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June 6, 1967
Dr. Robert A. Kehoe Kettering laboratory Eden and Bethesda Avenues Cincinnati, Ohio ^5210
Dear Dr Kehoe:
I am. enclosing a brief technical discussion concerning the use of radioactive Fb203 as a tracer for experiments with humans. As you will recall, during your visit here we suggested this technique as a means for studying the clearance of lead from the lungs.
203
We think it is quite feasible to make Fb using our accelerator 203
and to label lead tetraethyl with the Fb . We estimate that the specific activity of the labeled lead tetraethyl will be sufficiently great to follow the lead using a conventional radiographic scanning technique as the lead is cleared from the lungs. We do not know exactly how to do the labelling at the moment but feel confident that we can do so after a modest amount of research on the subject. If you should be interested in using the tracer technique, we would be pleased to discuss the labelling problem in greater detail.
We have also calculated the radiation dose a person would absorb 203
in an experiment utilizing Pb . The dose is far below the presently accepted tolerance level. Therefore, we do not feel that the use of this particular radioactive isotope should be of concern from a health point of view.
We are most anxious to continue discussions with you as to ways we can contribute to your studies. If you have questions concerning our suggestions, please feel free to call or write.
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Sincerely yours,
!y\ v -- // N itvi s n Hi'S/ iw David F. Herring Staff Member
N15303
ETHYL CORPORATION
INTER-OFFICE
io Fr o m Su b j e c t
Dr. A. S. Hawkes Gary Ter Haar Lead Inhalation Studies
Ad d r e s s Ad d r e s s Da t e
Detroit Detroit August 23, 1967
In regard to the use of 210 Pb or 203 Pb for use in inhalation studies on humans, the following model could be considered as a working base. Assume a
person breathed in l80 -ug of lead, about 55% or 100 .ng would be deposited in his
system. Each box shows the amount of lead deposited and as a total of 100 g is present each number is the percentage of total lead deposited.
Figure I
V
Blood <
AA
k min.
1 J0 Jug
8o jug back to air
. J3
Naso-Pharyngeal
mm.
1.3 ~ug
13 .ug
11.7 Mg
Tracheo-Bronchial
F min.
l..ug 1
14 _ug
4 min.
12 .6 .ug
:\Z G. I. Tract
AA\
90 days 15 uig
Pulmonary 13 m s
2k hours 29 -ug
90 days
29 Mg
10% of that in G. I. tract is absorbed, into blood
' Using the model one can calculate the number of counts to be found in a given sample if a known dose of radioactive lead were administered. The I.C.R.P.
report in Health Physics, Volume 3 ^ I960, page 75} shows that 90 microcuries of 203 Pb and k microcuries of 210 Fb is the maximum permissible dose to the whole
body. If we administered l/lOO of the permissible dose and assumed 50% counting efficiency for 210 Pb (~^) and 10% for 203 PI (0 the samples deposited would have a total count of about 5 X 104 c/min for the 210 Pb and 2 X IC^c/min for 203 PB.
What counts should be expected from samples of blood urine and feces.
0 0 12 9 2 9
N15303.01
To: Dr. A. S. Hawkes August 23, 1967
-2-
I. Blood
A. One hour In the first hour 2.7$ should reach the "blood. If a 10 ml
sample of blood were taken and a man has about 8000 ml of
blood the following is true:
10 _ , 1. 210 Pb - 5 X 104 X 0.027 X 8000~ = 1*7 C/min
2 . 203 Pb - 2 X 105 X 0.027 X g ~ ~ = 7 C/min
B. Twenty four hours At the end of 24 hours an additional amount will enter the blood stream.from the gut. If 10$ is absorbed from the gut
29 + 12.6 + 11. fj (0.1) = 5-3$
1.
210
Pb - 5 X 104,, X
0.053 X " 801000
=
3-3
/ C/min
'
2. 203 Pb - 2 X 105 X 0.053 X -Q5o = 13-2 C/min
C. Seven days
The situation in the blood at the end of the first week would be
one in which nearly all of the activity is coming from absorption
from the gut and the lungs. As about 90 days are needed to clear
the dose from the lungs to the blood (15 -ug in the model), about
1$ of this 15$ or 0.15$ will be cleared per day. As 29$ is
cleared to the G. I. tract from the lungs in 90 days of which 10$
is absorbed to the blood, an additional 0 .029$ will come from this
source.
29$ X 1$ X 10$ = 0 .029$
Total 0.15$ + 0.03$ = 0.18$
The half life of 203 Pb (52 hours) of course, reduces its activity by about a factor of 8. 210 Pb with a half life of 22 years is not affected.
1 . 210 Pb - 5 X 104 X 0 .0 0 18 X
= 0o1 C/min
2. 203 Pb - 2 X 105 X 1/8 X 0.018 X
= 0.1 C/min
Examination of blood is of no use for 203 Pb at the end of a
week; however, 210 Pb could readily be continued for the first
month.
.
He 0012330
),To: Dr. A. S. Hawkes
August 27 1967
-3-
II. Urine
A. One-two hours ' About 90/o of the lead in the blood is very rapidly passed to the urine. Therefore., collecting the total sample after about 1-2 hours should show the 2.7%> that had passed to the blood. Thus for 210 Pb
1. 210 Pb - 0.9 X 5 X 104 X 0.027 = 1.2 X 103 c/min
for
2. 203 Pb - 0.9 X 2 X 105 X 0.027 = h.9 X 103 c/min
B. Twenty-four hours
At the end of 2k hours an additional 5 3%> will be found in the
urine or about twice the above counts
C. One week
At the end of a week the blood will be near equilibrium with the
urine and about 0 .18% should be found in one daily sample
1 . 210 Pb - 0.0017 X 5 X 104 = 91 C/min 2. 203 Pb - 0.0018 X 2 X 105 X 1/8 = i+5 C/min
Lead-210 in the urine could be run for at least the 90-day period
and lead-203 through the first 8 days
III. Feces
.
A. Twenty-Four Hours
During the first 2k hours about
11.7$ + 12 .6/ + 29% or about 50% should be found in the feces
1. 210 Pb - 5 X 104 X 0.5 =.2.5 X 104 C/min 2. 203 Pb - 2 X 10s X 0.5 = 105 C/min
B. Seven Days
After a week, about 1% of the 29% remaining in the lungs should pass through the G. I. tract and into the feces
1. 210 Pb - 0.29 X 0.01 X 5 X 104 = 1.5 X 102 C/min . 2. 203 Pb - 0.29 X 0.01 X 2 X 105 X l/ 8 - 100 c/min
Kg 0012331
To: Dr. A. So Hawkes August 23, 1967
-k
Lead-210 could be measured In the feces for many more days while lead-203
could be measured to about 12 days. Lead-210 would best be measured by
isolating it in Po-210 daughter which would require two separations of
Po-210. The lead-203.> being a gamma emitter could be measured simply by
placing the unprocessed sample in a counter. In addition an estimate
could be made of the concentration of lead-203 in the lungs, liver and
spleen by using external body counters.
The advantage of Pb 203 is the ease of counting. The disadvantages are its short half life, making rapid manipulation necessary and preventing
a complete long-term metabolic balance, and its preparation which in volves use of a cyclatron and separation of a very hot sample from a lot of other undesirable isotopes. The advantages of lead-210 are ready availability, long half life, permitting complete study, and alpha dis
integration which permits use of very low background counters. (0.02 c/min).
Lead-210 has the.added advantage that the early counts in the blood are sufficiently above background to determine very accurately the percent in the blood. One important disadvantage is that at least three months are needed to allow the 210 Po to grow in order to analyze the samples. According to the I.C.P.P report one hundredth of the maximum dose of either isotope should be equally safe.
G T H :die
cc: D. E. Cooper J. E. Faggan M. E. Gluckstein E. B. Bifkin
Gary Ter Haar
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