K . 4 J.S.
5 S.F. 6 K.A.M . 7 AAV. 8 P.N. 1
9 T.H.
m s 10 11
-i
E.M . F.H.W .
Time Lost
8 davs 10 davs 2 mths.
26 davs 15 davs 16 days 2 mths.
6 days
13 davs 18 days
28 days 1 1 mth. i 21 days
(All cases 6
OICINE
INDUSTRIAL HEALTH IN THE CHEMICAL INDUSTRY
11
Stained w ith alkaline m ethylene blue and ark g ro u n d illu m ination show ing ease oi (golden granules) and two polychromatic o m atic cells are m anifestly very rinelj
nd return to work (Foreman, d Belknap, 1953). emphasized that the usual forms i are self-limited, of relatively that there is complete recovery as been terminated, and that no to the blood-forming tissues is ibism. The cases to which this
apply are the now exceedingly :s and muscle palsies, ind of picture one would wishin who took five years to recover though removed from contact ullerton, 1952). lata on a case of some interest, irk on lead were followed by a
from which the patient was while still at the factory doing ng contact with lead. In spite in the number of stipples ana e haemoglobin level recovered jn t period on work with lead jde which was certified. Certi:r 21 days, the patient was again
5
10
15
20
lOOO's Stipple+"Polychromz"cells
i v J . 6 --Relation between haem oglobin and stipple-polychrom e counts in workers exposed to a lead dust hazard. N um bers o f bloods examined shown with H b values. (See text).
maintained-in the factory on . work involving no contact with lead till the haemoglobin was about 85%. A period on lead again threatened an episode, and subsequently a change to permanent work else where led to a slow and unsatisfactory recovery to almost 90% haemoglobin in about two years.
Finally, it is important to remember that there are men who are remarkably reactive to even small amounts of lead. This is seen well in Fig. 9 which shows the blood findings in a worker who reacted at once when given work on a lead process, showed great falls in haemoglobin without a simultaneous rise in stipples, and who oscillated violently even when on work not involving a lead hazard. Lane (loc. cit.) and others have described cases of hyper sensitivity and referred to evidence of family susceptibility to lead. A full study of such cases would be of considerable interest, irhe influence of alcohol must not be forgotten.
My fourth proposition is that the changes in the peripheral blood in lead intoxication are due to changes in the bone marrow.
The stippled red cell derives from stipple normo blasts in the marrow, both of which may be seen in the circulating blood (Figs. 10 and 11). The stipples of a normoblast in the bone marrow are seen as a corona round the nucleus for mitosis occurs in the stippled normoblast apparently normally.
There are far more stipple cells in the bone marrow per million erythrocytes than in the circulating blood during lead intoxication. Pirrie (1952), using guineapigs, found as many as 55% of haemoglobinating normoblasts in the marrow showing basophil stippling when only 2-5% of red blood cells were
Table 2
LOST TIM E OF TW O GROUPS
Year No.i N am e
1936 193?
ms mo
! 1 F.G. 2 w .p. 3 G .F.K . 4 J.S.
5 S.F. 6 K.A.M . 7 A.W, 8 P.N.
9 T.H.
10 |E .M . 11 F .H .W .
T im e Lost
8 days 10 days 2 mths.
26 days 15 days 16 days 2 mths.
6 days
13 days 18 days
28 days 1 nth. 21 days
Year mo
N o.| !
12 13
Name
W .C . A .H.T.
1941 --
--
1943 20 : 11 14 G .F .M .t
1944 17 : 4 15 G .F.M .
U ncertified t
Time Lost
Year | No. Name
Time Lost
Year No. Name
3 days 1 mth. 13 days
--
1 mth. 4 days
30 days
1936
28 : 10 1 E.E.
! Nil
9 : 12 2 E.E.
Nil
4 : 11 3 W.F.
Nil
4 F.G.
Nil
14 : 10 5 F.K.
Nil
28 : 10 6 F.K.
Nil
7 H.E.W. S days (Hb. 75% )i gastritis
1937
24 : 3 8 W.F.
Nil
5 : 5 9 W.F.
N il
10 F.G.
N il
11 C .J.H .
Nil
12 J.L .
N it
13 R.O.
Nil
1938
13 : 12 14 C.F.H.
N il
i 15 \ W .R .
N il
1939 23 : 1 1 16
17
18 1940 23 : 9 19
20 1941 --
1942 -- -
1943 22 : 5 21
1944 --
1945 26 : 1 22
C .F .H . A .E .P . A .W . H .J. G.M .
--
--
H .J. --
H .J.
Time Lost
N il 20 days* investigation
N il
Nil Nil
--
--
N il
--
Certified = recovery away from factory, tU ncertified = recovery at work. (All cases 60-65% H b at time o f certification o r action in factory.) {Recurrent cases in italic.
I bVjr aJU * >
r
12
BRITISH JOURNAL OF INDUSTRIAL MEDICINE
T able 3
PERIO D OF RECOVERY OF Hb
W.F. AGE 48-53 YEARS.
Hb & Stipples* `Polychromes', Slow Hb recoverymaintained high (StP) during Non-lead
No. of Cases
H b at time of transfer ..
M ean tim e to reach 80% or more
M aintained at W ork
24
65-70% 1-93 m onths (3 weeks-7 i m onths)
Removed to Home or Hospital
9
65-70% 1-66 m onths (16 days-2 m onths)
Indicates slight advantage o f getting m an away from factory even on light and non-lead work.
1 case o f H b 43 -4 5 % recovered to 80% in 28 days w hilst at w ork on non-lead.
stippled in. the stained peripheral blood. Similar findings were obtained in our experiments with rabbits. Even in heavy exposure to lead not all the normoblasts show stipples, many proceeding to normal haemoglobination. Stipple cells, poly chromatic cells, and reticulocytes all owe the appearances seen to ribonucleic acid. This can be shown by treating the cells with ribonuclease which completely removes the basophilic material and leaves the cells uniformly acidophil. In the normal maturation of the erythrocyte, the basophilic sub stance in the cytoplasm practically disappears at the reticulocyte stage, and haemoglobination is com pleted without a hitch.
F ig.
years
7.-- Case o f lead anaem ia showing extremely slow recovery of haem oglobin whilst m aintained at work.
T.H. AGE 29-32 YEARS. R eturned to w o rk before blood re co ve ry -a fte r
The delivery of " leaded " basophilic cells from the marrow into the circulation is gradual in ordinary circumstances as the peripheral cells are removed. This statement applies to reticulocytes, polychro matic cells, and stipple cells, and it must be clearly understood that the particular appearance associated with these cells is not preformed, but depends upon the method of staining and upon the amount and state of the basophilic substance. Conditions suit able for staining one kind of these cells may fail entirely for the others.
F ig . 8.-- Case o f certified plum bism considered clinically fit to return to w ork, b u t thereafter requiring alm ost tw o years to regain a stable H b on non-lead work.
If blood rich in reticulocytes is stained supravitally with brilliant cresyl blue the usual picture is obtained of a filamentous-granular network but if a dried film is stained with the same dye the reticulo cytes are seen as cells with vacuolated basophilic material (Figs. 12 and 13). Stained supravitally or in dried film stipples are readily seen in their usual form in red blood cells as well as in normoblasts. Reticulocytes stained in dried film and examined in the dark ground show a finely granular or finely reticular pattern with irregular vacuoles.
H.T. AGE 51-57 YEARS.
MacFadzean and Davis (1949), Pirrie (Joe. cit.), Rimington (1938), Kench, Lane, and Varley (1952), Dustin (1942), and others have gone far to elucidate the nature of the stippling property of the erythrocyte in lead absorption.
F ig . 9.-- Case o f sensitivity and recurrent lead anaem ia in spite o f long periods on non-lead w ork. Close correspondence of H b and stipple values.
INDUSTRIAL HEALTH IN THE CHEMICAL INDUSTRY
13
F i g . 10.--R a b b i t blood a f t e r chronic lead inhalation show ing stippled normo blast. Stained with alkaline m e t h y l e n e blue, x 2000.
FiG. 11.--Rabbit bone
marrow after chronic
lead inhalation show
ing coarsely stippled
nor mobl a s t (R.B.C.
#
somewhat out of
focus), x 2000.
* Fig. 12.--Rabbit blood after chronic lead inhalation showing reticulocytes ; ^ supravital staining with brilliant cresyl blue. X 1200.
Fig. 13.--Rabbit blood on same occasion as Fig. 12 (dry film stained with brilliant cresyl blue) in which reticu locytes are seen as cells with v a c u o l a te d basophilic material, x 1200.
(
i
r
14
BRITISH JOURNAL OF INDUSTRIAL MEDICINE
Lead poisons the later precursors of the red cell and intoxication manifests itself as (1) retention of basophilic material instead of its almost complete disappearance at the normoblast and reticulocyte stage and completion of maturation. (2) The socalled stipple cell and the polychromatic cell derive from the failure of maturation of the basophil normo blast. The reticulocyte derives from non-poisoned normoblasts. Since reticulocytes may increase before lead anaemia and stippling are established we may assume that the stipple and polychrome cells indicate a failure of the normoblast to go on to the reticulo cyte stage. With the failure of the bone marrow in extreme cases oflead poisoning, stipples, polychromes, and reticulocytes all fail. This is why stipple counts fall in the last stages of very severe lead poisoning. (3) By processes not properly understood (synthesis of porphyrin, incorporation of Fe into coporphyrin III to form haemoglobin, etc.) lead inhibits the full haemoglobination of red cells. (4) Evidence of abnormality of red cells in lead absorption is that they show (a) diminished fragility in being able to withstand lower salt concentrations ; (6) increased brittleness and less durability in the conditions of existence in the circulation. In addition, they are readily taken up and destroyed by the spleen and other reticulo-endothelial cell locations. (5) Lead anaemia is due to (a) poor haemoglobination and (b) greater destructibility of cells containing lead.
Industrial Enzyme Poisons
Many industrial poisons are enzyme inhibitors, e.g., cyanide, organic arsenicals, organo-phosphorus compounds. The clinical pictures of acute poisoning can sometimes be related more or less specifically to the inhibition of particular enzyme systems.
The most important of these has, in recent years, been the large group of organic phosphorus insecti cides (Fig. 14) and potential war gases. Since there is intense competition in this field of manufacture, chemical research is directed towards synthesizing compounds which combine a broad spectrum of high insecticidal activity with low mammalian toxicity.
The toxicity of these compounds (Table 4) is attributable to their inhibition of cholinesterase and hence the clinical picture of poisoning is that of poisoning by endogenously produced acetylcholine. But the degree to which they inhibit the enzyme in vitro is in some cases many (even millions of) times less than would be expected from their toxicity in vivo. Transformation into highly potent anti cholinesterases occurs in these cases in the liver.
Recently progress has bee made towards evolving organo-phosphorus compounds possessing low mammalian toxicity compa\ d with the now classical
Table 4
L.D.50. O R G A N O -PH O SPH A TE INSECTICIDES*
Compound
Oral L.D.50
l.P. L.D.50
T .E .P .P .........................................
Paraoxon D im efo x Svstox (Commercial)
S
>P11 -0- ..
12 R.f. 2-0 R.m. 3-5 R.m .f. 5 R.m. 6-39-9-7 R.m.
7-5 R.m .
0-65 R 1-2 R .m .f.
4-5-8-37 R.m.
o
ii > P -S - ..
Pestox (O.M.P.A. Schradan) Parathion
E .P .N .
M ipafox M alathion
15 R.m.
9-7-10 0 R.m.f. 6 R.f. 15 R.m. 14 5 R.f.
91 0 R.m. < V-o Parathion 2,420 R.f. 2,860 R.m.
8-0-8-5 R.m.f. 4 R.f. 7 R.m.
50 M.
750 R.
*Median lethal doses of organo-phosphate insecticides. R = rats, M -- mice, tn = male, f = female. All values in m g./K g.
parathion and tetraethyl pyrophosphate (T.E.P.P.). Thus " mipafox", which is the mono-isopropyl analogue of " dimefox ", is perhaps 25 times less toxic than " parathion ", and " malathion " about 200
times less toxic to mammals. The optimism engen dered by these facts is tempered in the case of " malathion " by its less potent insecticidal pro perties and in that of " mipafox " by pathological considerations.
The questions which must be answered by the industrial investigator in respect of these and other agents which are applied to food or crops are : (1) Do they constitute a risk to the consumer of the food products ? This has been adequately answered in the report of the working party appointed by the Ministry of Agriculture (1953) which gives the necessary assurance but recommends investigation of the maximum permissible residues arising from the use of toxic substances. (2) Do they constitute an unjustifiable risk to the user ? The answer here is no, provided that the necessary precautions are implemented, and, in addition, if the use of atropine is properly understood by employer, supervisor, and doctor as the specific therapeutic agent for the parasympathetic signs and symptoms (Goldblatt,
1950, 1951). The onset of symptoms depends upon the level of
true cholinesterase in the blood cells, brain, and nervous tissues, in nerve fibres and at motor endplates and, of course, at ganglionic synapses. Since a great fall in the enzyme may occur in some indi viduals without any manifest signs or symptoms, it is essential that the blood cell cholinesterase of exposed persons should be determined as a routine
ORG/ l). PARATHION
2). T.E.P.P.
3). P E S T O X
4). PARAOXO
5). E.P. N. (u
). DIM EFO >
7). M IP A F C
8)
. systo
?) M A L A
O R G A N O -P H O SP H O R U S INSECTICIDFS
I). PARATH ION
0 2N
S
/ c aHs
O-- P
\ q C2H5
2). T.E.P.P. 3). P E S T O X 4). PARAOXON
'2 ' '5 A |
c2h50
no c 2h5
&
C C H ^ N .] J
CCH^N 7
2 N<( ------ '
1 0 r
-y
0 'O C 2H5
5). E .P . N. ( u .S.a )
o 2n < ^
c 2H5
6). D IM E F O X
/F o = p Z n (c h 0 2
V ch^
SYSTEM IC
% Ml P A F O X
/ 0 = P s - N H .C H ( C H 3) 2
N m h .c h iJ ^
SYSTEM IC
8). SY S T O X
.^s
r u c /* u S II /O C H
C 2H5'S C2H4 ~ ~ p \
25
SY ST E M IC
c 2h5.o o c .h c S
O C 2H5
m a la t h io n
C 2H5.OOC.HC -- lPi - s_(/ 0 C H 3 OCK
Fig. f4.--Formulae o f active compounds in organo-phosphorus insecticides.
LEAST TOXIC
16
BRITISH JOURNAL OF INDUSTRIAL MEDICINE
I
in order to preclude a fall to dangerous levels ; each
subject should be his or her own control. The variance from mean levels in populations is too great to draw conclusions from single observations. It is so easy to ignore the early symptoms which may be no more than a slight tightness in the chest and a sense of mild apprehension. This is the more important since in irreversible inhibition of cholin esterase there is considerable delay before the normal enzyme level is regenerated. In the case of " mipafox " poisoning it may take 50 to 90 days to recover the initial red blood cell level of cholinesterase after
an acute severe attack. Until very recently it would have been held that the
organo-phosphorus insecticides did not produce chronic effects, acute non-lethal attacks passing off without sequelae and long-term administration of sub-lethal doses to animals giving rise to no chronic toxic phenomena. Clinical observation and experi ments had shown that among organo-phosphorus compounds D.F.P. (di-isopropyl-phosphorofluoridate) and T.O.C.P. (tri-o-cresyl phosphate) both in man and in animals could induce demyelination in the cord and in the brain, and although suspicion was cast, by analogy, on the phosphorous insecticides, it was not till 1951 that a case of paralysis due to " parathion" was described in Germany by Petry (1951) and two cases due to " mipafox" [bis-(monoisopropyl) phosphorodiamidic fluoride] in this country by Bidstrup, Bonnell, and Beckett (1953), none of which appears to have recovered in some three years.
The addition of these agents to the already known diversity of demyelinating agents in man and animals (carbon monoxide, arsenicals, sulphanilamide, spinal anaesthetics, vaccination) tends to turn us from a purely chemical hypothesis to perhaps an enzymatic one. Demyelination has been produced experi mentally with CO, KCN, N 3Na, N,,0, and repeated doses of barbiturates (Weston Hurst, 1941, 1944).
The paralysis which followed " parathion" and " mipafox " resembled that described among many people who had absorbed T.O.C.P. in one way or another, and in both these groups it seems probable that the persistent signs were due to demyelination.
Fig. 15 shows a section of the cord of a fowl Cl-35 kg.) treated with a single dose of 0-5 g./kg. of tri-o-cresyl phosphate (T.O.C.P.). This and another fowl similarly treated were observed for over 250 days. The phenomena were of the same kind as found with the anti-cholinesterase insecticides. Some recovery was observed, especially in respect of secondary sex characters and egg-laying power, and to some extent in muscular powers, but this was very
slow and only partial (see also Barnes and Denz, 1953).
The selection of a special tract for attack is puzzling and not less so than in man, in whom the whole picture is of a motor disturbance. In the cases due to insecticide a neuromuscular block due to the breakdown of the normal relation of cholin esterases and their substrates was first seen and later a peripheral neuritis with only those sensory impair ments as are normally associated with polyneuritis.
As more and more compounds are being synthe sized, it is important not to assume the relative safety of a given compound until acute and chronic
F ig. 15.-- Cervical cord and sciatic nerve o f a fowl treated with a prep aratio n o f tricresy] phosphate calculated to contain 0-1% o f the ortho-isom er. T otal dose in 16 days = 2 m g./kg. by mouth. F irst paralytic signs in 21 days followed by progressive worsening o f paralysis o f legs. D em yelination in anterior an d lateral colum ns and m arkedly on sciatic cord. X 12. M archi's m ethod. A = upper, and B = lower, cervical cord -below sciatic nerve.
Ii
experiments have be effect on the nervou variety of animal spe
Occupatii
There are very fe have been shown wit gens to man. The radiations (x-ray, r naphthylamine, benz pyrene.
Of the host of con which have producer mary gland, lung, an( have been demonstrs carcinogens. The ac products as tar, lubr established with cert. 3-4 benzpyrene from this compound.
Long-continued tl tions and work with to indubitable skin finally to epitheliom; ment has been pub! effect in animals.
In the case of certa as well as severe bl< followed long expo though the tumours sarcomata in animal: differences are attril reached by the radia
Neoplastic change often highly maligna of workers exposed and/or dust of cert reported for nearly f where organic dyes clinical fact has beei in the U.S.A. and identical bladder tu: (i-naphthylamine. I Clayson. and Jull (IS tumours inducible amine in different s amount of urinary a excreted.
More recently t benzidine and has bi research both inside the demonstration c benzidine in rats (rec but bladder tumou induced except in
rE i also Barnes and Denz, jcial tract for attack is tan in man, in whom the 'tor disturbance. In the neuromuscular block due tormal relation of cholin;s was first seen and later mly those sensory impairxiated with polyneuritis, pounds are being synthet to assume the relative d until acute and chronic
nerve o f a fowl treated with a ate calculated to contain 0 1 % of n 16 days = 2 m g./kg. by m outh, followed by progressive worsening elination in anterior and lateral sciatic cord, x 12. M archi's ? lower, cervical cord below
INDUSTRIAL HEALTH IN THE CHEMICAL INDUSTRY
17
experiments have been carried out, and also the effect on the nervous system studied in detail in a variety of animal species.
Occupational Carcinogenesis
There are very few identifiable agencies which have been shown without any doubt to be carcino gens to man. These are arsenical compounds, radiations (x-ray, radium, ultra-violet light), 3naphthyiamine, benzidine, and probably 3-4 benz pyrene.
Of the host of compounds and complex mixtures which have produced tumours of skin, liver, mam mary gland, lung, and bladder in animals, only these have been demonstrated as direct or indirect human carcinogens. The active agents in such carcinogenic products as tar, lubricating oil, soot, pitch, are not established with certainty, although the isolation of 3-4 benzpyrene from tar casts strong suspicion on this compound.
Long-continued therapy with arsenical prepara tions and work with arsenical compounds have led to indubitable skin changes (hyperkeratosis) and finally to epitheliomata. But no convincing experi ment has been published to demonstrate a similar effect in animals.
In the case of certain radiations, neoplastic change as well as severe blood changes have undoubtedly followed long exposure in man and in animals, though the tumours which develop are different-- sarcomata in animals and carcinomata in man. The ditferences are attributable to the different tissues readied by the radiation.
Neoplastic changes, sometimes benign but most often highly malignant and recurrent, in the bladders of workers exposed for varying periods to the fume and, or dust of certain aromatic amines have been reported for nearly 60 years in all parts of the world where organic dyestuffs are manufactured. This clinical fact has been confirmed by experiment both in the U.S.A. and in Britain with dogs in which identical bladder tumours were induced by feeding 'i-naphthylamine. It has been suggested by Bonser, Clayson, and Jull (1951) that the incidence of bladder tumours inducible by treatment with 2-naphthylamine in different species is roughly related to the amount of urinary conjugates of 2-amino-l-naphthol excreted.
More recently the same suspicion fell upon benzidine and has been amply confirmed. Intensive research both inside and outside industry has led to the demonstration of the carcinogenic properties of benzidine in rats (rectum, sebaceous ear glands, liver) but bladder tumours had until recently not been induced except in the case of one dog (Spitz,
Maguigan, and Dobriner, 1950). The possibility that here also the o-hydroxyamine is the immediate carcinogen has received much consideration.
The contribution made to the elucidation of the problem in this country has been notable and the names of Bridge (1934), Macalpine (1929,) Wignall (1929), Walpole, Williams, and Roberts (1954), Scott (1952), Baker (1953), Bonser and others, (1951), Bonser, Clayson, Jull, and Pyrah (1952) and more recently Case and Hosker (1954), and Case, Hosker, McDonald, and Pearson (1954), will always be remembered for the great light shed upon it. The total number of cases which Case and his colleagues (1954) were able to trace in the chemi cal industry between 1900 and 1952 was 455. Case's classical statistical investigations are a model for the future investigation of occupational diseases. Case and others have established on a national scale what others have found in industrial practice both in this country and elsewhere. Contact with the naphthylamines or benzidine is now fully recognized as a carcinogenic hazard, and aniline appears to be exonerated. Some as yet cryptic factors in the manufacture of magenta and auramine appear to throw suspicion on both these processes. The disease was prescribed as an industrial disease in 1953 in this country, just 58 years after the original description by Rehn. It is proper to record the unremitting clinical control by Dr. Charles Cresdee for almost a quarter of a century in one very large centre where these compounds were manufactured, which has been a guide and an inspiration to those who have had to pursue the problem in the quiet of the laboratory (for earlier work and review see Goldblatt, 1947, 1949).
More recently, arguing very ingeniously from the fact that these tumours had formerly been attributed to aniline, which until now has not been proven to be a bladder carcinogen, Walpole, Williams, and Roberts (1954) in Manchester came to suspect 4amino diphenyl, which had been found in residues in aniline manufacture 80 years ago, as the probable cause. Experiments on dogs confirmed the presumed bladder carcinogenicity of this compound.
Certain condensation compounds of the naph thylamines formerly used in the processing of rubber have already been banned by manufacturers since new knowledge on the previously suspected but uninvestigated incidence of vesical tumours in the rubber industry became available (Case and Hosker, 1954).
Both the Leeds and Manchester workers have come to place great emphasis on o-hydroxyamines as the effective bladder carcinogens. This has opened a large speculative field of inquiry, because
18
BRITISH JOURNAL OF INDUSTRIAL MEDICINE
a considerable number of hitherto unsuspected aromatic amines and derivatives of them could yield various o-hydroxyamines metabolically.
The dilemma before industry in this field is how to deal with the considerable numbers of compounds that might carry suspicion. The
project of examining all the derivatives of cyclic hydrocarbons and their homologues which, in their metabolism, might yield amines or derivatives of amines of potential carcinogenicity must, how ever, be undertaken. There is no escape from the argument that if a compound is carcinogenic in animals, in whatever location in the body, it must be so regarded, at least potentially, in man. In some cases it is possible to circumvent carcino genicity chemically. In the case of 3-naphthylamine this has been done in this country and in some continental countries by avoiding liberation of the base at any stage of manufacture or use. Certain food azo-dyestuffs have already been rejected because of the possible metabolic fission of the relatively simple molecules with the liberation of a carcinogenic amine, in the absence of any but presumptive evidence. A systematic study of food colours on these lines is in progress in my laboratories.
In the industrial field the manner of attack must be cooperation between statisticians, industrial doctors, and experimentalists. The statistical weapon is one which is potent in the hands of specially gifted people, provided all the data are collected on a pre-determined plan and all in possession of relevant records cooperate fully. Before it is prudent to publish the view that a given material is not carcinogenic in any circumstances, it is well to remember that experienced investigators have made such statements and subsequently have been proved mistaken.
Experiment (in our hands as well as in others') has failed to show carcinogenic properties in chromates, but in the U.S.A. there is considerable statistical support that chromate dust can induce lung cancer (Machie and Gregorius, 1948) but Bidstrup (1951) was not able to draw clear con clusions from her x-ray survey of 724 workers in the industry in this country. Recent statistical data in the U.S.A. show that chromate workers had a mortality rate for respiratory cancer 29 times as great as would be expected among a comparable group of all males in the country (Federal Security Agency, 1953).
In 1949 the Senior Medical Inspector of Factories gave. reasons for th belief that the pulmonary fibrosis in asbestosis is followed by an inordinately high percentage of cases of pulmonary cancer.
It will be difficult, if the observation is confirmed, to envisage the process here as other than one initiated by local mechanical irritation but a chemical carcinogen is not ruled out although it is more difficult to find support for it. It is not sufficient to state that a given material is non toxic. Toxicity as ordinarily understood is in some sense the reverse of carcinogenicity. For whereas a compound exercising a toxic effect on a cell is driving that cell in the direction of inanition and death, one exerting a carcinogenic effect on a normal cell is driving that cell towards excessive, if abnormal, function and, for a time, more vigorous life. This is not to say that a carcino genic compound is never toxic in the ordinary sense, but rather that a toxic agent in full spate is unlikely to permit the establishment of carcinogenicity. Although the mean induction times for certain occupational carcinogens are long and not dependent on the severity of exposure, it is to be noted that in some individuals the induction time may be quite short and in others much longer than the mean.
Recent Work in the Diagnosis of Vesical Tumours
The need for continued medical supervision of men who have been exposed in the past to bladder carcinogens is manifest even after exposure has ceased, and even after leaving the industry.
In a section of the chemical industry exfoliative cytology is being used to detect early bladder tumours. In the U.S.A. the teaching of Papanicolaou (1947, 1948) on the importance of the recognition of neoplastic changes in exfoliated cells has been much regarded. Cells may be exfoliated from the lung, stomach, bladder, cervix, and vagina, and, provided the morphological and staining characters of tumour cells can be recognized, there is no theoretical reason why a neoplastic process should not be detectable at an early stage (see also Bamforth, 1953).
In the case of bladder tumours the early develop ment is not attended by any disturbance of the patient in either occupational or non-occupational cases. Hence arises the need to establish routine urine examinations for microscopic blood, which is often the earliest sign of bladder irritation, of ruptured small varicosities, of a broken frond of a small papilloma, or of the slow and insidious oozing of an infiltrating carcinoma. In a small proportion of cases microscopic haematuria is unaccompanied by a tumour visible in the cystoscope, and -in a larger proportion there may be no blood in spite of the presence of a tumour.
In this country it is useless to recommend routine
EDICINE
, if the observation is confirms! process here as other than oi .1 mechanical irritation but I sn is not ruled out although it] find support for it. It is n |
that a given material is nof as ordinarily understood is everse of carcinogenicity. F<j ound exercising a toxic effei ng that cell in the direction ith, one exerting a carcinogen 1 cell is driving that cell toward rmal, function and, for a time! . This is not to say that a cartina never toxic in the ordinary sensi oxic agent in full spate is unlikelj stablishment of carcinogenicit an induction times for certain cinogens are long and noi severity of exposure, it is to te individuals the induction tim9
and in others much longer thaif
he Diagnosis of Vesical Tumou
ontinued medical supervision ol ;n exposed in the past to bladdef inifest even after exposure ha ifter leaving the industry, the chemical industry exfoliative
used to detect early bladdeq S.A. the teaching of Papanicolaou le importance of the recognitior iges in exfoliated cells has beer Tells may be exfoliated from th adder, cervix, and vagina, and| hologicai and staining characters .an be recognized, there is nc why a neoplastic process should
at an early stage (see alsc
c>stoscopv of workers as it is practised on
the Continent and to some extent in the L .S.A. Hence urinary examinations must l>: made and every device used which
will, with the minimum discomfort, give
a correct picture of the inside of the organ. To this end we are seeking to enlarge the
scope of urinary examinations by deter mining the picture of vesical exfoliation in normal subjects, by applying Papanicoliou's methods to the urine, and, we hope later, by cytochemical tests for malignancy. By methods different from those hitherto used, Mr. Rofe in my laboratories has been able accurately to stain, characterize, separate, and count the types of cells found in normal human urine (Rofe. 1955) after removal of the normally interfering organic and inorganic matter and debris and concentrating the cells in 1 in 1.500 of the volume in which they were voided. Certain conclusions may thus be stated : (1) M ost normal
urines contain blood. (2) Most normal urines contain leucocytes. (3) The cellular content other than these is divisible into two main parts (a) squamous and tran sitional. 15u and over in size (urethra, bladder) ; (b) small epithelial cells derived from kidney and prostate (in the male) 15 x and under in size. These cells are m various stages of degeneration.
\ very interesting feature of these counts was that there were always far more leucocytes in normal urine than could be accounted for by a simple transudation of whole blood. This perhaps means that the bladder is always in a state of some irritation, either chemical or mechanical, which does not reach consciousness. By applying Rofe's method it is possible to see at a glance all the cells exfoliated in a given sample of
F ig . 16
urine. Having a reliable picture of the normal cell content, deviations from it can the more readily be recognized and the detection of exfoliated tumour cells is facilitated by the small volume into which the cells are concentrated. The character of exfoliated bladder tumour cells has been described by Crabbe
adder tumours the early develop-]
ded by any disturbance of the!
ccupational or non-occupational[
es the need to establish routine!
for microscopic blood, which is]
sign of bladder irritation, of
ricosities, of a broken frond of
, or of the slow and insidiousl
trating carcinoma. In a small]
ses microscopic haematuria is]
a tumour visible in the cysto-
I#
arger proportion there may be|
' the presence of a tumour,
is useless to recommend routine!
F ig . 16.-- Sm ear from u rine o f w orker in m anufacture o f dyestuff intermediates showing erythrocytes, polymorphs, abnorm al and degenerated epithelial cells, and several definitely malig nant cells. Papanicolaou's technique o f preparation and staining. \ 500.
/ % V *
G
* aS&k i *
F ig. 17.--Smear from ano th er dyestuff
worker showing erythrocytes, many
polym orphs, and giant binucleated
m alignant cells.
Papanicolaou
technique, x 500.
F ig . 17
^ f
-3 '
20
BRITISH JOURNAL OF INDUSTRIAL MEDICINE
<1952) working in my laboratories. The value of .cytological diagnosis has been amply demonstrated.
The cytological criteria laid down by Papanicolaou for the diagnosis of malignancy include increased size and bizarre shapes ; enlargement of nuclei in relation to cyto p lasm ; altered nuclear and chrom atin pattern ; increased affinity o f nuclei for basic stains ; and variation in nuclear sizes in a group of cells (Figs. 16, 17). In a m ethod of diagnosis of this kind the danger is the false negative. The false positive is less serious, but always of great interest, especially when found in the absence of blood cells and cystoscopically visible tum ours. T h e cystoscope is not infallible, for we have had cases in which a positive cytological diagnosis was subsequently confirmed by cystoscopy after initially negative cystoscopic reports.
It is becoming clear that the exfoliation of cells from new growths is not a uniformly constant process. One day it may be prolific, another relatively unproductive. Further, the ease of recognition of neoplastic character varies.
For these and other reasons we prefer at this stage to base judgment on a combination of the classical search for haematuria and to fortify it with the cytological method. It has thus been possible to assert the presence of a tum our at a stage when a slight microscopic haematuria would have left us in doubt and the patient in delay.
F ield Experim ent
Field investigation is properly the dom ain of the industrial doctor, and it is the most difficult.
In the last analysis it is upon field investigation that a final judgment must rest as to the relation between industrial environment and state of health. The difficulty does not lie in the recognition of this proposition, but in obtaining the opportunity and in devising the appropriate methods to establish such relations. To attain results which are soundly based and generally acceptable is a task requiring the cooperation of many disciplines. In the main, therefore, it is in the big organization with great resources that such studies can be made, but it is a parallel fact th at in such organizations the environ mental conditions are likely to be the best.
The practical application of the principles which em erge from field studies requires assiduity on the part of the industrial doctor and of those responsible for industrial hygiene, for this requires not only the willingness of employers to make money available, but also the willingness of workers to create it.
In conclusion, my object has been to indicate some of the things which concern those who are engaged in research in industrial health in the
chemical industry, and some of the difficulties and dilemmas which arise. This kind of work is merely the preliminary to the application of the knowledge thereby obtained in the field and the factory. It is there that the ultim ate goal set by Jam es Mackenzie must be reached--the prevention of occupational illness.
I am extremely indebted to Mr. Kenneth Cooper and Mr. Leslie Hewitt for their kind cooperation in the preparation of the photomicrographs, and to my colleague Dr. J. G. S. Crabbe for Figs. 16 and 17. My thanks are due to Mr. Berczy, Mr. Crozier, and Mr. Denks for much technical assistance.
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