Document 6E32nbVBDJE64wxMXj1zvQ09
Comments Concerning, AIR QUALITY CRITERIA FOR LEAD
Second Draft
CHAPTER I INTRODUCTION Line 2 of the Introduction contains the word "lethal'' to characterize the toxic properties of lead, presumably for man. Since the "lethal" effect is indeed rare, in relation to air-borne lead, except in the case of herbivorous animals, whose forage has been contaminated seriously by the "fall-out" of lead emitted from near by smelters, especially secondary smelters, or other industrial establishments in which lead is melted, refined or alloyed*, this is an unfortunate, if simply ill chosen, expression. It might be suspected that, for reasons other than lack of experience or knowledge, the choice was made of an expression which would convey the direst possiblt connotations of the anticipated effect of the absorption of lead ^from the ambient atmosphere. This matter of verbage, is not, of itself, important1, except, perhaps, as an indication of an attitude toward the subject, which should be dealt with in the most soberly critical manner, rather than to make use of histrionics, in view of the available and relevant information. Moreover, the next to last paragraph of the introduction provides little comfort ro those who would look to this document for a sound presentation of the facts as to the significance of the information*now available concerning the actually and potentially harmful effects of the current contamination of the ambient air with lead. The process of the "distillation of information" from the observations and publication
* The serious problem of lead poisoning in infancy and childhood, when, because of th innocent or abnormal behavior of that period, large quantities of lead (usually in the form of paint) may be ingested (swallowed), with lethal effects all too often, is not related to air-borne lead.
i#. *v ;; ;- "/< ?*-VS&8&<8
i-!' :.<;-1 s.^'feS'l
'*v;
>' i?W r:f'
.; #!i". .../-----aagi; . Hu miter reoccmtqs
.^.roc4ja / Kwmfcer
- fP^ <?
' * ." > ?: ,;v.jv;
: v1
2- V: ^ 0 1i`: S\ "X-------
if :
; ... *-,.,*2^. . 4- 3; . ' *"$1
vf/ if
-
//. t
2o.S
'q:^f y>.d
/+ 6
";t h '/.'S
3o,^ i-3.o
!il|llli
yfcjt'Q-ty >07
f *>'6
xy>,o
4.^
d,/6 -,o>if " 0*/2 -r':4./i
4,/f~0,/S-
. :J>,H0-fl U'-V^^vU, ! 6./T-6,f<!
4 / :? 2
1 i `r-
IU %,v ,U
v, i
J'
/
I f>0
i
>' 1 ,.v'
y'ti::
b - -----.
-. *>' i "
*
'yH ;i
(
' ` ' ,. 1
'., /iw f<vX m"i.
`..-
i f. > ;'
wr- rf? ' 'A,',
sf: . .
:/. ` V/'. . . - '
>v
y,y y.'v 4, S
^liB
56 IfQOt O' L 46 ' ICQid *4r% loo,o
; '7
......
. ;i
jzz
i -\
' . ..
&) S! f :
.j.tffir
^.633
o.os'S :';
U>J*J t----0--**M;*-?A"' "
! X C' Oi^:; ' t, 0.003
f />.
- 6 *<Ol T ;
3: o.'o^V '
_ ^ / knfuA*Jt,
v
** ."...
*
0.32
/0't4 XftZuU)a^, CoiuJt 'akt^ */
it 0. <? o 7jijO.0 3<?_____________
Y#-V;-' ` ' ;
v<?v* :^> \.
.'
'-. \i%
. *3e A*^ii'
.
. t ,. i Z rf :>$S' ^ >5'^
Table 12
Distribution of Y/orkmen Employed in Mixing Tetraethyl Lead with Gasoline ' I According to Milligrams of Lead per Liter of Urine
if
Milligrams of Lead Per Liter of Urine
Jfl 9
27
19,29..............
1931.................
Composite
Number Percentage Niimber Percentage Number Percentage Number Percen
* 0-0.01
'2 05.6
2 .. . 5.0
19 la.3 ' 23
18.
0.02-0.03
-Jfc-- 11.1
10 25.0
lk 30. u
28 .... - 23.
0.0k-0.05 11 30.5
8 20.0
: 6 13.0
25 20.
006~0*0Y 0.08-0.09 0.10-0.11 0.12-0.13
,-3... 25.0
Lk_
11.1
___ .
2
:8-3____ _ '5.6
8
6 2 2
O
j.0i
\
20.0
15.A-
2 1
k.3
2.2
. -19 .... . 15. 11 _____ isi 5 k 3.1
l_=-1
0.lli-0.15 0.16-0.17 0.18-0.19 1 2.8
1
.... . 1
2.2
:2
1.6
1 -,..2^1--....
1
2.2
2 1.6
1 0.6
).20-
2*
...... 2*
1.6
Totals
-Jii-- 100.0
ko
:100.0 ..M- 100.0
122
100.
Mean
Probable :rror of Mean
Standard' Deviation
: 0.068 0 00k -- - 0.036
0.066
- 0.00k
-
. 0.033 - 0.003 - 0.03k
# Two results 0.32 and 0 61+. excluded in calculation of means.
0.055 - 0.002
1+
.00
04
-0 1+
.00
04 so
!
01 400
Table 12
Distribution of Workmen Employed in Mixing Tetraethyl Lead with Gasoline / jAccording to Milligram* of Lead per Liter of Urine
Milligram* of Lead
Per Liter of Urine
192?
1929
1931
Composite
Jfumber Percentage Number Percentage Humber Percentage Humber Pereen
0-0.01
2 : 45.6
2
3.0
10 111.3
.. 23- ' 18.'
0.02-0.03 _
11.1
-
-10
-25.0____ Ik
50.il"
28 : 25.<
O.Ok-0.05
n ' so. . :... 8
. 20.0
6 13.0
25 ^ 20.*
0.06.0.07 -,JL-
..... ... 8
ao.o
2 k.3 -19
0.08-0.09 . ,-k,,
6 15.0
1 .... 2*2 -- 11
9*<
0.10-0.11 - -3
8.3
-5.0
5 k.1
-i-- 8.6 - -2 - 5.0 `
t ....
3.lk-0.15 ) .16-0.17
1 --..... ..JU-, 2.5
1 2.2 ... 1 -._________ _
>.18-0.19 -JL- 2.8
1 __JLtS
>.20.
2* .... 4*2____ 2* - 1.6
Total*
-3i_ .....lQg.t<L~ Jlfi____ 100.0
100-0
122 lOO.i
aftl
Probable Irror of Mean
Standard Deviation
0.068
1 0.00k
0.066
- 0.00k - - 0.057
-
0*033 - 0.303 - 0.05k
Two result* 0*32 and 06lt excluded in calculation of means*
_ _ 0.055 _ * 0.002 -0-098
vi\ yt- -SST ~
01
4 n ? Ui
Tabla 12
?Dltribttion of WVoorkmaaen Saploycd In Miixxing Tatraatfcqft Lttd with Oaaoltaa ^According to Milligram of Lead par LItop of Orlaa
Milligram Of Lead Ftp Liter
of trrlno_
I 1927
1929
193*
Composite
Muabcr Fcroonta/w UusabtP Percent*** iswbcr Percentage iuiBbcr Pcrccn
0-0.01
2 -5.6
2 5.0 19
'ifl.
0.02-0.05___
11.1
10 25.0
Ik
28 ' 25*i
-11
30.5
8 20.0
6 15.0
25 ..' 20J
0.06-0.07
9 25.0
. -8
2............
U.9
19
0.08-0.09 0.10-0.11 0.12-0.15
k
.5 2
11.1 _ 6
15.0
8.5
2 . 5.0
5.6 2 5.0
1
_*
.. 9.1 5 ^lul y
O.lk-0.15
1 2.5
1 2.2
2 ''-JU*
0.16-0.1?
1
2.5
1-
-
2.2
2
).18-0.19 1 *.8
i................. -
_u-- --JBL
JEaMff. ; _n_________________
___________
100-0
,.1,99*9.....
*00-
twin
rabablc mi* of (can
Standard
0.068 ______ O.OOffc .
. 0.066 _____ ______ 0*553____ '1
* o.ooU........-
* 0.009
- 0-0**
-0-097
- 0-09^
Two result* 0*52 rad 064 oxoludod In calculation of aaana.
0.055
~ 0.008 _ & 0.059
01 4
^v'frv- '; *
yP''
SPfio. -.v't.'*''*A* ^Hi'l.:'',.' '" -, f;. .
!Br i' ' i `
+ >. .*,
X ' ', >;.- ,k '
fitu
..
pkKyk.N;
j^,'. ;^
I
'M'"'
'
'
*5 -
i . .''.' 1:; v `t '-! v -. -
.
^
.
/
xtt,
<77%
j --y
. uu*U 7 M-
'iim,
ffkh ;<!;>1'ifi
f .
; i
** -
->: v V- - ' ?
cN* , 'i < l* >
Aj&
-j't!-/i' >:l'rb: "- .-.* .
Vd ,
vAV'- V
*T\ V* "
4^0--. \
tea 01 406'.'
Cc j -h aj c )
^
t /i^Xf
i kJ ktJl feud- (7#)(4^ 7 uf1
v ' .. 7 , - m ' -~ . --v*,-
"*
'' *
v#i
1 rO) *
I
Tim e in Wee ifs Wf t e i^ Ce s s a t i o n o f cxfposuif
flCf/jMGTO/HLYOut put o f Lead i h Ui^ip e Foi?Suc c essive Wf e/csFe w ^
T/m f
//v W ff/fs
FrrE f
Ce s s a t i o n
o r-- -- -
W A>
f/(Posuife
Tim e in Wee/(s flFTEfg Ce s s a t i o n o f L\Posurge
3 )]/}S M )cJJ0 M 0 llK S JjT iU jysT l3 JfA i s /u s s is o n r lia j s j o w j n i r w s jjo H id in g A jw f
fl/E rfftG E O fl/Ly C o rtC E N rrtflT io N o r L e a d i n U r i n e For? S u c c e s s / \/e We e ^ s A f t e r
m 9 0 c /J (J J O A /O /J .d S 'S 'J J d / J U ^ 9 j/J J /y A// 3UJJ_
Because of the lead intoxication, the previously neglected luetic ndition was permitted to go untreated until such a time as it could be inaugurated without risk. The first treatment (Salvarsan) was given on the seventy-first day in the laboratory. (Cf. Figure ____ and legend.) No other treatment of any kind was employed during the early months of the study, since the subject was in no distress, and since we wished to observe the lead excretion uninfluenced by any factors of our own making. The diet of the subject was varied and adequate, and entirely of his own choosing. Since food was provided out of experimental funds, the factor of cost did not influence its quality or quantity.
The amount of lead in the first sample of faeces (l.72 mg,) falls far short of what it must have been on the day fcllcwing the cessation of exposure. The mean figure for the samples of white lead workers similarly exposed was 7.6 milligrams. Attention is called to this fact as a reminder that this subject, seen two weeks after his last workday, could not provide a faecal sample which bore any evidence of the exposure of that day. However, the faecal lead is high, and is subject to v/ide fluctuations. Beginning on November 18th, and occurring from time to time until the middle of December,
s
a new phenomenon appeared in the faecal excretion, which, required some explanatfOTS""' High results, entirely outside th previous range, and in fact, outside any reasonable excretory range, began to appear. A survey of the diet list revealed a perfect correlation of a meal of fried or stewed rabbit with these occurrences. In order to avoid similar results the subject was warned against the inclusion of game animals of any type in his diet. Such aberrant figures promptly ceased to appear, snd were not seen again except on two occasions, one in February (4.40 mg.) and one in March (3.00 mg.). These may have resulted from an unusual amount of lead arsenate on fruit
ingested on these occasions, but no certain explanation can be given The other high points in the faecal excretion are the result of the accumulation of faeces in the alimentary Jrract during the periods of constipation, which were of frequent occurrence. The trend of th< alimentary lead excretion is gradual and unmistakably downward. If the average amounts per week are plotted to form a curve, there is a downward trend over the entire period of thirty-five weeks, with numerous irregularities corresponding to those which are seen in the daily graph. At the end of this time, the faecal excretion corresponds approximately to the level of the faecal excretion of
. / tv a. <L*--> ' nOTTua.'- -paraaas. Clearly, it cannot have gone appreciably lower.
The irregularity of the curve defeats any fine attempts at its in terpretation, Nevertheless it is important to note that there is no evidence of a critical break in the level of faecal lead excretion either at the time of disappearance of symptoms (cf. the arrow at December 10th), or at any other time. Undoubtedly, the lead cbntent of the subject's food was a factor in the irregularity o!^ the ^faecal
/
curve. Despite this disadvantageous factor, it seems to be a reason able assumption, from the facts, that as the quantity of lead in the tissues diminished, the excretion of lead in the faeces diminished also.
When tii'W"**!inary excretion is considered, the results are yet more striking. The high level at the start is maintained with only a fleeting dip for two weeks, after which it slowly slopes off, to be elevated again to a remarkable degree by a mere increase in water intake and elimination. After this period it falls to a level which is essentially normal, being slightly raised during a period in which lemonade was administered. rhe increase m this instance is not definitely higher than would be accounted for on the basis of increased water intake. Again there is no critical point in the
curve, but only a gradual irregular diminution. The period of work
at the end of the observations was not sufficiently energetic to
demonstrate any certain effect. Nor was it carried out with such
uniformity as to establish the negative fact. In fact, it introduce
an undesirable factor into the observations, from the point of view
of the subject, and to such an extent that relations which had been
mutually cordial and beneficial became somewhat strained. When
this situation developed the study was abruptly terminated, since
it could be continued with profit only through the perfect cooper
ation of the subject. 3y this time, the subject was in excellent
health except for the irreversible sequelae of a luetic aortitis,
so far as examination indicated his physical state.
The concentration of lead in the blood showed a general
correspondence in its hehavior to that of the urinary excretion.
It is particularly noteworthy that during the period of high water
s
intake the amounts of l*ead
the blood were too small to be de
tected by the methods emplpyed. This is precisely what would be
expected if the greater lead output in the urine was produced by
the simple leaching out of soluble lead, rather than by an inter
ference with the mechanisms of lead distribution in the tissues.
The occurrence of basophilic stippling of the erythrocytes
during the study is in strict relationship to the other observa
tions except that it disappears at a much earlier date than do the
other abnormal findings. It reaches an approximately normal level
at the time subjective symptoms vanish. From this fact one might
attribute an unwarranted importance to the phetoomenon, but in con
sideration of the frequency of occurrence of high findings in
persons who have no symptoms or signs of intoxication, the signifi
cance of the drop in this instance must be left to speculation.
Legend for Figure ____ (Smith)
The daily excretion of lead in the faeces is plotted on the lower
curve, the cross-hatched portion indicating the amounts found by anal
ysis, the solid black representing lead in milligrams per gram of ash.
l*f it --* `-M.
The daily urinary lead excretion in the amounts a* found is in
solid black in the upper curve. The stippled areas refer to the
volume of urine voided.
The topmost solid black areas are set down on the dates on which
50 c.c. blood samples were obtained. The projection of these blocks
below the top line, expresses lead in the blood, in milligrams per
100 c.c., on the same scale as the urinary lead is plotted.
The number of stippled erythrocytes found in fifty fields of
the daily smears are shown by the dots on the broken line curve. The
zero point of this curve is represented by the continuous straight
line which extends across the lower (faecal) curve.
j At certain points where amounts go beyond the upper limits of
/the curve the amount of the item in question is inserted in numbers.
Any losi samples are so recorded. The absence of records on
other days are due to failure of alimentary evacuation.
Days marked I' at the top or~ the faecal curve are those on
which the subject' ingested fried or stewed rabbit.
The days similarly marked
are those on v/hich a treatment
with salvarsen was administered, in the treatment of previously neg
lected syphilis.
The value of the facts displayed in the study of the foregoing subject in the diagnosis and treatment of lead poisoning may be left
for later consideration, For the present, let us deal only with
their significance in the clarification of the factors which influence
the magnitude of lead excretion. It has been shown that lead excre
tion varies with the extent of daily lead exposure. It may now be
recognized that it also depends upon the amount of lead which has been
absorbed into the tissues. An objection to this conclusion may be
raised to the effect that the subject was not necessarily typical or
normal, in that he had a disease (syphilis) which may have influenced
the results. That this was not the case is di own by similar observa
tions on another subject, a young, apparently healthy negro, whose
exposure had been brief but severe.
This subject,
years of age, had been employed in a
white lead plant for
Impending unemployment brought
him into our hands when we were in search of a suitable subject.
He came to the laboratory directly after a day's work and after a phys
ical examination he was accepted as satisfactory for our purposes.
The significant items of his physical examination include
Figure ____ shows the results of four months of daily observa tions, A number of samples of faeces, and two samples of urine were lost in the first and second weeks, for a variety of reasons, but there were no difficulties thereafter. The subject proved to be a reliable and cooperative participant in the experiment.
01 415
In certain notable respects Figure ____ differs frcm Figure ____ The faecal curve in Figure ____ begins with a high point, followed by an immediate large drop, after which the initial level is never regained. This is a characteristic effect of the abrupt cessation of exposure to lead dusts, the result of the swallowing of lead deposited in the upper respiratory passages on the previous day being apparent in the faeces. From this point on .the amounts of lead appearing in the faeces of this subject are smaller than those in the corresponding period of the observations made on the other subject. This, in itself is significant, for the exposure of the two men was of the same type and presumably of approximately the same intensity. In the first case, however, it was prolonged, while in this subject it was of short duration. Presumably a smaller amount of lead accumulated in the tissues during the shorter exposure, and there is a corresponding diminution in the rate of excretion. There i3 a further difference in that there is a more gradual slope to the
/'
curve of diminishing laecal lead excretion. Unfortunately the obser vations were not continued until the normal level was reached, and it is impossible, therefore, to compare the two subjects in this regard. (It is of consideraoie practical importance to note that the evidence of significant exposure persisted for four months.) Despite the differences in the faecal excretion as represented in the two figures the general facts are in correspondence. There is a gradual decrease in the magnitude of the daily excretion, and there is no critical change at any point. In fact, the various experimental efforts to influence the rate of excretion as recorded on the curve, have had little or no clearly demonstrable effect, with the exception of magne ium sulphate, which was certainly responsible ior the elimination of an increased amount of lead, with the increased activity of the
alimentary tract, on the first day of the treatment. This was admm-
Check this in or-
iginal data.
istered of five
in four doses daily, at four hour intervals, each dose consistin grams of MgS04.8H20 dissolved in a minimal quantity of water,
The urinary graph shows much the same general trend as does
that of the faeces. Two peaks of unusual magnitude occur on the eighth
and thirteenth days respectively, coincident with the ingestion of ab
normal amounts of water. The other irregularly spaced high points or
low points have no necessary relation to the materials administered at
various times as indicated, since similar high and low points occur
elsewhere without relation to treatment. It is especially interesting
Check to note that the administration of calcium lactate in four doses of two amt s in or- grams each at four hour intervals over a period of four days failed to iginal data, cause an appreciable drop in the excretory rate. The biliary drainages
on the seventy-first and eighty-fourth days respectively served only to
demonstrate the presence of measureable amounts of lead in the bile.
The lead in the bloo3 of this subject was less in amount, than that four/d in ^the blood of the first subject for a corresponding period.
However, just as the lead excretion failed to reach a normal level, so
(
the blood failed to reach a point where consistently negative results
t,
were obtained.
The observations as 'to the occurrence of stippling of ery
throcytes were uia'iJNs"woraevhat irregularly. They require no comment.
AH
01 4 i /
'i $ v
< :
a. rc *
/ 5~6 <*'>'>&
-S ,Tll!
Hvoaa w v h v h o l--lo ns^sxit U10S
Uj J'
01 418
ETHYL GASOLINE AND ALL GASOLINE SALES IN U.S. 1926 - 1951
Year
1926 1927 1928 1929 1930 1951
Ethyl Gasoline Sales in U.S.
79,315,600** i 288,484,450 - 527,803,050 1,241,416,050 ^ 1,854,505,900 1,970,389,463
All Gasoline Consumed in U.S.*
2( >9,075,858,000
9,437,188,000 /) { 10,698,787,000
/
13,549,879,000 ( 15,759,039,000
16,415,705,000
* Figures for All Gasoline Consumption reported by A.P.I. do not include-
111. for 1927,1228,1929.
Mass.,N.Y. for 1928.
..
N.Y. (Jan.through April) 1929.
''
N.J. (Jan.through June) 1927.
** This figure includes only Ethyl Gasoline sold from Sept, through Dec. 1926. The record of 1926 Ethyl Gasoline Sales is incomplete.
(3? ^ c- y * c
01419
Chapter VI An Appraisal of the Lead Hazards Associated, with the Distribution and
Use of Gasoline Containing Tetraethyl Lead* 1. The Nature of the lead Hazards
The development of a motor fuel containing tetraethyl lead rais certain questions in industrial and public health which have claimed an unusual amount of attention* In an early stage of the new commerci enterprise it became apparent that the manufacture of tetraethyl lead and the blending of the concentrated fluid employed in the preparation of the commodity known as Ethyl Gasoline* was an hazardous occupation which furnished unique opportunities for the rapid development of lead intoxication. The serious dangers of these manufacturing processes have no relation to the problem with which we are concerned in the present discussion. However, the initial confusion of the actual hazards of manufacture with the problematical dangers arising from the use of the finished fuel, has apparently persisted in many minds. Therefore the distinction between them must be made clear. )
Pare "tetraethyl lead is a heavy, colorless, oily liquid which is peculiarly difficult to retain within jointed receptacles and pipe lines. It is insoluble in hot or"cold water, but readily soluble in alcohol and acetone and miscible in all proportions with fats and oils. As might be .suspected from the latter property it penetrates the un broken skin of animals. Indeed skin absorption alone may result in the rapid production of acute illness and death in experimental animals From a purely physical point of view, the volatility of tetraethyl lead is low, but considered in toxicological terms it is dangerously high, since 'at ordinary temperatures air saturated with it* vapor con tains approximately five milligrams of lead (as Pb) per liter. This concentration is lethal for experimental animals (rabbits) in a few hours,^ a fact which demonstrates the ease with which tetraethyl lead
01 420
pen-orates the pulmonary epithelium. Under certain ccr.aitions, notably
in the presence of sunlight, tetraethyl lead is unstable, breaking down J
yield water-soluble, crystalline triethyl lead compounds. Slight agita+h
serves to suspend these fine crystals in the air, when in a dry state,
thereby producing a dust hazard which has the aualitv - unique among lead
hazards - of providing sharp warning of its presence, in that a very low
concentration of these substances induces irritation of the mucous membra with weeping and sneezing.
The dangers associated with the preparation and handling of i te
traethyl lead are fairly obvious, when these properties are recognized.
Unicrtunately, this information was not available when the manufacture of
the product was first contemplated. It is not strange therefore that
when the production of tetraethyl lead emerged from a laboratory scale
into an incipient commercial stage requiring factory facilities, cases of
-<Sp.
,
lead poisoning of the most serious type occurred, o3s^-ciated. vri-th the
sudden onset of cerebral symptoms and with a high mortality.
Without entering into an irrelevant description of the (Various Steps by which Ethyl Gasoline is prepared for the market, suffice it/to
say that the hazards of the manufacturing processes are inseparably asso
ciated with the characteristics of tetraethyl lead described above. The
hygienic problem at every point consists in the prevention of skin contac
with tetraethyl leaden the part of workmen, and in the maintenance of
conditions under which the vapor of tetraethyl lead is not present in
the air breathed by workmen. Because of the sharp localization of the
dangers, they are amenable to exact and adequate control; nevertheless
the potential hazards are great, so that safety is maintained only by
continual vigilance in the prevention of accidents a.nd in the avoidance
of careless practices. The hazards associated with the handling and use of the finishec
product, Ethyl Gasoline, differ both in quality and quantity from those
01 421
v-'hich lurk in its preparation. Nothing could demonstrate the difference in the magnitude of the potential lead exposure of the two sets of condi tions- in a more pragmatic manner, than the failure on the part of Ethyl Gasoline to produce a OEBfftet substantiated case of lead intoxication in the the nine and a half years of its continuous use, up to the present (July, 1932), in certain parts of the United States, This basis of dif ferentiation is the more significant when one considers that the hypo-thet-
V.
ical opportunities for the absorption of lead, as a result of the distri bution of Ethyl Gasoline, are so. varied and so widespread as to defy regu lation. But there are other points of difference which have not required the test of experience for their recognition. Ethyl Gaaoline contains tetraethyl lead in amounts so small that the solution has lost the essen tial toxicological properties of tetraethyl lead. Thus, whereas tetraethy lead alone, or in high concentration in gasoline, is absorbed through the skin rapidly, its absorption is retarded greatly by dilution in gasoline. Indeed we have been unable ^to obtain evidence of appreciable lead absorp tion through the skin of experimental animals - after their prolonged expos ure to concentrations of one part of tetraethyl lead per thousand parts of gasoline, by volume. ' The importance of this fact is two*'fold. Not only does it indicate the improbability of the ,absorption of lead "out of
& Ecotnote s Among the thousands of persons .in the United States engaged
in the handling of Ethyl Gasoline or otherwise exposed to it3 possible
dangers, f-sw e r- thaw-'1- on a -kundr od cases of real or supposed injury, have
come to the knowledge of the author. Host of these have had no relation-
ship.to lead absorption. Only three have hdw<*.
Sgggsiijgf oi-sm-
re-sembl&nce to-caaaa--&-1 sab---eatitan,~tjtr"bo pegarAsd as
abJUu Gartful -ot-neb/ of tfteru cases fa-il'edrlTi each instance to ost>abli-3a-
a>-aatisfnctnrv basis for t^0
Gasoline on the part of persons vho come in contact with Ethyl Gasoline,
bn c. it also establishes the certainty that any minute amount of lead
which might be absorbed would be unable to distribute itself in the fattT
tissues ana the nervous system in the manner characteristic of tetraethyl
lead v/hen absorbed at 9. rapid rate# An equally important effect of the
i
dilution of tetraethyl lead with gasoline is the elimination of the dange
vr
of inhalation of lead* to a very large extent. The difference between
the volatility of tetraethyl lead and the various gasoline bases with
ii
y, which it is mixed, is so great that approximately half the gasoline may
be evaporated before dotoo-tablo amounts--eS lead.axs found in the vapor.
>-- ^
A
l *-'*4
*;
It follows, ft?om this
that the vapors rising from tanks containing
Ethyl Gasoline do not contain dote-jwakc amounts of lead. However, this
does not mean that no tetraethyl lead is evaporated under any of the prac
tical conditions of handling and use or spillage of Ethyl Gasoline.
*
Although years of experience have not shown the existence of dan ger to the community in the use of Ethyl Gasoline, and although the qual ities of the fuel, as described above, explain this result in a large
{
measure, the potential hazards associated with the general dissemination of a product containing lead may not be dismissed lightly. A full oppre0 x cl m of the nature of these hazards is required for an understanding of the problem whflJH'^bhey provide for investigation.
Ethyl Gasoline is handled at refineries, bulk storage plants, filling stations, and in public and private garages. It is transported from one to another of these sites in tank ships, tank cars, tank trucks, barrels,and tins. In the United States and in Canada an overwhelming pro portion of this motor fuel is dispensed through filling stati on pumps. In England and on the European Continent, a large amount of gasoline is distributed in two-gallon cans which are filled by essentially automatic machines at refineries and at storage points. Large numbers of persons
(Le i 01423
come in contact with Ethyl Gasoline to a greater or lesser degree through
spillage, as an unavoidable result of the various meti'ods of distribution.
They also inhale vapors from tanks, hose lines and from surfaces on which
the gasoline is spilled. At refinery loading racks, at filling stations
and at other points where gasoline is handled regularly, the repeated
spillage of Ethyl Gasoline may bring about the accumulation of higher
boiling petroleum fractl ons, and of small amounts of tetraethyl lead, by
reason of their absorption into wooden platforms, or other surface mater^-
ials such as concrete, asphalt, gravel, cinders or earth. Under these con
ditions some porton of the tetraethyl lead is evaporated slcwl.y, and the
remainder undergoes decomposition. In either case, opportunity for inhala
tion cf lead on the part of persons in the vicinity may be provided.
though, no doubt, most of the accumulations are dissipated by frequent
f'AiUj hosing, or by rainfall./
-- d-jJ
,w
The sale of the gas line to the consumer takes it into the provinc-
of the general public where some degree of exposure to skin contact and to
r>
vapors may occur. Of much more importance, however, is the appearance of
/
a new Bet of conditions based upon the combustion of the fuel. Tetraethyl
lead is converted, thereby, into finely divided inorganic lead compounds
(chiefly lead bromide), which are deposited, in part, along phe exhaust :\
system, but which, otherwise, are discharged into the atmosphere with the-
exhaust gases of the motor. The extent of the accumulation cf exhaust
gases from many automobiles in busy city streets, and especially in poorly
ventilated areas where cars operat* in considerable numbers, becomes a
question of considerable importance. Thi3 aspect of the matter concerns
the entire urban populat on, but it develops a special significance in the
case of gasage mechanics. Garages, in general, are poorly ventilated.
Few of them, indeed, are equipped to maintain an adequate dilution of
exhaust gases, under the most favorable conditions, and, when doors and
windows are closed, in cold weather, ventilaU on is often negligible.
For this reason* through the winter months, many mechanics develop late
afternoon headaches from the absorption cf carbon monoxi. de. Their exposure
to lead in the exhaust gas cf automobiles burning Ethyl Gasoline is greater]
therefore, than that of any other group of persons in the community.
Further, the handling and the spillage of gasoline, the adjustment of car
buretors, and the repair of other parts of the car cften involve skin con
tact with Ethyl Gasoline and with lubricating oil which mgr contain minute
amounts of tetraethyl lead. The spillage and evaporation of gasoline may
leave behind the less volatile tetraethyl lead to be slowly volatilized
at a later time*or to decompose, and by so doing to add to the lead dust
in the garage. In the dismantling of motors the combustion products cf
tetraethyl lead may be encountered by the mechanic, and although these
cannot be absorbed through the skin, they may be a further means of con
taminating his hands, his clothing and his surroundings.' The-cumulat'rdn
od--lead dust within the garage., .as , a result-o.f--the^-er;factoris ," together _
V-- ithr'the' settTThg--o-
>
eamended by that, whicih^^eitranaLos f-rom~ therepair" of `electrical storage
hatt-erieSf,--the- use of paint g- arrdu g cTd'er and fr m such similar practices
whdnh_-A3te--ettri*ired- out1 c ommor.i7r"in--thrg'-'Tvpafr--of- nrjrttrrrtobii'es^ tT o th.eJ,ii i p
e must regara'h i
ii il uln
i.-.i irrkrd rni.ihy
~
^ .
. t'
- -A
f V-
I'-* **kr~S.
LA,.**
> Cne further point must be
iji n~b`i'
ij----- mrmitg nnri mired -mt~
-air
Zst,-
/ -J.1 -.A'.hS. _,c
-.d-ftu*
-*v --t-/ t- f- -
1 - J ^' *. ``-3 .1
f . ,,
*
.*
considered in a complete analysis of the
potential public health hazards cf the use cf gasoline containing lead.
The derosition cf lead compounds upon the highways, city streets, - in
short, upon the surface of the earth - may conceivably influence the
amount of lead breathed by animals and men, as well as the quantity incor-
/
^orated in and deposited upon vegetation employed as food.
01 425
.r.e uai i 'a iv - character of the lead hazards derived from the use of Ethyl Gasoline is based upon the methods of its distribution and use. The general magnitude of these hazards is dependent upon the xtenof the distribution of Ethyl Gasoline, the volume of consumption in a given area, and the period of time over which distribution and use have, extended, these factors being modified to some extent by the variations in the lead concentration in gasoline, which have occurred in various sections of the country. Accordingly a complete representation of the situation requires some attention to these details.
Ethyl Gasoline was distributed first in the early months of 1923 in Dayton, Ohio. A few months later it was on sale in Cincinnati and in the district around Dayton and Cincinnati. Thence its use wa3 extended to middle-western and southern United States, into areas represented most satisfactorily by the cities of Chicago, Detroit, St. Louis, Jacksonville, Atlanta and Savannah. The quantity of Ethyl Gasoline sold up to 1926 cannot be estimated accurately, but it was limited to this general area, and there was a steady increase in the volume of distribu tion during this time except for a period of almost a year beginning in May, 1925. At this time Ethyl Gasoline was withdrawn from the market, pending an investigation of the United States Public Health Setvice, though for various reasons its use was not interrupted in certain areas in which it first appeared on the market, - viz., in the cities of Dayton Cincinnati, Savannah, Jacksonville and Atlanta and their vicinities. The resumption of distribution in 1926 resulted in the rapid expansion of the area over which the fuel was used. This expansion continued until Ethyl Gasoline had become available in all parts of the United States. Table _J__ demonstrates the spread in the distribution in terms of the datesat which sale began in various cities of the United States. The duration of continuous distribution for these areas is also recorded up to the time of the observations which are to be described. The approximate quantities of Ethyl Gasoline sold during the years for which
tea 01426
TABLE
Period of Distribution of ~"thyi Gisoljne ir. irlous American Cities Up to October 1'3%S\
Locality
' .lyton, Oh 1' incin-'ati, O^lo
..- heeling, W.Va.
Chicago, 111. Detroit, Mich.
t. Lcnir, -o. lunsas City, Do. inneapolls,Minn.
Date of First D5 tribution
February 1923
April
1923
|} Summer 1923
| Autumn ; Autumn j Spring
1923 1923 1924
j Spring j Spring
1924 1924
Interval Discontinv gk'Ace
none
none
. .A
/f 25* -t -1 t?
same. same HP
1
'.M
Years of Continuous Distribution
6.7 6.5
3.2 3.2 3 3.2 3*2
il'-vaukee, A'is.
Spring
' a11imore, '.Id . amingfcon, D.C.
j Spring j Spring
Tin Antonio, Texas
Spring
amah, Ga. .tiunt-a, Ga. /acksonville, Pin.
Autumn Autumn j Autumn
ov/ Orleans, La, love land, Oho
j Summer Summer
hilndolph!a, In. oston, Pass.
Summer SUUBIBU
Denver, Colo.
Summer
Ian Francisco, Cal. Summer
Los Angeles, Cal.
Summer
Spokane, Wash. Tulsa, Okla. Mew Yorn City
Summer Summer autumn
1924 1924 1924 1924
1924 1924 1924
1926 1926 1926 1926 1926 1927
1927
1927 1927
1923
;-b tvaae 4\ snme
; -stwae :psame-
none none none
(
none none none none
none none
none
none none / none
y
7
3.2 3.2 3.2 3.2
5.0 5.0 5.0
`
3.2 3.2
0*2
3.2 O-- * > nA- * W )
u j) % Unt n4-f o 2.2
1.0
i
te 01 427
figures are available are shown in Table
It should be noted that
the general areas into which Ethyl Ga line was first introduced have
maintained the largest proportional and gross consumption.
The concentration of tetraethyl lead in gasoline up to 1926 was
maintained at three cubic centimeters per gallon - approximately one part
of tetraethyl lead in thirteen hundred parts of gasoline, by volume.
Since Hi at time, the lead concentration has varied in accordance with the
quantity required to bring the available gaaaline base up to a definite
standard of performance in a test engine, except that the amount intro
duced has not exceeded three cubic centimeters of tetraethyl lead per
gallon of gasoline. The average lead concentration by years for different
regions of the country may be seen in Table __.
A brief study of the contents of these tables is sufficient to
give a clear indication of the areas in which the greatest opportunities
for lead exposure have been provided. They also yield a graphic concep
tion of the,,proport ions of"the problem vhich confronts us.
It /is not to be supposed that the possibilities of danger in the
general use of Ethyl Gasoline
one unnoticed up to the present time.
On the contrary, numerous experimental inquiries have been carried out.
Thus the United States Bureau of Mines ' began an investigation of the
hazards assoc iate<u*ia&. the exhaust gas of autofaobiles employing Ethyl
Gasoline as a fuel, in the autumn of 1923, before the new fuel had devel
oped more than a localized distribution. The further investigations of
the Bureau of Mines'^extended,SJywHfj other phases of the question. The
/
United States Public Health Service studied the matter in 1925, and the
Ministry of Health of Great Britain ^critically reviewed the previous
experimental work and made further contrubutions to it in 1928. Each of the latter two governmental agencies acted under the guidance of its own committee of experts appointed especially for that purpose. Our own
01 428
*-3 >Mo*-3
CO
cCce^aD*t
CD ct o
O
pca
PcCWcDtt
Vo*O3Jr 3!
ct
O3OMP3X*" -cM9XPo P
ccPJtti 3cOOt PCD PM3
ct
a0g3(PS<~=Pp33Wy>*Mpc3a0s 9CD -p 33
P
H? t-**5 31--JiCS a<D
SP3P'
amP
*CtpO-1*Ln3pHOcj*
3t3cO*tr
"3n -T
O3 o
OPOPct CO
5cMP3Hct*t
cpcptt a
01
CO o
CO
o
CcnO
CD o ai CD o
O cn
OJ o
M -4 OO
O cn CD
o o
o
00
a M
o CD
o CO
o OOJJ
O a Mcn 4
-c4o o>
OoJ
M O
MMO
Cn o o o o
o cn
M 0 0 o
OMJ OJ oo
CO CO Ol o OJ Cn M M cn OJ
o CO
M to
CO o M OJ
Orf*I o
CO o
Ma> o
C D o
-M3 *CO o
0 0 o
OtoJ o
tOoJ CMD oo
M
-41
o
C O
OJ
Mo M
a> OJ CD co to -3 00 rf*
CO<D3J
ft c
CO o
MOJ
CO
cn o
cOnJ
Mcn to o CO
oa c o o
o
o
oo
o CO cn cn
cn cn
M
cn cn
Mto cn M-4 O J OJ M o 03
itei 01429
CB 5 *C4O h<-l p
5a45 cCt/J343 ct
oK{ a Wa 2. <*j
*2 M 3 p
3M P
CL 3
a
a >e> 3'-* 3CD MCO f0t 0D f3t
CL H
w ^o ca*
ct cr D ct v*
caCO>+ cr 3o
cn QD oO
mh^wCtDa 3M>
3 3* MHHM
MO 3
o
Q CO 3
P CO
CO
01
o
M
Mo
CO
o o to cn
Q9
tt
0
OO 3
0*10
CO 3
MO M O
OHttS
cr m 3* 3
MP O3 M<*4 c+
0O0
CO
01
>
Tn3 3o X a cat
9ppo
p3a oo xas
p
P3
OJ o
cton
o
* OJ rfk CO
-4 CO
cn
M
ca
to 4* to CO
0c0n
03
-0
oo
MH* ctr?f 03M!
3a v3j*
M
O
a3
0) ca
01
O
*1
Ot-t- o aco O cPo
O MO
M O I-- H c-t" (->
MO
rctt
3*
*O3 O3o3
CO
CO
3 CD
3 MO
M Pct
CoO
M WQ3
3 c3*t
cd
a 3O
p3 CO
01
o M CO
0 0*0 co i
DD M3
O Cmt3-D"*
Vwc3{t*M
occ3at P
CaO>
m t>ro
30*<3cj"t PMH oMOO3a H3O* CO
pco 01
co
O 'M OM
CO CO
<9
31 a
3O
O3 3 mi
t0*3
0C3O Hc*t o
ct 3 O
-=3-t M *M4(CWt
i3
3D M
MO cCcooO aPo
MM
3 9
M3
< P3
P3O
5
PCO
O M
3*
CD
3C
MO l!L 1*
0rfl0*fl 03
P O P M CD ca 3
MO M O O M cf O
ao3
ct
9
at* y3
3ct
M CD M P
ct
CO
cn
9
ct CD CL
Cc
ct P
ct
p
TABLE VA
Average Tetra-ethyl Lead Content of Ethyl Gasoline In Various Areas Of The United states from 1926 to 1929.
Distribution Areas of United States-
Dew England ^tntes and
New York
Pennsylvania
.tlantlc Coast States
Average Tetraethyl Lead Content in Cubic Centimeters per Q
1906
1927
*1 niJ no
1929
* 1w 1.7
1.1 1....0............... 1,6
1.2 1.2
l.'i
0.9 1.65 1.5
Ohio
0.9
Kentucky, Georgia Florida, Mississippi. , 1.0 md Alabama
Louiaianna, Arkansas
1.2
i
i
1.7
0.6
1.1
\ i 1.7 1 1----------
t 0.9
*
1.5 1.9 1.3
Central States
"exa s, ^ ilaho-va
:ocky ^ount&n States
Tiest coast States
^L #A5 l.~ 1.3T'""
mm
1.3
1 1
I 1.7 T
i i .0
i
0.7
/
;2,s i
;
j2. G :
i '2.4
.
*> m \j
2.0
2.7 . I
1
; 2.4
.1
X1 *w5
01 430
observations, beginning in 1924, have'dealt with several aspects of the
problem. First in 1925, and successively in 1926 and 1927, we investi
gated the lead exposure of persons engaged in the handling of Ethyl Gaso
line and in the repair of automobiles using Ethyl Gasoline as a fuel.
These have been described in detailed reports / to the United States
Public Health Service, and to the Ethyl Gasoline Corporation, whose
officials sponsored the work. The fourth of such field' invewtigations
is the subject of the paragraphs which are to follow, I shall not discuss
the methods or the results of the earlier experimental work carried out
by ourselves or others, except to point out that none of them disclosed
evidence of danger either to the health of persons engaged in the handling
of Ethyl Gasoline or to that of the general public. In the light of the
which they have furnished, there can be little doubt that some
of the hypothetical hazards which have been described, do not exist.
However, I shall disregard such considerations for present purposes an<f
shall confine myself to the presentation of observations which were made
iri the autumn and winter of 1929-30, employing certain items of our earlie
data only for purposes of comparison. ,~^hese observations had--the -purpo-se
/
,an answer to one question. - Is the magnitude of lead expos
ure arising from the combined hazards of the use of Bthvl Gasoline such a.-.
to iring about appreciable lead absorption on the part of any group of
individuals in th
unityjr?j. m terms oi ,he facts presented ir. pr*8?!;
pages of this 'volume, this Question should be answered adequately through
the study of groups of persons who have had the severest and longest
exposure to such lead hazards. Accordingly, groups of subjects have been
selected for detailed study of the effects of their occupation upon their
health, and upon such physiological processes as are specifically influ
enced by a significant increase in lead absorption*
01431
2 . The Selection of Experimental Subjects.
Table ^ sho^s the numbers and types of subjects selected, together with th* locality in which they were employed* The three croups of workmen who experience allvmeans of exposure to the possible hazards associati with the use of Ethyl Gasoline are adequately represented by fifty-six filling station attendants, fifty tank-truck handlers of such gasoline, and two hundred and one garage mechanics*
The filling station attendants were chosen with attention to several matters: men who had been employed as subjects previously, who hid been handling Ethyl Gasoline for the longest period of time, who had handled gasoline containing the highest concentrations of tetraethyl lead, and who handled the largest amounts of Ethyl Gasoline daily, were especially desirable. Until May of 1935 a small metering device containing a liter can of Ethyl Fluid was used on filling station hose lines to treat gaso line with the lead mixture as required* This method of distribution brought about some degree of exposure to concentrated tetraethyl lead on the part of filling station employees* Therefore, those subjects^whose employment dates back to ih is period have had opportunities for 7the ab sorption of lead from this source* They were particularly favorable sub jects for the determination of the maximal lead haxards associated with their occupation* It has been pointed out previously that in the cities of Dayton, CincSavannah, Jacksonville and Atlanta there had been no interruption in the distribution of Ethyl Gasoline a. nee its introduc tion on the market* Furthermore the employment turnover of filling static attendants had been so slight that i.t wss not difficult to find a satis factory group of men who had dispensed Ethyl Gasoline since it was first marketed from their stations*
The consumption of Ethyl Gasoline had been greatest in certain central states represented by the cities of Dayton, Cincinnati, Detroit, Chicago and St. Louis* In these cities individual attendants at certain
TABLE DISTRIBUTION OF SUBJECTS ACCORDING TO OCCUPATION A T> LOCALITY
Locality
Number of
Number of
Filling Sta Tank Wagon
tion Atten Handlers
dants Exposed Exposed to
to Ethyl Gas. Ethyl Gas.
r/1 - i' 56 #101--'150
Number of Garage Mechanics Exposed to Ethyl Gas.
301---'50l
Number of
Number of
Barrel Fillers Barrel Fillers
Not Exposed to Exposed to
Ethyl Gasoline Ethyl Gasoline
r201 -f227
* 251 - ,7272
Cleveland Ohio
Cincinnati Ohio
11
Dayton Ohio
11
Chicago Illinois
6
Detroit Michigan
1
St. Louis Missouri
11
Kansas City Missouri
c; >, Minneapolis
''in' esota
Jr; cksonvill 3 Florida
6
Atlanta Georgia
10
Milwaukee Wisconsin
Boston Mass.
Wheeling W. Va.
New York New York
Total
56
1 10
9 11 ,
r> 8, 1
---- 6 4
50
ggrl 01433
15 13 15 13 12 48
( 5 5 5: 5 5 50 10
201
27 27
22 22
well located filling stations had handled more Eth.. 1 Gasoline than had similarly employed iipteui in any other part of the country.
The tank wagon handlers were selected on the basis of the severity
and length of their exposure to Ethyl Gasoline. Twenty-seven of then
had served as subjects for study in 1927. Thus a direct comparison of
the results obtained on the two occasions was made possible.
The garage mechanic group -is* made up of one hundred and nine per
sons who Nhav\ been working on cars which used only Ethyl Gasoline, and
an additional ninety-three who have been repaining cars of ^ich a high
percentage used such gasoline. Effort was made to find all the mechanics
in the United States who had experienced prolonged exposure in garages
in which all the cars had used Ethyl Gasoline exclusively over a period
of several years. Ten members of the group had been employed in a public
service garage in Dayto n Ohio, in which Ethyl Gasoline had been the
exclusive fuel from 1923 to the time of the present investigation.
Thirtys-nine subjects had had from three to six years of daily repair
work cn cars in vrhich Ethyl Gasoline was the exclusive fuel. The entire
group was composed of subjects who had been emplcj'ed in continual repair
/
work cn fleets of cars.
From every point of view the subjects selected for examination
had the maximal opportunity for exposure to lead arising from their
respective cccupajuafifijt rel ationships to Ethyl Gasoline. The garage me char
ic 'group is entitled to special c d ns'ideration since it is composed of
men whose occupati. on combines all
the potential lead exposures
derived from Ethyl Gasoline in an intensified form, together with certain
other lead exposures which are not related to Ethyl Gasoline. It is for
this reason that it vras expanded to a large number at the expense of the
less exposed groups.
The barrel-fillers referred to in Table
vrere included among
the subjects chosen for the present investigation for a specific reason which will appear later. The data are available through a fortunate
tm 01434
combination of circumstances. Several years of observation of persons vr.ose occupation involved considerable exposure to gasoline ^aroused our interest in the influence of repeated and prolonged gasoline absorption. Accordingly search was made for a group of subjects whose exposure to gasoline was severe and uncomplicated by other factors. In the summer of 1923 such a group was found in a refinery in which large quantities
/
yd B 01 435
of gasoline were put into fifty-gallon barrels for transportation.
The barrels were filled in a specially constructed room provided
with forced ventilation. Despite the magnitude of ventilation the
concentration of gasoline vapor was hi,,h enough to be immediately
disturbing to one who was not accustomed to such vapors. In
addition, the skin, clothing and shoes of. workmen were frequently
and almost continuously soaked with gasoline. The barrels were
lined up In a double row along corresponding rows of pipe lines
each of which was. provided with an elbow, a flexible hose and a
float valve. Each hose line with its valve w s inserted in.'a A
drum, and the valve was opened. Gasoline flawed in at considerable
pressure until the level of liquid in the drum released the valve,
thus closing It, Occasionally the valve refused to work properly,
at which time a stream of gasoline rose from the drum and thoroughly
drenched ^ny workmen In its immediate vicinity.
The number of men engaged in filling and handling the drums
of gasoline was small but the severity of exposure was such as to
give excellent opportunity for the detection of any effects which
might result from gasoline absorption. These men were carefully
exam! ;Od in a manner which will bo described later, and several
types of laboratory data were obtained, including the lead content
; of the urine and faeces ("TWa.<*-**
' ""
Xs7~(tai
g ( r' (t u` -i.u U*.
.4. ` V *'* '* ** ' 1 <^
fhortly after these examinations had been completed the
refinery in question embarked upon the distribution of hthyl
Gasoline. The latter was handled in the manner described auove
for ordinary gasoline. Inas ouch as experimental evidence indi-
/
cated that the hazards of lead absorption from skin contact and
mna.at^n of vapor from gasoline containing tetraethyl lead were t_oally negligiole, no fears were entertained as to the consequences of the additional factor of a low ccncentration of tetraethyl lead. Never theless* this constituted a unique situation from the point of view of severity of exposure. Therefore it was considered imperative to obtain Information which would show whether or not an appreciable lead absorp tion was occurring in the men. Accordingly, at the end of a period of six months, during which Ethyl Gasoline had been handled daily in this manner, the workmen so employed were examined, and samples of their excreta were obtained for analysis. In th^second group made up of v.venty-two men, there were ten who had been included in the first set of examinations.
Except in the case of the barrel-fillers, comparable groups of subjects unexposed to the potential dangers of Ethyl Gasaline, were not obtained for study. At the time of the present study of filling station employees, tank wagon handlers of Ethyl Gasoline and garage mechanics, there was no area of the United States in which the selection of entirely unexposed subjects could be made with precision. The use of leaded gasoline had increased rapidly, so as to involve all parts of the country* Furthermore the employees of a large proportion of the major gasoline distributing companies were handling Ethyl Gasoline. Therefore it was necessary to rel on information obtained prior to the general distribu tion of Ethyl Gasoline, for comparative data on similar groups of subjects independent of the factor of leaded gasoline. Fortunately, such data were adequate. Furthermore, repeated observations had been made on the
/
same individuals under conditions of continuous exposure. These success ive findings furnish a means for the discovery of progressive effects of
3. Methods of Study
'?
The facts presented in 391 earlier chapters HlIt Til wnT inii would
seem to establish the relationship between lead excretion and lead ab-
Thus it seems certain that the most specific
evidence of the magnitude of lead exposure and absorption is to be found
in the rate of lead excretion, in which the faecal excretion is a measure
of ingestion on the day preceding the collection of the sample, while the
urinary excretion indicates the magnitude of lead absorption. Neverthele
considering the importance of the matter at issue, we have considered it
desirable to leave no stone untamed which might yield additional informa
tion. Accordingly we have searched for clinical evidences of lead absorp
tion with the same care that we have applied to the collection of accurat
analytical data. The general clinical methods were similar to those
employed by J. P* Leake and his associates and by ourselves in other
investigations of the same question. A comprehensive neurological exam
ination constituted the only significant addition to the prevfous tech
nique.
/>
Care was taken to obtain all the information possible from each (
subject, and to recor'd such information in a uniform manner. Tor this
reason cards for recording data were provided as reproduced below and the
work was divided among four physicians each of whom carried odt the same
type of observati**wan each subject. So far as possible quantitative
information was obtained in the physical examination, but without the
subordination of clinical judgment to the necessities of statistical
comparability. Thus while it was recognized that a statistical study of
all the data was desirable and necessary, sound clinical diagnostic
methods as applied to individual cases were regarded as of greater impor
tance, in determining whether or not any evidence of lead intoxication
had appeared among the subjects. As an example of this point of view,
each subject was tested for evidences of atrophy or muscular weakness
01 438
HISTORY SHEET
No. - Name ` Marital Residence
Examiners Initials -
Age
Race - -
Color
Ages Children
Miscarriages
Dato Birthplace
Stage
Other places lived in, with dates
Place of Employment
Length of present employment and previous employment at same work
Type of work (exact description of nature and conditions)
Previous Occupations
Dates
Previous Lead Hazards
Painting
Plumbing
Carriage, Auto or Car
Type Casting
Smelting or Refining
"Treating'' Refineries
Storage Bax. Mfg. or Rep.
Lead Burping
Printing or Lithog.
Mining
1
Foil, Solder, Babbit,Mfg.
Dates
Previous Lead Hazards
Dates
Brass Founding
Soldering
Enameling
Paint Mfg.
R ottery
Glass
Polishing Cut Glass
White Lead
Rubber
Garage
Telephone or Telegraph Rep.
Automobile Ov/ner
Gasoline Used
Repair Work
's
Prev'ous Illnesses with dates and exact descriptions (no leading questions)
Tbc. Malaria
Rheumatism
Lues. Gc. scarlet Piph.
Tonsillitis
Frequent Colds
Convulsions Heart Disease
Significant Family History:
Typhoid Asthma
Remarks:
HISTORY SHEET (cont)
No. Examiner<3 Initials
Sleep
Hours in Bed
Dreams
Restful
Bowel Movements
Frequency
Hour
Tendency to Constipation
Cathartics
Tendency to Frequent Stools
Date
Disturbed
Teeth Usual Weight General Health
Brushing
V-hen
Best Weight
Last Trip to Dentist Recent Loss Weight (seasonal?)
Rate of Tiring Headaches
Time
Recent Change
Eye Trouble (character and time of development)
Taste in Mouth
Character
Time
Pains in Joints
Swelling of Joints
Muscular Strength
Cramps in Muscles
Pains in Belly
Character
Frequency
Appetite
Different Meals
Digestive Disturbances
Nausea or Vomiting
Skin Infant!on or Eruption
General
Hands
Polyuria
Nocturia
Frequoncy
Nervousness
General Weakness
Other Complaints
Right or Left Handed
Loss of Strength in Arms or Legs at any time
Shooting pains
Numbness or tingling
Loss of Sensation
01 4 /'-t nu
PHYSICAL E.XAMI RATIO?? SHEET
To. Examiner's Init.
General Appearance Nutrition Pulse Temperature
Color of Skin (exact)
Date
Age Height
Pos ture Musculature Blood Pressure (seated)
Condition of Skin
Weight
Condition of Skin of Rands
Cornea
Sclera
Nose
Throat
Glands
TonsiIs
Mucous Membranes
Lars (structure)
Teeth Lead ` 'ine (Apoearance and Location)
Go ms
Pyorrhoea
Heart Apex Rate After 25 hops 2 minutes after
R C I) r .s .d .
x
tof
Lungs: K.I. - R. L.
Chest Diagnosis
s
D.E * R y
/
L.LB. -
(
Abd omen Liver hectum
' Spleen Genitalia
Kidneys
Upper Extremities Diagnosis and Remarks
Lower Extremities
(j | 4 4 s
NEUROLOGICAL EG AM IN ATI-:) fl
Cranial Nerves I Snell
Examiner*9 Init.
II Sight
R - 15/ L - 15/
Condition Correction
111, IV, VI Extrinsic Eye Muscles
Pupils Visual Field
Reflexes
V Motor
Sensory
VII
VIII Audition
R L
IX, X, Xll Speech
XI Neck
Facies Equilibrium
Swallowing Shoulders
Tongue
Jprer Extremities
/
Tonus
(
Atrophy
Ataxia
Tremor
Mus cul ar Power
Dynamometer
Stereognostic
Epl CritiC "mmmrnm**
Protopathic
KinaesthetiC"
Thermal
Vibratory
Nerve Trunk Tenderness
Lower Extremities
Reflexes
Pharyngeal Biceps Triceps Radial Patellar Achilles Epigastric Abdominal Cremasteric Plantar
Gait
LABORATORY SHEET
No. URINALYS IS:
Examiner*s Initials
Date
Quantity
Sp. G.
Reaction (Methyl Red)
Albumin
(Heller's)
Sugar
(Pehlings)
Acetone
(Nitroprusside)
Microscopic
BLOcP: White Count
Red Count
Heat and Acetic Haemoglobin (Dare)
Differential (ICO cells); Poly. Neutrophlles
Poly. Eosinophiles Poly. Basophilea Lymphocytes
Endothelial Large Mononuclear
Transitional
Abnormal
Stippling per 50 fields
Polychromesia
y
INALYTICAL EXAMINATION:
Accurate st'ifLlllient of '.curs required for collection of;
Urine
Faeces
Constipation
Diarrhoea
Cathartic (type)
Wt. dish + dri3d faeces Wt. dish + ash Wt. dish
Wt. dried faeces Wt. ash
lead
Mgs. Mgs./gram of ash Analysis No.
URINE
Volume
c. c.
Lead
Mgs.
Mgs./liter
Analysis No.
by palpation and by opposing the examiner's strength to that of the corresponding muscle group of the subject. But for the purposes of statistical comparison of a single neuro-muscular factor, the grip was tested by a hand dynamometer. (The same instrument was employed through out the tests.)
Measurements of the blood pressure of each subject while seated, were made with a standard manometric apparatus.
A fresh specimen of urine was obtained from each subject and examined at once for its reaction, the presence of albumin, and sugar. Microscopic examination of the urine and a test for acetone were carried out only when indicated by chemical abnormalities or
/ (
014 4 4
l abo r at o r y sheet
:i o. URINALYSIS:
Examiner's Initials
Date
Quantity Sp. G.
Heaction (Methyl Red)
Albumin
(Heller's)
Sugar
(Fehling's)
Xcetone
(Nitroprusside)
Microscopic
BLO ,>D: V/hite Count
Red Count
Heat and Acetic Haomoglobin (Dare)
Differential (100 cells): Poly. Houtroohilss
foly. Eosinophiles Poly. Basophilsa Lymphocytes
Endothelial Large Mononuclear
Transitional
Abnormal
Stippling per 50 fields
Polychromasia
M-.-m *t r ^ v ? j
Accurate statement of C**i T* C j T ^ G 'Ll ** I" r' C*
Urine
Constipation
Diarrhoea
FAECES
<1 w dish + dri3d faeces
771. dish + ash N't. dish v.t. dried faeces w t. ash
lead
I'gs. Mgs./gram of ash
Analysis No.
101445
^^
Fa sees
Cathartic (typ
URINE
Volume
c.c.
Lead
Mgs.
Mgs./lite
Analysis No.
,
by palpation and by opposing the examiner's strength, to that of the corresponding muscle group of the subject. Butyfor the purposes of statistical comparison of a single neuro-rauscular factor, the grip was tested by a hand dynamometer. (The same instrument was employed through out the tests.)
Measurements of the blood pressure of each subject while seated, were made with a standard manometric apparatus.
A fresh specimen of urine was obtained Irom each subject and examined at once for its reaction, the presence of albumin, and sugar. Macroscopic examination of the \irine and a test for acetone were carried out only when indicated by chemical abnormalities or
/
014 4-6
by suggestive clinical findings.
Erythrocyte, leucocyte and differential leucocyte counts ct >. di. C'.t~
were made as a routine^ only on the barrel-filler group of subjects.
Otherwise, such procedures wore followed only when indicated for diagnostic purposes.
Haemoglobin determinations were made on each subject by means of the Dare haemoglobinometer. A single instrument was employed for all observations, and all readings were made by the same ob server.
Blood smears were made on all subjects, and were examined for stippling of the erythrocytes by the method previously des cribed.
Samples of urine and faeces were obtained from the subjects , fc, 's
for the determination of their lead content. The collection and.
the analyses were carried out according to^the methods detailed
in Chapter II. In a f^w instances no samples were obtainable.
A further small number of Samples were lost in transit and in
/
process of analysis. With these few exceptions, the analytical
results were obtained without difficulty.
. -V U -L
4
/
Ho caseintoxication was found among the subjects.
In fact, no combination of symptoms and'physical findings was
suggestive - of lead Intoxication. Such evidences of lead absorption
as are common among lead workers were conspicuously absent, of
special negative clinical importance v/ere the complete absence of
lead line, the lack of significant microscopic blood changes (stippling)^ and the striking^infrequency of vague symptoms of ill health. /Tn this nl fnaM^ni1 any evidences of significant load ab sorption as a consequence of exposure to Ethyl Gasoline must be
fjyi 014 4 7
sought in the data on the excretion of lead. The clinical and analytical data for the groups are pre
sented in a series of tables, in which the factors are set down in the exact manner of the statistical study except as otherwise noted.
/ Table 5 shows the classification of the subjects according to the duration of their exposure to Ethyl Gasoline. One-half of the filling station attendants and a little less than half of the tank wagon handlers had been exposed for five or more years, while sixty-nine percent of the garage mechanics had repaired cars which used Ethyl Gasoline over a period of three years or more. Whether or not it has any bearing on the problem at issue, the occurrence of previous industrial lead exposure among the subjects may not be ignored. Information on this point obtained from the occupational histories is shovm in Table U . Here it may be seen that a large proportion of the subjects had been employed in trades which involved some opportunity for lead ab sorption, prior to their exposure to Ethyl Gasoline. None of the garage mechanics may be regarded as free from the possibility of lead expo^mjg^in their occupation, apart from the factor of Ethyl Gasoline. However, it may be assumed that few garage me chanics have more than a slight lead exposure in the course of their normal days work. Small jobs of soldering and painting, and the occasional repair of a storage battery have not produced a noticeable occurrence of lead intoxication among garage mechanic One tank wagon driver and eight garage mechanics had been employed at some previous time in hazardous lead trades, in which their exposure had not been severe either in quality or duration.
'tsrr r
Period of Exposure In Years
1.1-0.25 0.5
1 2
3 4 5
6
Totals
Distribution of Subjects According to Period "of Exposure to Ethyl Gasoline
tjr-,
---------------- * ---------------
Pilling Station Attends nts
Number jy
< y jy
Tank '>* agon Handle rs
Number < jy jy sy &
Garage Mechanics
Numbe: * ^ -Or
Q J&'
BdEXpl Fillers1^
Not Exposed to/
Ethyl Gas^iiarb
Number
jfnf 0V
/
'>)
Barrel Fill* Exposed to
Ethyl Gasoli
Number
<
4 16
18 82
i2
12
26 13
/
A
jy Jc
jy *r
48
36 18
sy -
6n 16 28 23 41
48 19 38 16 32
98 49
22 11 12 6
.6 oA
o)
-0'/ /
_
.... J ._
y jy y
-e -c -o
10 18 56 100
6 12
50 100
73
201 100
sx
or/
s\ \ 0 -o J
7
y ~o *
22 100
. -O
A ' V*
2<s
01449
TABLE
DISTRIBUTION OF SUBJECTS ACCORDING TO HISTORY OF PREVIOUS EXPOSURE TO LEAD OTHER THAN ETHYL GASOLINE
v-jscrlption of
Us ad Exposure
Filling Sta tion Atten dants
Number
%
None
20 36
uestlonable
8 14
Slight
28 50
oderate 3evere
sr JT -4)
Total
56 100
Tank Wa, on landlers
Number f.
Garage Mechanics
Number #
Barrel Fillers 3arrel Fii; lot Exposed to Exposed to Sthyl Gasoline Sthyl Gaso.
Number %
Number t
18 36
sr' 15
55 10 46
10 20 30 15
8
30
6 27
21 42 163 82
3
11
6 27
12 84 1
X & zf' JS' jy-
50
100 201
100 27
4
sy jr
100 22
jzr
10
vf
-
^ . * : L **
A
.`
-
hi. /
*-
-rnt.
>'
t-
1
C:
1 01450
The distribution of the subjects according to age, seen in
Table "i ^ is significant only in that it demonstrates the inclu
sion of widely varying age groups among the subjects under inves
tigation.
Tables X
and rA
represent the frequency of occurrence of
certain subjective and objective abnormalities which are indicative
of the presence of low grade intoxication. Amon^ the symptoms,
attention should be called to the high incidence of headache among
the garage mechanics* The histories clearly suggested carbon
monoxide absorption as the background of this complaint. Irrita
tion of the skin of the hands due to frequent contact with pe
troleum products showed a high frequency of occurrence In all the
groups. Pallor was most prominent In the garage mechanic group
and in the barrel fillers not exposed to Ethyl Gasoline. The
explanation of this s-ltueHsien in the latter group Is undoubtedly /'- <
chrerrfco the fact that this group was examined in the sun er when />"
the inhalation of gasoline vapor was at its height. These men
showed a correlative diminution in haemoglobin and a high average
stippling
further indications of blood changes resulting from
their .exposure. Comparison of the remaining items with the results
of similar observations on various groups of subjects unexposed to
Ethyl Gasoline fails to yield any significant irfoi ma ci'n . (Cf.
Tables and on pages ft andEi-)
In Tables t , : , and , the findings as regards blood pres
haemoglobin of the bloody and stippling
of the erythrocytes are recorded. No mean values were computed for
the occurrence of stippling by reason of the high proportion of
negative results. It may be seen from the tables that no sig
nificance may be attached to variation In these matters In re-
ri 01 451
TABLE 7
Distribution of Subjects According to Age
Age In Years
Filling Station Attendants
Number
a?
Tank Wa gon Handlers
Humber *
Garage Mechanics
Humber it
IS-19
sf
or
or
94
JO-24
3
5
0"' &r 32
16
35-29
12
21
15 30 33 17
0-34
12
21
7 14 34 17
'5-59
5
9
10 20 42 21
24
5 10 26 13
-5-49
5
9
5 10 11
5
-0-34 -." -59 : 0-n-r 5-o9
47 7 13
6 11
'V sr'
3684
1 2 4 - Oi.
3
6 r2 i
1
o
/ & AT
Jotal
56
100
50
100
201
100
Barrel Fillers Hot, Exposed to Ethyl Gasoline
Nu -,ber
Barrel Fil Exposed to Ethyl Gaso
Number 4.*?f
P"" O'
AT
CK 1 5
6 23
29
5 19
6 27
5 19 o-* 23
29 7 31
14
2S
14 o0
-O ,0 Vrs.
i 26 100
00
15 15
22 100
Jean
i 1
.t o cable -ryor of "ear
40.3 + 1.2
33.0 + 1.1
i
34.3 + 0*5
-
\
3,7.9
39.1
i
+ 1.2
+1.3
Standard Oeviatior
13.07
11.28
9.83
3.73
9.34
TABLE
Distribution of Subjects According to Certain Subjective Abnormalities
Type of
56 50
Pilling StatJ on Tank Wagon
Attendants
Handlers
Abnormality Number
,.4.
Number <
scent Loss
:f Weight
3
6
24
201
Garage Mechanics
Numbe
74
27 Barrel Fillers Not Exposed to Ethyl Gasoline
Number y
sr
/
22
Barrel r'ille; Exposed to Ethyl Gasolii
Number <
O'" jzr'
Increased
/ondency to
~ -.1 *--> - f*a r-, .a
1
n
1 uO* 3 4 2
7
XK <<r'
"roquent 'eadache
6 10
2 4 V * 15 2
7
15
Iocasj onal
bdcminal
'r-'mio
2
4
2 4 12 6 1
4
15
Iccasional "i restive Mo turbance
//casional
euritic mo to s
3 "3
*
5
,5
ow 4 4 2 1
4
sr
73
P"
-3"
15 15
'orr General 'ealth
-*T
&
.0'
rsJ\- - 1
1
(T
-0
0 .a
TABLE -1 Distribution of Subjects According to Certain Objective Abnormalities.
Type of
Filling Station Tank Wagon Garage
Attendants
Handlers Mechanics
onormality Number
Number < Number <
nder-
.ztrition
4
6
2 4 84
al lor
2
4 ]2
4 23 11
rritation
f Skin of
znds
11 20 12 24 56 28
3a d ine 0" 0 jy O' Or'
erve Trunk
?nderneas
6
n
17 34 17 8
remora
20 .36
21 42 71 35
onsory is turban 's 1 2 3 6 *A* 2
tens or ires is 1 o 3 6 1 1
trophy of
tper Extrerr
zies
1 2 4 3 914
jncrnali tie s
' Visual
ield
2
4
12
| i
e- ! ,o
rinary cidity 20 39
15 33
92 45
Ibuminuria 0
0
49
63
Barrel Fillers Not Exposed to Ethyl Gas.line
Number
>0
4 15 8 30
16 60 jy -O' 3 11 8 39
r> cr
jy
jy sy
i
..o' i o
14 AT jy
Barrel Filler Exposed to Ethyl Gas dint
Number
%
2 10 2 10
12 54 jy jy l5 9 41
2 ,10
( JOT J&r
15 '
2 ' 10
16 73 jy yr
TABLE 10 Distribution of Subjects According to Systolic Blood Pressure
3lood Pressure Headings
Pilling Station Tank toagon
Attendants
Handlers
Number
irf
Number
if
/:
Garage Mechanics
Number
Barrel Fillers Barrel. pii:
Number
< Number
80-39
,0 jar
sy
11
O'
.0 0-
90-99
1
2
o- jar'
4 2 >o-
s'o 1
c
100-109
3
5
24
16 8
s& Jar'
110-119 10 18 16 32 52 26 4 15 5 22
120-129 18 32 10 20 62 30 7 26 7 32
130-139
9
16
7 14 36 18 8
30 4
18
140-149 150-159
7
12
.4 8 18 9 5
13 4
18
2 4 o 4 5 21 4
-0-
160-169
3 6 4 22
7 -Or
-O'
170-179 130-189 o Information Total
1
' / 3
2 4 5
56 100
JJ .or O' -Q X)'
2 4 2 10
4 ____
.1 1 0
50 100 201 10 3 27
JOT o0
100
1 ,-G"
22
5 -O' -0*' 100
*f n
Probable ^rror jf Mean
Standard deviation
130.1 1.7 17.86
T .l o O .4 j
1.9
19.30
125.7; 1
1 0.7
i 15.10i
iO-i.3 il.8
1
13.59
.'.29.1 1 2.3
15.86
nrO
01 455
TABLE Distribution of Subjects According to Haemoglobin in Blood
lemoglobinometer Pilling Statior Tank *'agon
Attendants
Handlers
?ading (Dare)
Number
iif'
Numbei s'
50 - 67
& er" 1 2
Garage
Barrel Fillers Barrel Fill
?,{echanics Not Exposed to Exposed to
Ethyl Gasoline Ethyl Gasoi
Number onf Number .W Number
sy er 9
33
15
63 - 75
15 27
4 8 13 6 12 44
15
76 - 83
' 21 37
12
24 77
39 4
15
8 35
34 - 91
15 27
27
54 92
46 1
4 11 50
92 - 99 Information
59 & Jd'
5 10 15 7 .er
1
24
O1
er 1 5 4 jar
otal
56 100
50 100 201 io<!) 27 100
22 100 s
"ean
30 9*
85.0*
84.5*-
71.1*
83 .3*
frobable error of Fean
+ 0.67
+ 0.59
+ 0.24
+ 0.92
+ 0. y 1
standard deviation
7.39
6.1-
5.09
6.98
6.34
* All means calculated on a wider grouping of readings.
i
01 4 E
Distribution of Subjects According to Stippling of Erythrocytes
lumber of jtippled 'ells Per ;Q Fields
0
1
2-5
6-10 11-20
21-32 :>tnl
Filling Station ri'ank Wagon Garage
Attendants
Handlers
Mechanics
Number eAi Number 4. Number 4
Barrel Fillers Not Exposed to Ethyl Gasoline
Number
36 64
33 66 159 79 7
26
6 11
a 16
19 9
4
6 11
5 10
17 8 6
22
35
24
533
11
35
12
1 14
15
24
12
XT' & 6
22
56 100
50 100 201 100 27
100
Barrel FilJ Exposed to Ethyl Gaso]
Number
4
21 95
15
' J0
& -6
jer 0
sy -0
22 10
lation to Ethyl Gasoline exposure, since practically all the
findings are within normal limits. In the case of the systolic
blood pressure, which is used here only as a general moans of
pointing out the probable existence of vascular disease, the high
readings are sharply correlated with age, and hence have no sig-
p. v ? CI`w
ni^icance. The low results are of no
frequency than is
common among corresponding groups of presumably normal persons.
The haemoglobin determinations show only a high frequency of low
results among the barrel-fillers unexposed to Ethyl Gasoline, as
previously pointed out. Likewise the only point of interest in
Table
iar the relatively high results among these same barrel
fillers. Apparently, exposure to gasoline vapors may produce
blood changes, including the appearance of stippling.
Tables
and
record the observations on the strength
of the grip of the left hand and right hand, respectively, of the
subjects. The frequencies and the means do not show any very
striking differences between the groups, except^fcu--irgatg that
the barrel fillers as a whole, gave a somewhat weaker response to
the test.
The facts obtained from the analysis of t:he excreta of the
subjects ane jDg^gented In Tablss ,, , - , and . A survey of
the tabulated 3'esults shows that a few high results are scattered -
irregularly through the data.----- - --
~*Where these occur in faecal samples it may be assumed that
they have resulted either from contamination of the sample or from
the ingestion of unusual amouts of lead with food material, and
that they have no necessary or probable relationship to occupational
lead exposure. Accordingly the inclusion of such findings in the
computation of mean values increases appreciably the probable error
01 458
TABLE O
.2
Distribution of Subjects According to Strength of Grip of Left Hand
Hand
Filling Station Tank Wagon
Attendants Dynamomete: i
Handlers
Heading
Number
6f
/J
Number 4
50-59
e< 2 4
50-69 1 2 2 4
Garage ?iechanics
Number <4. 42 31
Barrel Fillers barrel Fills Not Exposed to Expo sed to ^thyl Gasoline Ethyl Gasol3
Number
Number
9^ & -e"
5 19 2 9
70-79
7 12 2 4 8 4 2 7 3 14
80-89
5
9
3 6 30
15 4
15
2
9
90-99
7
12
13 26
47
23 3
11
7 32
i00-109
10
13
6 12
42
21 6
22
3 14
110-119
2
A
o 4 20
10 2
7
4 18
120-129
1
2
7 14
25
12 O'
S'
1
4
130-139
140-149
1
150-159 160-169
y'r\ .. 0-
No
Informstior3
t
Octal
|
02 56
O O' Qy
39 ICO
00 o
12
.0"'
.0 1
5 5
1 2
10 20 ! 9 50 100 I 001
31 5 O' 1
4 Or'" ^
OT".
'Sf
V /
1 i! |
41
___
i 100!
4
-- -
27
1
I
?5
- --* -~ ---
i p.00
xT" i ; 22
sr *r
j st
07
cr 100
v.ean
Probable Error of
Standard Deviation
95.0 1.9 16.63
101.5
+2.4 22.75
102.9 + 0.9
19.37
21.1
+ 2.7 19.05
!
95.0
+ 2.4 16.51
TABLE /4 Distribution of Subjects According to Strength of Grip of Light Hand
Hand
Pilling Station Tank Wagon Garage
Attendants
Handlers
Mechanics
Dynamouetei
Heading
Number
Number
Number <st
50-59
XT & JQ- P--
60-69
0 J2r
JSr- 1
1
70-79
fr
2 43
2
30-89
35
4 8 9 4
90-99
3 14
6 12 29
14
r:o-ic9 110-119 120-129
48 7 12 59
7 14 40 5 10 28 6 12 33
20 14 16
130-139 110-149
3. O
La
150-159 160-169
^ ^0
No Inf ormatio: 1 23
Total
56
5
.. 4 O
! -0
! 41
ICO
5 I2 /O
1
10 1 50
10 22 - ii
4' 19
10
4 7,
3
21
1
20 9
4
100 201 100
Barrel Fillers Not Exposed to Ethyl Gasoline
Number
Barrel Pil; Exposed to Ethyl Gaso
Number
t.
27
A
O' 1 4
3 11
-or" K
1 4 7 3Z
4 15 2 9
3 il 2 9
5 13
4 ie
3 ii
3 14
14 29
14
14
JO" S>
-0
.0 00
O -e
4 15 i
27 ioo ! oo
-0 10
Mean
1-------------------------------112.6
Probable Error of Mean
+ 2.2
Standard Deviation
18.43
114.0 +2.4
22.34
116.3 +0.9
19.58
101.9 +3.3 23.30
105.0 +3.0 20.89
01 if n
Distribution of Subjects According to Lead Found in Faeces
Milligrams of Lead Per Sample of Faeces
7 - 0.079
'.08- 0.159 '.16- 0.239 .24- 0.319
.32- 0.399 .40- 0.479
.48- 0.559
.56- 0.639
*
.34- 0.719 .72- 0.799 .30- 0.879
.83- 0.959 .96- 1.039 .04-1.119
.12- 1.199
.80- 4-
0
nformation otal
can nobablo nror of aan
tandard eviatinn
Filling Station Attend ants
Tank Wagon Handlers
Garage Mechanics
j Barrel Fillers
Not Exposed to Ethyl Gasoline
j Barrel Fil
Exposed tc Ethyl Gaso
Number 6 5
12
11 9
21
Number | '' Number -i Number
1 o 5 3 /L
4
8 26
13 ' 4
4
3 33
17
7 V
7
Number
0 2 9
if
A
0 9 41
47 i
8 ! 14
6 12 85 12 6 12 23 14
3 . // 4 /r
5 1
25 5
2 2
l -o"
j xj
! 11 i ! if '0 \y i ..O'
2-.-
13 58
|4 i4
:2
! -0 1 ; i ,-2 * ! ,0 . ! 0_
C
.<7JLI \ 4
2
100
2 4 17
! 5 10 j 13
i n 4i 8
i' 1:217
i!
x) > 7
! i! i .3" 1 J6 j 3
! (I , ,Q- ; .O' i 2
I;
1 lj !
;2
! 2" : 0 3
j J I .0
j* j 1* 1 8
O n-v-
; !| '17 1 34 I 13
! 50 ! 100 201
9
6 r (4 j f3
13 i j2 i| 11 1 : !1 i :3
| -O' !
i ;3
!! j6 i
j100
3l
.?
l ! : 0
O'
> '
&
27
!i
_ 4. i i M
2 1 0 cr
0 Q&1
0
_____<5i_- ___ j ! .-</ ;
12
!
`i j,- ,-
j ; <0
ioo
!
0 0 0
i*
0
9<) Ut
9 5
or
0
5 -0
cr
5
O'"
100
C.253
r 0.860
0.379
0.380
0.238
+0.018 0.169
+0.023
+0.012
0.197 i----;-0--.-2-4--5----
+0.037
0.266
j }
+0.024 0.160
TABLE /t
<9*
Distribution of Subjects According to Lead in Milligrams per Gram A3h of Faeces
Milligrams of Lead Per Gram of Ash
Filling Station Attendants
Number
Tank Wagon Handlers
Numb ai . d
Garage Mechanics
Barrel Fillers Not Exposed to Ethyl Gasoline
Barrel Fll Exposed to Ethyl Oaso.
Number
Number
of
Nvmbe:
: 0-0.039
10
18
24
521
4
P
a. 04-C. 079
14
24
16 32
51 25
9
33
7 3J
0.03-0.119
9
16
48
54 27
7
26
8 36
0.12-0.159 0.16-0.199 0.20-0.239 ^.04-0.279 `'.28-0.319 : .32-0.359
.35-0.399 :. 40-0.439 : .44-0.479 0.48-0.519
4 2 1 1 1 0 0 0 0 0
8
36
36 13
3
11
29
4
3 6 | 18 9 2
7
3 14
1
2
1
21
8
4
1
4
29
2 2
12 0| 0
j j
4
21
4
f"~"---- -----
Ow J*
JZ'
0
J
0
9 { 6
0
0Q
111
4
0i
<*
0
00
6T Jd ' &
PT
0 o'
0 12
0 00 1 l'l..
0 60
P /O 1 2 /
520
dT P
0
7
0 (
Q
Q- d
06 n. 00
3.56-0.599
0.01-0.673
3.'"0- + !
:;o Tnf ormatior Total
0 0 1-r
13 56
0 i2
c xy -O'
l# 1
22 17 | 31 100 I 50 1 100
<r Jd
0
0
00
3! 1
i\ 0 i0
<) 0I
0
)
i-> i 1
0
0
0! 0
f
13 j 6
0 00
201 t 1001 27
100
oo 100
Me an
0.087
0.120
0.123** 0.131
0.137
-------------1-----------i 0 .113
Probable -rror of Mean
Standard JDevia tion
1 0.007 0.065
- 0.014 0.115
^ 0.004--* - 0.005
0.074**' 0.100
0.014 0.106
1 0. 007
i ; 1 0.052
*Excluded in Calculation .of Bba@ "] A 5'/ ** Calculated aTter exclusion of three
..
------- ~
~,`"4-----------
TABLE / 7
Distribution of Subjects According to Milligrams of Lead Per Liter of Urine
'`illigrams ".'2 Lead Per Liter of Urine
Pilling Station Attendants
Number
,4
Tank Wagon Handlers
Number /J
Garage Mechanics
Number <
Barrel Fillers Not Exposed to Ethyl Gasoline
Number
Barrel Pill Exposed to Gasoline
Number t
0-0.039
32
_n
72 . 45 72
5
27 8 35
.04-0.079
15
.. 27
ia 35 . . 75 . 38 1 5 80 in 45
0.03-0.119 .... 13 .
_ 23
4 ... 3
34 .17
5
1A
2
Q
".12-0.159
3 .....5
....1..... . 2
. In
._.....n
n . ... ......1,
5
.16-0.199
5
K,
1..... o
.5
o
.2
n .. n.
fl
20-0.239 _____1_____ 1
:.24-0.279 ; 0
0 ..
fy n
3 1.
l
o ._ . 3
1
.28-0.319 i
.02-0.359 ; !
.06-0.399 1
0 0 O
0
... 0 .... . * 0. .
1 . . 2 ____ 3
12
4
1 1
.0- ___au. _____1____1_
----.-0--0-----0---.-4--3a9z-pi .44-0.479 !
0 0
_____ 0___ n. 0 1
0 / CV 0
1 .. 1
1, 1
'.48-0.579 . . 0
0
1
on
ro
i
+
:;o In forma tier.
Total
lr~*
r*
Lj
lr--r !
i 1
!
r\ , .1
__ 10 j TO
56 1 100 '
\ 1 50 ! 100 !
i ___ !
3 "r1 f
3 *4
201! led
.. n . _ o._ . '
. 0_ . 0 0
r\
o
O
o 27
. .. n n 0
...0
..... o ...
i___ _____
\
1n
_
!
j0
j 1 |0 _ * 100 1
n
Cl ... _
i /
0 .1
0
c
0 .0..
0o
h. . . 0
o ..0
00
1.___ 5 22 1 100
Mean
0.071
0.039
0.086
Probable Error of
'lean
0.005
0.011
n.oc4
Standard Deviation .
0.050
0.099
0.079
* Mdan calculated on a wider grouping of findings Excluded in calculation of means
0.058" 0.009
0.071
0^ 4 0 3
0.052 0.004
0.030
of the means. Nevertheless, such results have been recorded, and have been Included In the calculations unless otherwise specifically noted in the tables. Where a result has been excluded it has been for the obvious purpose of eliminating a finding which has no possible relation to the problem at issue. In the case of the urine samples, aberrant results are of rare occurrence, as would be expected. On the other hand contamination of an occasional sample during the process of collection is apparently unavoidable, despite the most careful ins true tioiv. of the subjects. This is not remarkable when the ubiquity of lead compounds is appreciated, and when the lack of understanding of chemical cleanliness on the part of the subjects is taken into account. Thuo when a ouitataly-large-.cample irmilalne-
qfl Viale Tn* 1 1 i flr" ITT--" f ''i ? ftd pftr 1 certain that...lend hntw.been
n ft-n-t, iMsleeo--i^ne--yub^^ei;,,'hH^,gbgcrbed-^VTrry-->^vgrgg'*>g.TBm:ri t a- -&& lea4 ,
The analytical results serve to classify the various groups7
of subjects as distinctly outside the hazardous lead trades. At first
glance, the mean values for the lead content of the faeces of filling
station employees, tank wagon handlers and garage mechanics seem high,
t < '-v
'.
v.KC
as compared to normal persons
occupational lead exposure.
(Of. page ) On the other hand, the small group of barrel fillers
who were not exposed to Ethyl Gasoline, and who had no other occupa
tional lead exposure at the time of the examinations, show similarly
high findings. Furthermore when the faecal lead is expressed in
quantitatively comparable terms, in mil igrams per gram of
ash, the apparently high results tend to lose their significance.
Finally, the previous data have amply demonstrated the impossibility
of drawing exact conclusions as to the magnitude of lead absorption,
I 0146 4
4---
on the basis of the faecal excretion of lead-. Thus it is
necessary to resort to the study of the urinary excretion for
such information. As Judged from thbr standard, the groups fall
into the category of persons lacking occupational exposure to
lead compounds.
A special significance derives from the failure of the
barrel fillers to show any increase in their lead excretion as
a consequence of their exposure to Ethyl Gasoline. Not only do
the two groups fail to differentiate themselves, from the point
of view of lead excretion, but it is equally true that no single
individual in the groups can be differentiated. Of the ten
persons who were examined prior to exposure to Ethyl Gasoline,
and again after six months exposure to Ethyl Gasoline, no one
person shows an increase in his rate of lead excretion. This
;-'-W
^
can be interpreted cfs meaning that there was no significant
lead absorption as a consequence of this severe exposure. Thus>
/
it seems quite clear, that the inability of animals to absorb
measurable amounts of tetraethyl lead out of gasoline in dilute
solution, (1 part per thousand by volume or lacs) is shared by
man.
In view"n,The important conclusions of the above paragraphs,
indicating the completely negative character of the findings, it .
is only proper to present observations of a strictly comparable
character on groups of subjects similar to those employed in the
present investigation, in every matter save ^hat of exposure to
Ethyl Gasoline. Accordingly.TaWt/- IT>1 ***<dL4v*. show the results
obtained ih 1927, in the study of groups or persons who had not been
exposed to the conditions associated with the use of Ethyl Gasoli'e .
The medical student group differs from that aprearing in Tables
^ 1 01465
TABLE !'
Distribution According to Age of Groups of Subjects Not Exposed To Ethyl Gasoline, Examined in 1927
Age In Years
15-19 20-24 25-29 30-34 35-39 40-44 45-49 50-54 55-59 60-^64
y 65-69
/ 70-74 otal
Medical Students
Number 11 51 9 0 0 0 0 0 0 0 0 0, 71
if
15 72 13
0 0 0 0 0 0 0 0 6 100
: le an
Probable Error Of Mean
Standard Deviation
\
22 .3 +0 .2
2 .3
mm*.
Filling Station Attendants and
Tank Wagon Handlers
Number
i4
11
18 16
23 20
16 14
11 10
13 11
10 9
10 9
54
44
33
114
-
100
37.5
+0.8 ,12.54
Garage Mechanics
Number 2 2
12 12
2 4 1 0 0 0 0 6 35
.4
6 6 34 34 6 11 3 -o . 0 0 o o 100
31.2 +0.8 6.69
TABLE -
Distribution According to Certuin Subjective Abnormalities of Groups of Subjects Not Exposed to Ethyl Gasoline - Examined in 1927.
Type
of
Abnormality
ocent Loss )f Weight
Increased >ndency to ''atigue
)ccasional oadache
)ccasional abdominal ' rcmo
Occasional digestive is turban ce
occasional leuritic Symptoms
oor General ealth
71 Medical Students Number
7 10 9 13
15 21
11
11
- Q 23
69 Pilling Staten At ` endtints
Number
42 Tank Wagon Handlers
Number irf)
11
25
12 17
5 12
17 25
7 17
23
0-"
8 12 57 34
10 (
2
24 )
/ 5
00
35 Garage Mechanics Number jf
5 14 5 14
18 51
* 4 12
13
01 467
TABLE * 0
Distribution According to Certain Objective Abnormalities of Groups of Subjects Not Exposed to Ethyl Gasoline - Examined in 1927
Type of
71 Medical Students
Abnormality Number
f
Under-nutrition
7
10
Pallor 1 1
Irritation "'f CVjn ryf Hand s
Or
-er
pead Lins
J>-
-0"
Tremors
2
3
Sensory Disturbances
Grinary Acidity
3
/
7' i
4 10
Albuminuria
1/
1
69 Pilling Station Attendants
Number
irf'
42 Tank Wagon Handlers
Number
35 Garage Mechanics
Number
-f
13 19 34
00
-0"
a o-
"0" e-
23 -0 -0' 9 13
9 13
*
34 .3 4
sy J0-" 4 10
P-
25
16 38 37
4 3 a-
l
8 3
n 9 0--
3
23 9
\li 014 6 8
TABLE >
S'3
Distribution According to Systolic Blood Pressure of Groups of Subjects Not Exposed to Ethyl Gasoline, Examined in 1927
Blood Pressure Medical Students
Read ings
Number
100-109
1
l
110-119
22
31
120-129
23
33
130-139
17
24
140-149
7
10
150-159
1
1
160-169
0
0
170-1*79
0
0
'130-189
0
0
190-199
0
0
20C-2C9
0
0
210-219
0
0
220-229
0
0
' 230-239
0
0
Total
71 -- >460
Pilling Station Attendants and
Tank Wagon Handlers
Number
if
2 O*
15 13
32 28
29 25
15 13
97
22
11
11
33
33
11
JO- JO-
11
114 100
Garage Mechanics
Number
6 14
7 5 3 0 0 0 0 0 0 0 0 35
<
JSr-
17 40 20 14
9
0
0 0 0( 0 0 0 d 100
Mean
Probable Error of Mean
Standard Deviation
125.9
138.2
0.8 10.20
1.5 23.45
'per 1 01469
129.8 1 1.3 10.98
TABLE y
"f
Distribution According to Haemoglobin of Blood of Groups of Subjects Hot Exposed to Ethyl Gasoline, Examined in 1927
Haemoglobinometer Beading (Dare)
60-64 66-69 70-74 75-79 30-84 35-39 90-94 95-99 100-104 lr5-109 Total
Medical Students
Number 1 1 0"' 3
10 21 17 11
5 1 70
< 1 1 -0' 4 15 30 25 16 7 1 100
Pilling Station Attendants and
Tank ^agon Handlers
Number
*
AT
11
98
12 11
17 16
43 40
15 14
98
22
9" / 108 /
100
(
Garage Mechanics
Number
.0o1 2 6 12
* 10
3 '0
JQr 34
0 O 3 S 18 35 29 9 0
10c
Mean
Probable Error Of Kean
Standard Deviation
89.8 "+0.6
7.78
86.0 + 0.5 7.15
83.0 + 0.7 5.73
01 4:/ nV
Distribution According to Lead Pound in Faeces of Groups of Subjects Not Exposed to Ethyl Gasoline, Examined in 1927
Milligrams of Lead
Medical Students
Per Sample of Faeces Number
0 - 0.079____________ ... 17 .....
SUQ3. - 0.159
15
0.16 - 0.239
19
25
22 27
0.319____________ C.,.3,2- 0.593____________ Q.40 - 0.479____________
6
______ o
9 5 3
0.49 - 0.559 0.56 - 0.639 0.64 - 0.719
23 11 11
0.72 - 0.799
e -0"
0.80 - 0.879 0.38 - 0.959
i1 i1
0.96 - 1.039 1.04 - 1.119 1.12 - 1.199 1.20 + Total
l l a70
-O' 1 1 U0 100
Pilling Station Attendants
Number
14 20
14 20
18 25
7 10
7 10
68
11
g' -0-
11
-O
11
0 o-
O'- -er"
.0 e
x>-' -e
| 3-"
4
' 72
100
Garage Mechanics
Number 5 7 2 2 3 2 1 0 0 0 0 1 0 o Q 3*
2610C
19 27
8 5 11 o 4 0 0 0. /" w /4c 0 Q: O' 11
Mean
Probable Error of Mean
0.232
-U - 0.019
Standard deviation
0.0236
^'-Excluded in calculation of means
0.197 -0.013 0.159
0.235 4*
0.029 + 0.205
TABLE
Distributi on According to Milligrams of Load oer Gram i^sb. of Faeces Of Groups of Subjects Not Exposed to Ethyl Gasoline, Examined in 1927
Milligrams of Lead Per Gram of Ash
C - 0.049 0,05 - 0.099 0.10 - 0.149 C.15 - 0.199 C.20 - 0.249 0.25 - 0.299 0.30 - 0.349 0.35 - 0.399 0.40 - 0.449 0.55 - 0.599 0.65 - 0.699 1.50 - + Total
Medical Students
Number
ef
Filling Station Attendants
Number
. sf
29 48
29 41
16 27
26 31
9 15 35 1 2-
8 11 46 0 -w''~
9 0i $0
i
06
11 11
JeT'
i 2-
11
i
2- J
0 J
'J
0 0 /0 0
00
2** 2
60 100
71 100
Garage Mechanics
Number 12 6 1 2 1 1 1 0 0 0 2 Or'' 26
46 23
4-
a 4-
440 \ 0 6
8
G-" 100
Mean
0.079*
0.077^- *
's
0.085 & 0.131
Probable. Error of bean
-0.008
- 0.006
.,, .
- 0.012 Q - 0.023
Standard Deviation
0.094
0.071
0.085 0.177
* Me an Calculated on a wider grouping of Findings Excluded in Calculation of Mean
Calculated after exclusion of two results over 0.65 milligrams
TABLE p. L
Distribution According to Milligrams of Lead Per Liter of Urine of Groups Of Subjects Not Exposed to Ethyl Gasoline, Examined in 1927
Milligrams of Lead Per Liter of Lrine
0.- 0.029 0.03 - 0.059 0.06 - 0.089 0.09 - 0.119 0.12 - 0.149 0.15 - 0.179 0.13 - 0.209 0.21 - 0.239 0.24 - 0.269 0.27 - 0.299 y'0.45^ - 0.479 1 " IW ' " 0.54 - 0.509 0.66 - 0.689 1.00 - + Total
'
Medical Students
Number
11 22 ... 16 10
17 ...... 3.4.....
25 15
1 1+ 1 1+
1 1+ 1 1+ Or v
'1 .0
1+ -O'
O' c
1* 1+ o0
' 65
ICO
Filling Station Attendants
Numbsr
*4
Garage Mechanics
Number
'1
........ 11 20
. 15 ....... ...28 _ .
a 4
31 15
_ - 17........ 24......... 68
....... _4........ ..... 6............ 34
_.... - -5.. . _ 7 0 0 .. 0i 0Q 1 1+
5 19
28
5 ... _ . . 19
0 / 0
A..........
.
.0 0 0.
i4
00
!
00
1* 1+ 1+
0 6
0
1
0
3* 4 i* 4
72 100
26
100
Mean
0.078
robable Error of ean
0.007.
tandard Deviation
0.089
^Excluded incalculation of means
0.081
0.006 0.069
0.077
0.008 0.059
It'! 01 474
^7
7.111 and XIV, in Chapter 111, only in that those who have had some *
degree of previous occupational lead exposure are included. For
the second group, filling station attendants and hulk handlers of
t . V,
ordinary gasoline are Champed.tegutHUK;in order to make a large group
for statistical purposes. Unfortunately, no analytical data are
available in the case of the bulk handlers of gasoline, because of
their unwillingness to cooperate in the collection of samples. There
fore the analytical findings relate only to filling station attendants
as indicated in the tables. The control garage mechanic group is
made up of only a small number of men carefully selected in 1126 as
lacking any exposure to Ethyl Gasoline. The rigid requirements in
the latter regard introduced considerable difficulty into the
problem of obtaining cooperative subjects.
No explanatory comments are required, since the tables .
'
present the observed facts^ "It should be pointed out that the ob
servations recorded in these tables were made by the sanje persons
whocollected the data on the exposed subjects previously described.
The clinical methods employed in the two instances were substantially
the same, while the analytical methods were practically identical.
Tablesummarizes the mean values for all the groups c.f
exposed and unexposed persons, in such matters as would seem to have
special significance. (Since the frequencies of occurrence cf
stippling do not lend themselves to computation of mean values,
this
.
comparison of important factvmust be made from the tables of distri-
~A
/N ;\
.UvCu1-*3
bution.) Comparison of the means
a striking lack of statis
tical differentiation of the groups. The medical students show a
significantly. difference in age, but in no othdr factor. The barrel
s
fillers not exposed to Ethyl Gasoline show a significantly low
haemoglobin content of their blood, as previously pointed out.. The
01 475
c-r X hJ
ft 3 *4 0 3
--> ta
i--1
fct a* *t 3
ta cr ft
OO ft
3
ft h"*
3 3
cr O 33
f4t
CT
*1 -3
ft ft
XM
OT)
- O >TJ
CO CO H*
O ft
ft CL M
H* CD
3 c+ 3
OU
--------------j.
I +W
ft tO
Li
ft
1+
03
H-3
ro <o
3 23 X P ft 3
X cr O CO
3> 3* cr 3
ft O Q g <; a
to ft ta r*j
txt+j
ro to
3ft
a
2
cf <5
cl
x' to
c'3
ao to to
t=i O X Q
O
3*
3m ft
o
a 3ffl*
33ft +34*3oft
ft* tO
3 0)
to
ct 3
O *-* o
4. ft -4
to
t+
O* 0f 4t 03 03
I + Cj 3
O ft*
(DH
ro
I 4- 03 l-> 03
- a*
to
ro to
r.M ft*
I + 03
ft* ft
CD W
| 4- ro O 03
-4 -4
. ft* | +to ft* tO
03 03
| + 03
m a t0 ft
I + 03
O OJ
to c m
i + -4 O ft*
t
to ft* ro
'+CO O ft
tfot 03
I+ 03
O CO
-4 O
1+03 O 03
'
03 O
to
oc
cd
oo
**
O 03
03 CD
-4 O
1+ oo
O 03 ft -4
to tO
1+
oo
*
O ro
0CO3
to 03
1+
.? ?
Oto 0033
03 O
I+ 1+ oo
O ft1
ft Cm
ft -4
1+ co
O 03 03 ft*
1+
oo
O ft* to 03, 03 ft
!+
oo
** OM
to
o
co
C CD + tO
oo
oo toOo0n3
1+ oo
oa
O CD
ft 03
1+ oo
oo O4 CD 4
1+ oo
t
oo
ft CD ft to
tO CO
to
-4
CO
o 03 I-1 03
Ol
o
| +ft
ft* O
tO 03
C~3
oo
r23s as
"t j
3 a.
3
cT
ta--.1
3
C3
3
3
OQ
O ta sr
CD
W ft) X ct
P 3*
3s
0 ct-CW
C23T
CT
&* o
3 ft ftj 3
o
a?
X 1
3
ft=: ss ;s TO ;>. s ct a g v t , (-
t-* ft ci :) X ffi
o o-a t--1
& ? VJ CO CO
O CT U ft a c
!_ Q,
M3 Cta O o 3
. Vi CT 4 CO
| +03 O -4 03 Ol
I + to
O CO
to 03
01
c
<3 O
cr to
i-M o
3
o t-*
CT +3
ta CT
H>
O 3
O
Kj > CR to
3
ft
03 ft o
-4 ft
1. + M03
M CD
or ro
03
OO
OJ to 4
Io+ o
o to 0f3t 0O0l
I +03
o o *
03 O
oo
O ft M tO 03 -4
oo
o <5 4 -4
|+ t
oo
*%
oc
O4 03 4
t+ OO
oo 0 -4 01 3--1
1+ oo
co 001 0M3
1+ to O Ol
CD cO
I +03
O to
0 03
"3 01
01
ta ta CT a O e J ft? O
ft) M O o a
"TS'SJ a
33 ^3
H* O
3 ft3 C4 M
aO O'
I+ oo
c to
M 03 tO JO
t+
oo
oc d *4
I+ OO *
oo C -4 4 03
W O
D
tr
33
ft oi a*
M 3 M
to-t, mO
ft?
to
M ft ft
34 3
f3t ft O3 O 233
to
ro 0^3
ta to
fOt fot ft
*+ 23 c
3 ft ft
3 OCT 3 33
ft?
M
01 a 7
f3--t*1
*>
O
c
tmcOrrn
o
H+J
O'
O o
a
3
CT
ta
/TABLE 2
Summary o f Mean V a lu e s o f Age, S y s to lic . B lo n d P re s s u re , TTnc;,io{ lo b ln , and E x c r e tio n o f Lead In Faeces and U rin e , fo r V arious fir'ou": o f S u b je c ts .
o'
mean lead content per sample of faeces shows certain statistically
significant variations withi- the groups^but no actual
can be attributed to these differences in view of the
variability in the size of the faecal samples. When the latter factor
is corrected
by expressing the lead irs the faeces in
relation to the quantity of ash, the variability of the groups becomes
statistically insignificant.
It has been Intimated previously that some significance may
oe attached to the fact that a considerable number of the subjects
had been exposed to lead compounds in previous occupations. Likewise
the handling of lead compounds other than leaded gasoline and its
deposits on motor parts and elsewhere, might be expected g o have some
influence upon the lead absorption of the garage mechanic. As a means
of ascertaining the significance of these matters, the analytical
results^ derived from two small groups of persons whose occupational
histories failed to give evidence of previous lead exposure, were
subjected to study. Table Is has shown the distribution of the
subjects, as to previous occupational lead exposure. Table
presents
the mean valuesjfor^jthe
excretion of these subjects as separate
group-s- and in combination. The results are seen to be slightly lower,
but no significant statistical differences'hae*/resulted from the
exclusion of the previously exposed subjects. Considering the rate
at which large quantities of lead have been shown to be eliminated
from the body, the effects of previous slight or moderate exposure
to lead, would not be expected to siwithemselves in an increased
excretion after the lapse of years. Nevertheless it i3 of some in
terest and importance to establish the facts in the matter.
ni 477
TAELE
:s
Mean Values of Lead in Faeces and Urine of Filling Station Attendants and Tank Wagon Handlers, Exposed to Ethyl Gasoline, Excluding All
Results Obtained on Persons With Other Industrial Exposure to Lead Compounds.
Lead in Milligrams In Single Sample of Faeces
Filling Station Attendants Exposed to Ethyl Gasoline
0,338 + 0.043
Tank Wagon
Combined
Handlers
Filling Station Attendar
Exposed to
and
Ethyl Gasoline
Tank Wagon Handlers
0.277 + 0.035
0*330 + 0*030
Lead in Milligrams Per 1-ram Ash in Faeces
0.069 + 0.009
0.116 + 0.024
0.086 + 0.011
Lead in Milligrams Per Liter of Urine
0.063 + 0.009
0.063 + 0.010
0.065 + 0.007
'lumber of Subjects
i
19
15
34
/ (
P* I 01478
It would appear that an examination into the relati -nshlp between length of service and lead excretion, mighta means of ascertaining the significance of the lead exposure associated with the occupation of the garage mechanics. This was done first by studying the correlation between the period of continuous em ployment as mechanics and lead excretion, and then by a correspond ing study of the length of exposure In repairing cars which used Ethyl Gasoline, as against lead excretion. The results of these attempted correlations are shown in Table I s . There is a complete lack of correlation in either matter. From these results one must conclude either that the lead exposure associated with the occupa tion is insignificant, or that it of of such irregular occurrence as to have no measurable time relationship.
There remains one other means of examining the available data
*
in search of evidences of lead absorption from the handling of
Ethyl Gasoline. Among the subjects studied in 1929, there were
twenty-six filling station attendants, and twenty-four tank wagon
handlers who had been employed as subjects In 1927. Presumably,
if their occupation contains a significant lead hazard-they should
show some evidence of change in lead excretion after two years.
The findings for the two years, as regards lead excretion, are
shown in Tables SC ,
, and
The mean values are summarized
in Table
It may be seen that no statistically valid difference
Is demonstrable
TABLE
Showing Lack of Correlation Between Duration of Employment of Garage Mechanics and Lead Excretion, and Duration of Exposure to Ethyl Gasoline and Lead Excretion.
Factors Correlated
Correlation Coefficient
Length of Continuous Service as Garage Mechanic with Lead in Faeces in Milligrams per Gram of Ash.
+0.017 0.056
Length of Continuous Service as Garage Mechanic with Lead in Urine in Milligrams per Liter
+0.023 0.055
Length of Exposure to Ethyl Gasoline as Garage Mechanic '.Vith Lead in Faeces in Milligrams per Gram of Ash
+0.223 - 0.099
Length of Exposure to Ethyl Gasoline as Garage Mechanic '.Vith Lead in Urine in Milligrams per Liter
-0.243
t a b l e 3$
Distribution of Identic.'. 1 Subjects For the Years 1927 and 1929 According to Milligrams of Lead Fbund in Faeces.
Milligrams of Lead per Sample of Faeces
0 - 0.079 0.03 - 0.159 0.16 - 0.239 0.24 - 0.319 0.32 - 0.399 0.40 - 0.479 0.48 - 0.559 0.56 - 0.639 0.64 - 0.719 0.72 - 0.799 0.30 - 0.879 0.88 - 0.959 0.96 - 1.039 1.83 5.10 Total
Filling Station Attendants Exposed to Ethyl Gasoline
1927
Number
<
1929 Humber
1
53
15
6
30 3
15
2
10 8
40
3 15
JS"
2
10 3
15
1
51
5
1 <r"
-0" 1
5
2 10 1 5
1
50
0
sy 0 _.. 0
!
0
JO 0
0
j> & o; 0
0
er 0
0-
1* 5 0 1* 5 0
0 0
20
100 20
100
Tank "agon Handlers Exposed to Ethyl Gasoline
1927
Number
*
1929 Humber
P' 0 3 17+
2 2
4 23+ 3
3 17+ 3
2 12
1
3 17+ 3
j?r -e<'
1
2 12
1
0 0O
90 0 /0 0 0
00 0
00
0 0 '0
0 0 0"
17 100 17
Mean 'robable Error of Mean tandard Deviation
J'WAuiii ; a ? 1.1 0^
0.280 0.030
0.187
*J
0.236 0.023
0.153
0.308 0.025
0.150
01481
0.3US d 0.O2.S
'
0.40JI* 0.036
0.2/S
distribution of Identical Subjects for the Years 1927 and 1929 ..ccording to Milligrams of Lead Per Gram Ash in the Faeces
aiilifrr-'.n3 of Lead Pilling Station Attendants
far "r- it cf Ash
Exposed to Ethyl Gasoline
1927 Number
1929 ,V Number
: - '.239
2 10 1 5
i - 0.079
5
25 7
35
0 - 0.119
5
25 6
30
o.u - 0.159
3
15 3
15
'.11 - 0.109
1
51
5
O.'O - 0.239 - 0.279
jar |1
e 1 51
5 5
1. 3 - 0.319 '
0.02 - 0.359
!0 i
6
0.35 - -''.399 0.10 - 0.439 ^
^ 0
y 1
00 0i
6A
5d
Q d d 6
0.44 - 0.479
0
0y 6
0
(
0.57
6
ib 0
o
0.64
l* 5 6
0
1.36 Total
l*
5 o
0
20 ~ "loo 20 100
Tank v,Qg0n Hancilers Exposed to Eth? Gasoline
1927 Number
1929 if Number
if
1 6 7 41
4 23+ 2
12
5 30 3 4 23+ 2
17 12
3 17 1
6
0 01
6
0 0 <P i
0 60
0 0d
0
0 i O'
0 00
0
0 00
0
0 00
b
00
6
0 00
0
0 00
0
17 100 17 i 100
Mean
Probable Error of ean
0.11S 1 0.015
0.106 t 0.009
Standard Deviation
0.093
0.058
^Excluded in calculation of mean
.
.-
p .t
.4 i Id ^ hi1* >***`L*-.G '
0.109 io.ooe
0.047
O. I (^ 0.0(0
0.142 ^ io.019
0.117
t a b l e : ll
Distribution of Identical Subjects for the Years 1927 and 1929 According to Milligrams of Lead Per Liter of Urine
'illlgrams of Lead Per Liter of Urine
0 - 0.039 0.04 - 0.079 0.08 - 0.119 0.12 - 0.159 0.16 - 0.199 0.20 - 0.239 0.24 - 0.279 0.28 - 0.319 - 0.32 - 0.359 0.36 - 0.399 0.40 - 0.439 0.58 0.87 1 1.00 4.00 - + Total
Pilling Station Attendants Exposed to Ethyl Gasoline
1927
1929
Number
if- > Number gf
3 11 7 27-
9 35 7
6 23 9 35
3
11 0
0
1
41
4
2
81
4
0
00
0
1
0
00
0
0
00
6
0
Q0
0
0
d6
0
1
40
6
1
40
0
2 14
JST JO -e-- .0-
26
100 26
100
t-i
Cvi
Tank wagon Handlers Exposed to Ethyl Gasoline
1927 Number
XT'
if
1929 Number
6
i 25
/> &
su
11 46 2 8+
l H+ 1 4+
i 1 4+
0
0 J2T
fis
0 0 1 4+
Q 0 jar
l 4+ 1 4+
l
4+ ,0
jyf
1 ,0 -er
fir .0 or
0l
4+
JO" 2* 24
0 0" i
8+ j D '
-G" '2-
j1---0---0-------------1-----2--4-- ---- 100
Mean
robable Error of ean
0.142 . 0.024
0.111 0.025
0.129 0.015
0.115 # * 0.024
tandard Deviation
0.180
0.188
0.106
- 0.173
* Excluded in calculation of mean #* Mean drops to 0.083 + 0.11 when one result of 0.87 milligrams is excluded.
01453
t abl e: 3 $
Summary of Mean Values of Lead Pound in Samples of Faeces, of Lead in Milligrams per Gram of Ash in faeces, and of "Lead in Milligrams Per Liter of Urine for Identical Subjects Examined in 1927 and 1929.
;-=>ad in Milligrams in ingle Sample of Faeces
Filling Station Attendants Exposed to Ethyl Gasoline
Tank Y.'agon
Combined
Handlers
Filling Station Attends:
Exposed to
and
Ethyl Gasoline
Tank Wagon Handlers
1927
1929 1927
1929
1927
1929
0.280 0.236 + 0.030 +0.023
0.308 0.402 +0.025 +0.036
0.294 +0.019
k 0.312 +0.022
iSad in Milligrams Per ram Ash in Faeces
0.118 0.106 o.m.5 +0.009
0,109 0.142 +0.008 +0.019
0.114 +0.008
0.124 0.011
,ad in Milligrams Per .iter of Urine
umber of Subjects
0.142 0.111 0.024 0.025
26 26
0.129 0.115 +0.015 0.024
24 24
0.136 0.015
50
0.113 0.017
50
/
f
01464
Chapter VII Certain Considerations in the Prevention* Diagnosis and Treatment
of Lead Poisoning
1. The Prevention of Lead Poisoning Among the General Population.
The necessity for further detailed knowledge of the opportun ities for lead absorption under present conditions, and the anticipa tion of new opportunities arising from changes in the life and activ ities of the community.
At present the largest factors which differentiate the modern community from primitive life are found in candies and fruits. The spraying of fruits and leafy green materials with lead arsenate is the largest of these factors.
Necessity for particular caution in the lead contacts of young children (cite literature) because of their apparent suscepti bility* their unusual behavior - pica and their natural tendency to haye hands and other objects in their mouths - and the disproportion ate frequency of encephalitis. Inexperienced and ignorant manufacturers of beds, toys, etc. coated with lead paint. Repainting by parents or others. Drinking water, lead nipple shields, lead-contain ing cosmetics on Mother's skin. Other items of importance. Typical
case records i Lead Poisoning in Industry. The recognition of exposure to lead compounds - air sampling methods versus studies of lead excretion. (See typed article on this subject.) The limitation of exposure - means to be suited to occasion. Sharp segregation coupled with measurements of exposure as influenced by improved methods of eliminating danger. Not adequate until lead poisoning is completely eliminated. This means exposure must not be sufficient to injure even susceptible persons. Careful medical
supervision will usually serve to prevent tragedies while the methods
are being perfected: Rejection of diseased persons in lead trades,
"Symptoms and signs of impending intoxication. Stippling and other
blood changes*
What are safe limits of industrial lead exposure in terms
of the methods of measuring exposure? For practical purposes the
exposure must be reduced at least to the point where the lead ex
cretion of representative group/*" of workers is within the limits
which are not associated with the occurrence of lead poisoning.
It should be limited to such even lower levels as are compatible
with the application of reasonable methods of control. If this can
not be done except at an expense which brings economic ruin to a
lead industry, it would seem that society could better endure the
loss of the industry than to pay the price exacted by its continua#
tion,
3, The Diagnosis of Lead Poisoning.
^.
Three points: 1. History of exposure, 2, Characteristic/
symptoms and signs, 3, Establishment of significance of exposure -
knowledge of conditions and their relation to cases of lead poisoning.
Chemical analysis in appraisal of exposure.
Difficulties in case of sequelae - malingering, vague sub jective symptoms7r"non-specificity of symptoms or signs or sequelae.
There is no laboratory short-cut to a diagnosis. The only
thing the laboratory can do at present is to establish the signifi
cance of the exposure*
Studies of faecal excretion within twenty-four hours of
cessation of exposure give magnitude of exposure in dusty trades.
Studies of urinary excretion of more value under the usual
conditions because of the persistence of abnormal findings, uncom
plicated to a large extent, by dietary lead.
/'.'--If 1- p O a' et- I
J- -
The laboratory signs of lead intoxication - valuable but not
specific or final. Lead in excreta, lead m blood, blood changes. -- --------------- ----
Typical cases: Observations following immediately after ex-
posure. Delayed observations.
x,
J?'
The curve of lead elimination in urine - Smith, Foster, Jones.
The slope of the curve in relation to severity of exposure. With
knowledge of the time interval since exposure, and with two or more
points established the curve in any instance can be projected to give a measure of the relative magnitude of the exposure.
Fatal cases without observations prior to death. ^ Post mortem analyses and their signiiicance.
Uuncentration of lead in certain tissues as liver and blood. Gross amount of lead as indicative of significant exposure. The time of exposure may be determined with some degree of accuracy ir^m me quantity of lead present. The extent of the exposure can be determined if the tjyme factor (since exposure) is known. The accumulation of information as to the amounts of lead present in human tissues in relation to determined rates of lead
excretion may eventually facilitate the formation of accurate estimates in terms of actual amounts of lead in the body, 'If this be accomplishec analytical methods alone will serve to answer some of the Questions which present themselves at the necropsy table-,' The amounts of lead in the tissues of an individual who has died under conditions which permit suspicion of the existence of significant lead exposure will
then establish the facts, in relation to the time interval between cessation of exposure and death.
Typical cases: (l) normal amounts of lead. (2) abnormal amounts of lead.
Lead in the brain and its significance. Typical cases: no exposure! significant exposure.
4. The Treatment of Lead Poisoning* Removal from exposure. Normal elimination of lead versus induced elimination. (l) Unnecessary. (2) Dangerous, especially in children and severely exposed. (3) Unavailing because of brevity even if doubtful accuracy of observations be ignored, and because of the brevity of periods of treatment. Such brevity enforced by reason of economic necessity. Hospitalization and medical care are costly and are not provided for by compensation courts.
Rest, freedom from anxiety including economic. Full diet, profuse liquids, alimentary tract kept freely
eliminating. MgSO^., etc.
\ f
r>
5. Compensation Cases of Lead Poisoning. Proof of exposure in relation to occupation. Duration of disability. Re-empioyment
t 6. Theoretical Considerations. In view of the conservatism of the conclusions which have
hitherto been drawn from the data^ which have been presented the writer
's
may be permitted to indulge in a few speculations as to the meaning
of certain matters which have had only a partial or practical inter pretation. Perhaps such efforts may bring into relief some of the
problems which require solution.
See The factors which are active in the production of lead poison
type written ing are but poorly understood. Why is it that one individual may be
article on sub- exposed to a certain set of conditions for years without apparent
ject.
injury, while another becomes ill after a short period of exposure?
Or why does one and the same individual persist in good health for a long time only to develop an unanticipated acute attack of colic or
neuritis or encephalitis. One may suspect that in many instances these results have arisen because of the presence of diseased persons in lead trades# or because the signs of impending intoxication were not sought for. Certainly the term "unusual susceptibility", has been a most convenient term under which to conceal faulty observations, and by means of which to sidestep the responsibility for the maintenance -of unnecessarily hazardous conditions in lead trades. Nevertheless, variability in susceptibility is a fact which must be dealt with in the interpretation of the nature of lead poisoning. Does lead accumulate in the tissues of some individuals to a greater extent than in others, and does this occur more readily under cettain physiological <x> nditions than under others in the same person? If so there must be a certain variability in the chemical compounds of lead in the body under a variety of conditions. The nature of these compounds and their reac tivity under various conditions, must be known before we can hope to understand the mechanisms of lead absorption and lead intoxication.
/' Some clue to the existence of important chemical compounds in the body may be found in the relationship which apparently exists between the rate of lead absorption and the rate of urinary lead excre tion. (Piet accurate curve of faecal lead content (exposure) versus urinary lead concentration, showing the point at which a critical break occurs.) At a certain point in the absorption, elimination fails to keep pace, showing little or no proportional relationship to absorp tion. At this point the excretory ability of the kidneys reaches a maximum or else some chemical reaction has reached its limit, thus permitting the lead to be distributed into the tissues. Something definitely modifies the release of lead from the body. This point is probably the beginning of rapid accumulation of lead, and if it can be established definitely in relation to exposure it should be easily possible to distinguish between a safe level of lead exposure, and Hl l .
that is not safe. At this point any individual is in danger of being poisoned. Presumably susceptible persons reach this point in advance of normal individuals, as an expression of the existence of chemical factors which promote accumulation, or conversely, as a consequence of the absence of chemical factors which promote elimination. That this is not always a matter of disease, but may occur within the limit of normal physiological states is demonstrated by the susceptibility of infants and children.
)
Experimental ?'ethods ,
I In a field as many-sided and as replete with possfl-
!
/\
/'
jbilities of error as the one under discussion, it is pbvtous
I '/
I 1the validity of
/esults\ or conclusions depends/pri-
j marily upon the accuracy and adequacy of methods of procedure.
In fact, one of the
obstacles to a proper
of much of the
* i*
work on lead compounds arises from
the fact .that methods are'not described with sufficient de
finiteness to justify judgments as to their accuracy or to
permit of their duplication. Therefore at the ,ri.sk 0f intro
ducing Intrinsically tedious material, 1-fr boeemoo eooooP"&iy
-to- set dovm- dotalls -ef experimental methodsep*SJ 7jLe$-cu$
is *. -f r->. U-^
'/
1. Analytical Methods
(1) Analysis of Urine.
Samples of urine are collected in gallon jugs of
the type used for fruit juices. The volume is measured and
for every liter of urine 100 c.c. TE.r03 (Sp.Gr. 1.12) and
10 c.c. TTs S04
are added, unXU
care when
dealing with ammoniacal samples. (:TaS04 is used to avoid
excessive alkalinity .of the ash.) The sample is evaporated
to dryness on a hot plate at approximately 105 C., is trans
ferred to a 500 c.c. fyrex dish and again evaporated to dryness
at 105 C. After ashing in electrical muffle furnace at a
\or
temperature controlled by pyrometer so as
to exceed
01 491
500 C., the material is cooled, moistened earoPtrl-hy with dis
tilled water, and treated with 20 c.c. :-:M0a (1:1), the ash
being broken up with a stirring rod. Distilled water is added
to bring the volume to 50 c.c. and, following digestion on a
hot plate, the residue is filtered off and discarded after re
peated washing, alternately,hot HN03 (1:1) and hot v/ater,
the filtrate and washings being caught in a 600 c.c. Pyrex
beaker. The filtrate ^ia evaporate*! to dryness on a hot plate
at 105 C.' ~The residue is dissolved in HCl (1:1), is diluted
to 300 c.c. and is neutralized by adding 25? PaOH until just 0.1%
alkaline, 4 drops of - aqueous methyl orange serving as
indicator. HCl (1:2) is added to the faintest pink, the
solution is cooled, and gassed with HeS for one hour. After
standing overnight the precipitate is filtered off on.a 12.5 cm. V/hatman //40 filter paper and Is washed thoroidghly^with
freshly prepared HaS water to which has been added 0.1;' of its volume of HCl. The precipitate is washed off the paper into
t
the beaker in which it was produced^by means of hot H!T0o (1:1),
followed by hot water, the sides of the beaker and the gassing
tube being sladLiUrly washed. The solution is evaporated to
zjhr. small volume^transferred to a 100 c.c. Pyrex beaker, treated
"ith 1 c.c. HsS04 (Sp.C-r. 1.G4) and evaporated -to fumes of
fV. <
paper with a solution containing 1 c.c. HsS04 (3p.Gr. 1.84)
to 10 c.c. 95;' ethyl alcohol and 20 c.c. water. It is then
dissolved off the paper into a 600 c.c. Pyrex beaker with
._____________
JHSHBn hot
ammonium acetate, followed by hot water.
(This is SSBt done by first washing the'fbeaker in which the
S'* ackTcLfe,
precipitate was made, then decanting the solution and wash-
&-*.y jc.c.
q_
ings througn me filter.) This solution, now diluted to"'^<- ^i.c ^
, _o .
300 c.c. with cold water, is treated with 2 drops HN0a 5 ,
y `a7^e-- V -Ob*. c-ca
(Sp.Gr. 1.42), and is neutralized by adding 25?( NaGit to
,
kf. alkalinity, then HC1 (1:2) to a faint pink to Methyl Ked
' tc cy
(4 drops of a 0.1'( solution of Methyl ked In 50;' ethyl alco-/? `
-
hoi). 1 c.c. KC1 (1:2) is added in excess, the solution is
cooled, gassed for one hour with HeS and allowed to stand
**-
overnight. The precipitate is filtered off, washed and re- Sc- ' ** `4 ,
dissolved Xif ( the) same methodsT^ricfprecautions as employed ? ,
at the previo1us su/ lphide step. The solution is evaporated
^ !-'rj t
( ''Uv
to 1 or 2 c.c., and transferred to a 150 c.c. Pyrex beaker, J'"Vr '^
where it is diluted to 80 c.c. with cold water, neutralized
^
with 25' NaOK (free from iron and aluminium),
; 4 drops
of a solution e#n0.5^ phenolphthalein in V" aqueous NaOH,
as indicator. 5 drops of 25J' MaOK are added in excess, for
the purpose of supplying enough sodium acetate to repress
the F+ ion concentration due to the presence of small amounts
of mineral acids, when the solution is neutralized with 5f
acetic acid. After adding 2 c.c. of 5)' acetic acid in excess
of that required for neutralization, the solution is brought
to a boil and treated withc.c. of If KaCr0* solution, the
mixture standing on a hot plate for one hour, and at not
0'1 4 9 3
less than 60C. overnight. The precipitate Is collected on a
7 cm. Hunktell #1-F paper, the beaker and paper being washed thorough&pj**' with hot water to remove the last
traces of soluble chromate (tested with diphenyl carbazide
till washings do not give a pink coloration), and is then dis-
solved into a 250 c.c. Mohr flask containing 100 c.c. water,
5 -- j 30 c.c. cold HC1 (1:5) followed immediately by cold
i Zj v/ater. The beaker and stirring rod are washed and^decanted
through the paper. In a similar flask a standard is prepared
containing sufficient KeCr80y solution to be equivalent to
0.30 mgs. lead, precipitated as PbCr04. 100 c.c. water and
5o 20 c.c. cold HC1 (l:iT) are added. To the sample and to the
standard, 2 c.c. of a if. solution of S-diphenyl carbazide in
glacial acetic acid are added. After the dilution of each to
250 c.c. and after thorough mixing, the estimation of lead in
the sample is accomplished by comparing the intensity of the
pink color with that of the standard,
a Duboscq colorl-
meter.
f
^ l'C.C , Si
XU.
A.'. .X. t.
0 c_<t t -
v <fi~
: ' . J. a . S~C.-< _ f- ,S"s>
' ' -T/'' -7"
-C-i- V.
' i. -- ' -f
(2) Analysis of Faeces
-- v_ /?
'
'T_-Cc
< .-i*
s/ - {} "C-+" 4 ' y
Samples of faeces are collected in glass-capped
quart or pint preserve jars. Each sample Is transferred to a
500 c.c. weighed silica dish, dried to constant weight on a
hot plate at 105 C., and then ashed in the same dish in an 88
014 9'
electrical muffle furnace at a temperature controlled by pyro
meter so as not to exceed 500 C. After cooling and weighing
the ash, distilled water is added wit% eabe and the moistened^
i O'/'i, ,u*,+ rCr iZa.t-aL
I err. H^ c.. e. , -
~~
- v-A < c /'./*--I e-e- -)^C 'i/A-fu A- i` t1.'X
Ou.< c'f S-O
ash is treated with 20 c.c. HN03 (1:1) while being broken up
with a stirring rod. Hot water is added to bring the volume
to 50 c.c. A period of digestion on a hot plate is follow ed by filtration into a 600 c.c. beaker, the residue being thoroughly washed alternately with hot ffiI0o (1:1) and hot
water, and discarded. The combined filtrate and washings
k. '<U> J^LlCCbi
Co-icL. 7-Sc. <Z . <2^
are evaporated to dryness on a hot plate* ^he residue is
cx^d
dissolved in F.Cl (1:1), is diluted to approximately 300 c.c.
tact! <V >,
\
in a 600 c.c. beaker, and is neutralized with 25^ NaOH, added
drop by drop with constant stirring until a slight permanent
turbidity is present. The solution should be cool, and should
not be permitted to become appreciably warm while being neu
tralized. A few drops of 0.5^ aqueous solution of methyl orange are added, and if the solution is alkaline HCl (1;2)
*
is added to a faint pink. Following treatment with II3S for one hour the precipitate is allowed to settle oversight and is /
filtered on a 12.5 cm. Whatman #40 filter paper and is washed
with freshly prepared K8S water to which has been added 0.1.''
's
of its volume of TIC1. It is then re-dissolved Into the beaker -
in which the sulphide precipitation was made, by means of hot
HCl (1:1), to which has been added 10 drops of concentrated
H?IOa, in order to dissolve any CuS and thereby prevent occlu
sion of lead. The s'des of the beaker and the gassing tube are washed down with the acid, and the paper is further washed well with hot water. The solution is permitted to digest until
all the H2S has been driven off / whereupon it 13 diluted with cold water to 300 c.c. From this point on, the second neutrali
zation with NaOH, the second precipitation with HaS, and the
01 495
subsequent; steps of the analysis proceed exactly as in the case of the urinary sample.
(3) Analysis of Food, Tissues and Other Materials. These materials are collected in glass-capped quart amounts of cal-
cium or fat, the general procedure, after weighing, is to in troduce suitable quantities into 600 c.c. Pyrex beakers to gether with 10 to 20 c.c. concentrated HNOs, V c.c. concentrated HCl, and 5 to 10 c.c. concentrated HaS04, taking down to a char on a hot plate. The char is destroyed by freouent additions of small amounts of concentrated ITN08. Near the end of the pro cess 2 c.c. 60^ perchloric acid are added, while additional amounts oi* KN03 are introduced until no char appears on evapora tion to l!3S04 fumes. The material is evaporated to small volume. cooled, and treated with 10 c.c. concentrated PCI and 350 to 400 c.c. water. The regular analysis is carried on from this point.
lio HaS04 is used in the digestion of bone or of tissues which cousin bone. Such materials are treated, with suffi cient HiIOa (Ii3) to complete digestion, after which the sample 13 evaporated to dryness on a hot plate at approximately 110 G. The residue-is taken up in 50 c.c. concentrated i;NOa and hot water, transferred to a silica dish, again evaporated to dryness, and ignited to a white ash in the electric muffle furnace at a temperature not higher than 500 C. The ash i3 moistened care fully with water, is treated with 50 c.c. concentrated HNO-j,
iSc B 01 496
and set on a hot plate until dissolved. The residue is fil tered off and washed alternately with hot T!N03 (1:1) and hot water. The filtrate is evaporated to dryness. The residue is djtoaol1red in concentrated HCl, is again subjected to evap oration to dryness and is finally taken up in a minimal quan-
O'1' tity of crer[pS^ntT^iaad HCl. Upon being diluted with water to approximately 300 c.c., the usual analysis is carried out.
Fatty materials are dealt with "'IU| *-n by heating with concentrated UsS0* to an incipient char, after which they are treated with successive small portions of concentrated HN08 until no further char is present. The sulphuric acid solution is evaporated to small volume, whereupon the slight char which appears is destroyed with small amounts of concentrated RN08 and 60*( perchloric acid. This entire procedure is accomplished with on* speed and convenience if the sample is divided into small quantities in Kjeldahl flasks. Constant attention is required.
U,Remarks on Analytical Methods.
A survey of
analytical methods
In
si/ 1S24, resulted in our use of those developed by Fairhali ,
with certain modifications instituted by " nr.-'a, Edgar. Fur
ther efforts to shorten the method and to reduce the slight
losses of lead to the minimum, Jiaw resulted in investigation
of technical procedures originating in the minds of the lab
oratory staff, or suggested by the work of Avery, Hemingway,
5/ '4/ Anderson and Read , Taylor , Francis'7 and his associates, and
Tannahiir" . The preparation of 9B samples for analysis by Uj-O^
primary ashing at low temperatures (500 C.), ha e-bo on aban
doned in favor of initial wet digestion methods except in the
case of faecal samples. Furthermore
has seemed safer not
to place too great dependence upon the quantitative separa x/ tion of lead from urine by treatment with ammonia as suggested,
with certain qualifications, by Fairhall , or by precipitation with the oxalates as recommended by TaylorA- s, though we have
not investigated the latter method. The sulphate step, after
,
the manner of Avery at nl., has been found 18 MU inmaa
necessary "to
the Inclusion of materials other than
lead. The colorimetric determination in which chromate ion
*
is measured by means of S-diphenyl carbazide has been so satis
factory in our hands that tfe havk been loathe to eliminate it
in favor of a thiosulphate titration, sulphide precipitation,
or the acid sulphite methpd of Ivanov . The thiosulphate
titration method r-;\
A
5ud.gffi.an t, in
S' \
1 I-n- -gwi.with amounts as low as a few hundredths
of a rallllgram--.in The
the carbazide reaction SpBRS3
L. . J,.
J,
upon chromate ( instead of lead becomes of aAne a * significance cw:.le- :.4
*/ ,04
\J>
J
.vhen
that the qspSA elimination of soluble
chromate may, be
.. l'it / ' v ^ t-j. ` ^ t ^ 6*^
t4agsaas$ . m.i-u.-l la..' .i 1 by the?
care^required to- ovoid the inclusion of non-lead materi
als in /the other two colorimetric reactions. An advantage in
the use of S*diphe;nyl carbazide is found in the identical
Quality O'f the colors produced In the standard and the sample*
a_mBJkter~ raTST^'a-cc
comparisons*' *$
It would be highly desirable to dispense with the
numerous steps of a purely chemical method, which involve
slight but inevitable losses of lead. Nevertheless the re
sults of our investigations derive their significance from the
certainty that the methods have not yielded errors on the high
side. Thus while slight uniform losses of lead are to be de**>*
olored, they do not Influence the validity of results, wMrch
oftuld na.t..ha,v6L-her-n-obtained with--lose- aen-sltiye- gethfdaj on
J
t.trn .nnA hand r nnf ^ th. -moTta--.3ra. > +- .1 a??--i^n-3-f mrl y
h\J j-- ------accurate pnooe-dHJ^es. on ' the- utttei*. . furth^irmar-a, pfrrfnln defi-
nite advantages have accrued from the accumulation of comparable
data over a period of years. Tha^gradual modification, pf
nathods on_the--baai s oilgag3P asc&ntjriTreTTT'act^
e
maintainingchnical-uniformity-'irfhrrvrl nr i ban -rfnTilorTT' body
of. increasingly conclusive 1 nforraaiioa,
-?*a tei'TaTs" and Technique
m, 014 9 9
W
Satisfactory results from the employment of' any method
of analysis for lead are predicated on the utmost care against
the Introduction of lead from containers, reagents, and experi
mental procedures. The opportunities for contamination In the
laboratory are slight*J&ggfiktta*, as compared to those associated
with the co3J.ection of samples %ef anyIt_ is_jiecoasary to
i t\ Ai-A,!/ ***- /L+t+X
..
J*l*i*. ,J ' v ri^jL^ttcij L-niXuAii} "L
, i ul,..i. "T *
U c*st rj
-j^l. -- < K
A, oM.'s>- UwrfL-. (rnJ bvctjfr'if
/-,y -___ it \u.u\ .. a . . o
'I
h?**.L* aI+S**
supply chemically clean containers of glass which will not
yield appreciable quantities of lead to the sample regard
less of any chemical changes which may occur. It is mmt%-
essential to eaee that materials are collected into these
containers, without the use of any intermediate vessel, and
with adequate precautions against foreign materials which may
be present in the air or upon the hands or clothing of subjects
Continual attention to these details is required to avoid gross
contamination. Where intermediate containers are unavoidable
as in case of persons confined to bed, special equipment is
required which must be handled with laboratory technique. V ' -*/ .t\ .V i'W The lapgoe'%--poytlen of our samples have been collected in glass
capped preserve jars, and in gallon jugs with cork stoppers.
These have been cleaned in the laboratory with the same carq
as that employed in the case of the other glassware, fhe )
technique here is of some consequence. Tap. water as well as
cleaning reagents may contain appreciable quantities of lead.
Special care is needed to assure lead-free distilled water.
Thus the tap water and the distilled water are analyzed from
time to time to assure their satisfactory quality, while the
best quality of Sulphuric Acid and Sodium Cichronate is used
as the cleaning solution, in order to avoid the contamination
of lead found ' frequently
nnri"* durrh? t - ir nI Milrr in the
commercial vani of . The possibilities of contamination from
the glass containers, have been tested by treating certain ones
selected at random, with half their volume of hot nitric acid *
allowing them to stand on a hot plate at 105 C. for two days,
after which the acid and washings were analyzed for lead. The highest results obtained have been 0.01 milligrams of lead, in the case of certain quart preserve jars. The gallon jugs have yielded no measurable quantity of lead under this treatment. To determine the maxim/ possibility of contamination certain
of the containers have been broken, one-gram samples were de composed with chemically pure sulphuric and hydrofluoric acids, and after fuming the residue to remove hydrofluoric acid analysfes for lead w h s carried out. i.'ason jars are somewhat variable in their lead content, results varying from nil to 0.2 milligrams of lead per gram. The gallon jugs contain uni formly negligible amounts.
Corks used to stopper the bottles, and rubber rings used to seal the jars have been analyzed., A typical determlna-
/
tion showed 0.07 milligrams of lead in 5.45 grams of rubber ring, while 6.6 grams of, cork yielded no lead.
The glassware used in the analytical procedures con tains measurable quantities of lead when decomposed with hydro fluoric acid and analyzed. However, the ,amount of glass actu ally dissolved is quite small, and in no way influences the results, as shown by blank determlnations.
Lead-free reagents may be purchased, but considerable care must be taken to test them in this regard. Having estab lished a source of satisfactory supply, a uniform purity is reasonably MH assured, but it is desirable to keep a continual check on the matter by making regular blank determinations. We
/
have made a practice of running not less than two such control determinations with every set of analyses, thereby aecurIrvg
1,-z* ourselves -e-P the amounts of lead which nay be contained in the
maxinai amounts of all the reagents employed in a single analy
sis, "hile at the same time testing the uniformity of the analy
tical procedures In the hands of the laboratory staff. Over a
period of many months 96,- of all such blanks have failed to show
traces of lead. In no case has the quantity exceeded 0.02 milli
grams of lead.
By means of scrupulous care in carrying out the technique
of the analytical work, and by maintenance of the utmost cleanli
ness of the analytical laboratory, as well as > continual
check on materials, equipment and technique, it has been possi-
ble to u j . Mi"*"'h'ir gagfiacaaaBSSBs against high results. Slight loss
Of lead is
haomioa nP frKa .^c l ^.1
^ fry.....,.q.-.a
n mp
n
vital ch usually Tn^
'liiiVI-g
The results, there
fore, err on the low side. The extent of such errors is indicated
by' a typical experiment designed to test- the analytical procedures
only, i.e. in the absence of organic materials.
Lead-free control samples containing 2.5 grams CaClf, ,
4 grams ;iaa?0^.12TIg<j, 10 c.c. EC1 (Sp. Or. 1.19) in about 300 c.c.
distilled water^ were treated with variable quantities of lead
unknown to the analytical 3taff. ' The results ire shown in Table I
-i
, .. `
Table I
r>
i*
t- '/_ . V...., , '
s
` ' i "
Milligrams Lead Added
Milligrams Lead Found
Mil Nil Nil Nil 0.07 0.07 0.07 0.07
Mil Nil Nil Nil 0.05 0.04 0.04 0.04
Milligrams Lead Added
Milligrams Lead Found
0.20 0.20 0.20 0.20 0.25 0.25 0.25 0.25
0.14 0.14 0.12 0.15. 0.18 0.18 ) 0.16 / 0.19
r r\ ~7 O Kj 0
3. *'ethods of Estimating Basophilic Stippling of the Erythrocytes.
The changes character. q=:frfre erythroc,^ tgs~ uf - the blood-; in .rotation to
|U /
ft;
c*
.*
_
f*
r-
the absorption of lead compounds, gtmaaf a specific impor-
tance to micVroscopic examinatlon/s/of the blood in
cllni-A^ ' -
cal or experimental work which /Concerns Itself with lead. /
^
Without preconception as to the relative merit of the methodise >
/ * K fr of detecting variation i.rn//the content or distribution of | ^
%^ y ]
basophilic material in r,^d blood corpuscles, we have elected
to make observations
\ *. jjv the\occurrence of stippling in blood . p
,x smears unmodified by fixations haemolysis or by vital stains.> -
The adoption of this as a general procedure on all cases,
> *:
even where in .srorae instances additional methods were em-
/
)loyed, was based/on the impossibility of sampling by any
/\
other mean's than that of a dried smear, under certain condi-
-",-f
i
tions of our work. Thus we have attempted to obtain a satis^r &
,-
<
KZ
'
,
_
i
factory degree of quantitative accuracy in a simple method r=5afc>Er!ih^* ^* (v
.applicable to any subject at any distance from laboratory
facilities.
'* ^
j ct _
Several imear3 are made from the blood of each sub-5-?
i n '''it eftt "?
0 a*\)
"ti .
cnr 'ml f ^rm nMrwtr" "nd--^*^nnngr nr
*P
'
,
a P ttT,7rt't1rnftyt:fta nr }^ea<h1flr.nn r h an ^ pl ait y-Alftiirt
The slides are perm.-1 ted to dry naturally. A**y are
'x ^
*> * ^
labeled with the subject's name or number and the date^ They \' ^ f J
may be e.xaa&nod--fafi" the-'laberntony nt. once nr wten weeks later|S^
u> c^ioJS
x(^ c.*j____s, (-u jp)
f'
^
f '
I 01 5 04
.
rr-vyr^j "jr '-wu.......... ' ^ lij-Qn^ rlnon. y At-^bj4A4rf*s"-^hy aro inspe/tec^^ancT^d'ie^ best and roost uniform
i
one3 are selected for staining. The stain employed is made up
'"T of 1*5 grams /ethylene ^lue, 0.2 c.c. of l'' tfaOH in /ethyl
/lcohol, in 100 c.c. Methyl Alcohol. The smears are immersed in the stain for four seconds, washed rapidly with 0.025;' aqueous TlaHCOg solution, and dried 'ey u rapidly ju&fiMin a strong air current.
The resultant stain is brilliant, and the stippled erythrocytes are easily recognized. The erythrocytes are stained a pale green, while the basophilic granules are a very dark blue. The criterion of the satisfactory quality of the stain is the relation existing between the pale . reen translu cent appearance of the erythrocytes and the depth of the nuclear staining of the polymorphonuclear leucocytes. X nr*' ybfc til p (Experience, careful technique and micro scope lenses capable of excellent definition are required to obtain good results. 54--lo deolrable-^fr1 wtamintT'^i^he smears
in a strong light, ^.vith a magnification of noteless than 900
diameters. -gWfrff/f1 j luh uuy exUaia^d, /y
. eryThrocyte in -rhe "fie^Ld. -In -aur-ceere
nm* intf7n f' f1r*r "i"~t Tr^frr t4rn ` hnn ffc *~hn
or> of
the central portions of a great many more fields.
&i.--
U4JJ
tMt4******r^i
in observations in which .the npp nf prn "pi
*-
~riL~
.employed,. Ccaefvri selection of fields of most nearly uniform
distribution of erythrocytes reduces the variation in the
jj^g 01 505
number per field. hovor feliel'ess considerable. t s ?ietion in--thi.'s*" far Lor
-aftfiura The number ^per field averages approximately 250. In i h s iIpj t
nf nhasryafrions. 3mmr& fifty fields imately 12,500 erythrocytes.
b mb HiI
i..i i
approx
^ ^_
7>**c appreciation-of the limits of quantitative accuracy v
obtainable, in view of -9ttt the opportunities for variation in tech
nique m the hands of a single careful worxer, may oe had irom a con
sideration of the observations of Table II. Ten successive smears
of the blood of each of three subjects were made, after which the
microscopic examinations were carrieu out by one person. ^
Variati ons in the results obtained by two persons are shown
in Table III. Each observer made ten successive counts on a single
smear, thereby showing the limits of variation in the technique of
microscopic examination. Then each observer made one smear from
successive drops of the blood of the same subject and agairumade ten
/
counts on the smear so prepared. The c/unparyson of these two sets
of results gAvaa sum ft. id-aa--of the variability which may arise from the
preparation of smears, plus the microscopic technique.--^
I-t may be seemn tchnaa t thei e io o fair Jegrch'""5T"'aecursrgy in"
Tn fao-fe,<ffi-rgnnn 1rtmrt"1 lassaos2-",|-iphhee data wiiich 8pL appear ;
in subsequent pages show^ that the accuracy of observation is greater
than the accuracy ai interpretation in relation tc the question at
issue.
4. General Clinical Metnous
01 ^06 " ' v"
^ nf1 mnr nlafzy'
+
excellence of clinical observa
tions is dependent upon the skill, care, and judgment of the observer
./
rather than upon specific methods.. Thu a.,--It. is
pi-rfitrrMr
to da^pi o p
. ii -la of,
iwfftrt-innn
i iit. the eantial, pnrpaae.a.
urtLj^ Wtt, <C*j[
Table II
..t ,
. 7 y' .-.U-t-tt '. / , . ./ . ,,
/.
x tiLl Observations on Ten Successive Smears made frog Same Subjects
Smear
1 2 3 4 5 6 7 8
/ 10
Average
YU<~*Uj trj Sj.jUj3 Subject B. Subject J.
Subject N.S.
5 19 141 11 26 145
9 17 180 7 26 135 11 19 163 7 22 165 9 24 138 14 21 169 7 31 150 5 13 131
8.5 21.8 151
i
V
01507
Table 2L
'
jvrif,J 'Jit
-I-:. ?. t'W&a-uS 'Xi/ilS
<1 ~.1 2 3 4 5 6 7 8 * 10
^ SkU^X^x ^, /^JU ^ rf.
A/ X<*<^4w,
<L*j c#^vu-J&
'*/ . tvs si ') f.lS.J,?
U~j "fZm (f**0**, t*lsf' *-j UrlUn-J 1*4 Af,CtM
tfcc <wi-. J
# - r > .*
cBeeryStloji^on `Ptfoj Smears ^
qa fSfngi* Saw, /,<
L/ fi^QjjrSame^Sub.lWe^ ---------
vV
by D.
/
by S.
b'niAviUi*
by D.
{ *iiuvr*$ <* /`V'i i by S.
1 2 3 4 5' 6 7 8 ;) 10 Average
28 38 31 37 40 34 29 39 38 32 35.6
30 36 36 32 38 33 34 35 35 38 34.7
1 2 3 4 5 6 7 8 9 10
135 110 141 119 117 118 115 117 113 113 119.8
89 91 110 101 /" 97 7 106 92 85 110 106 98.7
vf
^ 7. yM
..vOCMLAUtt**cSLr~d Am^Ll k c ,J $ Aaltjfc. if**%,
|oe atlonlng of every subject was required,
in order, to .etermine the occurrence, duration and signifi<.^3
cance of^exposure to lead compounds* So many trades involve
some contact with lead that arej\il 3,cruLluiy-u<f the entire
C ***+dtr<*-P * ~"s
occupational history anal >>"
** i-juliiu thlo mattor.
UAAti %~Ho GV<ak & W&h*jTur4*J& '^**-14**1*
aura tn,lj^a<i..qflninn3il.nTi^i. & was desiruoie to
individuals who exhibited evidences of chronic or acute
disease which might interfere with normal absorption,
metabolism and excretion. 3. |C
<Lfvrv..J
U*JUJ
v
in | 1 effort wao--aado to detect)
-e^idenres nf .lllfteea of..inny-iaind,^ <**X -attention was
given to the discovery of abnormalities associated with lead
intoxication.
7
4- Jo t ttje sake of
of various
groups of subjects, information 'oofi a quantitative yd'hafacte^,
/ //
/S
was obtained 30 far as ^oss^ble*
/\ tleerl raSTgSfr
dala.*_and of -*44. other,,mmaaft^j^te?i s,,ame.nable -to-matheme-te-ical- treat-
mnnt)
^""n '">Hd ni 111* ! 'v--n-'-r-gtrl nv-frogeduro ,
-4 a*J i-s-vw-ir
V Jt.
rtcLJ 7iQ - \,
l *>V\ * > L$&
. ^ itwi. ,,>-0
-S*'-< & <<. tr -1+*.^+,.-
.iJ
\
1/
Bibliography t
.
y
y. vFairhall, L. ?.: Load Studies. I, The Estimation of Minute
Amounts of Lead in biological Material, J. Ind. Hyg. 4:
9, (1922)
~
2y vAvery, D., Hemingway, A. J., Anderson, V. G., and Head, T.
A.: Determination of Minute Amounts of Lead in Water, with Uotes on Certain Causes of Error, Proc. Australian Inst. Mining and Metallurgy,43, (1921).
3 Cylyli:0^ '^Taylor, H. B.j The Determination of Minute Quantities of
y Metals In Biological Material. Part 1., J. Proc. Roy. Soc. New South V/ales, 61.: 315, (1927).
V ''Francis, A. G.., Harvey, C. 0., and Buchan, J. L.: The
Determination of Small Quantities of Lead, with Special^ _ Heforence to Urine and Biological ?.laterials; Analyst, iT 77 2-6 December, 1929.
5, , Tannahill, R. V.: A Critical Survey of the Methods for the a. Determination* of Lead In Biological Material. Med. Jour.
' Australia 1: 194, (1929).
y
.TFairhall, L. T.;. Lead Studies XI. A Rapid Method of Analyz ing Urine for Lead: J.Blol. Chom. 60: 485 (1924).
7/ l C'U ivanov, V. N.: A senBl-4-ive Reaction^ Lead. Chem. Zeit. 38:
01 u 1
l