Document 8Ry0B9YL2YmKpm6n72Q9dnpRy
M
tb'fyf*
4
o f fruits. ,v : ? ^ R>ec)
b h o ,h1 olog 1 c a 1 :2 f.is-1< of L e a d at L e v L evels
;ile there re current; examples of db virus le ad p o is on--
i-ip in i m properly s upervised Indus trial ope ations and in
p o d i a l .ric practice- w h e r e pica for old pair;t is ohse ;:vc-;d, the
I:^i L' . significance of lead c o n p u r d c in ani: lent u rtjan at
neophe pc? lit.s not b e e n c l e a r l y defined. Th lead c one en.fruti
in V;Oil industrial tmospheras: are v e r y much lower th a n the .
curve;/!' induct rial TLV (several ,,uc/m3 vs .lid
and evi-
ChiVCO pf p l u m b i c m is c o mpletely l a c k i n g , lir/erfhcl ~s it is
"Ofj'IO:.' Able to b e l i e v e that at some point s:tcr t o f .oty ior s
read p. leaning in the usual nens-a', b o d y abo ptiOTl of lead H-Y. .-../ cf a usayiiiLudw sufficient tu cause d.!.sturbane 03 Of
n o m a l p h y s i o l o g i c a l machanj sj.ic. T hat this point 1 not yet
known- s related to that fact that traditior si bloc? ie.'ttical and
cli.nica 1. approaches to the detection 'of lead effect; at low
levels have been relatively insensitive and incapstk e of
detect ing minimal alterations. The question of the existence and ;in niflounce of ipiniiial alterations, bov;haver, Is conerax
to disc Uosrcus of tne health significance of one concen.tr
tion of alxyj. lead compounds jn motc>t fuels OJ
cnr-socprently in ao-bierv:. atmospheres.
2n cxn: Ctc.t.. a.no
RE" 001 7361
2a
Tills report contains a summary of discu s si on held in-.February, 1970, w h i c h attempted to: 1) id en tify bi ocheraical
-. .
and c l i nical approaches to. the d t e c t i o n .of. lead, e fiects. at
lv? .levels; 2) est a b l i s h the h e a l t h .sighifi nance of w h a tever
.
lad-related p h e n omena might be observed at these levels; and
3} suggest p o s s i b l e areas in w h i c h r e s earch ernphas i s might :be.
most fruitful in solving the p r e s e n t e d p rob em.3. Pa rticipants '
.included p h y s i c i a n s with varying, .types of.e xperd enc e -with -
clinical l.ead toxicology, re s p e c t e d sc lent ie ts in s sveral
.
branches of clinical m e d i c i n e and bio c h e m i s try, and 'investi~ "
gators w i t h p r i m a r y interests and bachgrourip s- in l ad' metabolism;
h.r'.i exper j-iaeiiL&.!t oxi e ol og y Several par Li O.Lpcilf S , A.!_CiiOUCji"!
eminent in t h e i r .respe c t i v e fields, h a d no rdaj or inter est in.
.lead,. T h e y were invited b e c a u s e of -their sp e ciaiized c U n r e a l
shills and.k n o w l e d g e relevant to organ syst ms. k n o w n to be
affectera-by lead.
--
Th e material' pre s e n t e d in this report r -fleet s the work of the participants', their colleagues, and others i: i the re spec--
tive ^field's of i n V e S t i g a t i o n r ""'"'-''7" - .'
. . -Par t i c i p a t ing Scie n tists
lbs. I. Barry, MID. ' The Associated'Octet . Ellesmere Port - " Cheshire-, England
" Company, Ltd.
.
Neal'S. B r i b k e r M, D. W a s h i n g t o n Uni ye s i t_y st,' Louis,. Hisd ouri
H E 00173 62
- 2b -
,(
J. Julian Chisolm, Jr., M.D> John- Hopkins U n i v e r s i t y Baltimore, Maryland
.
; Joseph It, Moyer, Pb.D . university of Cincinna ci .C in c i n n t i', Ohio
Jerome F. Cole, Sc .D.
,
International L e a d -Zinc Res ear ch-
Organi rat ion. .' " ' . .
.
Now. Ybrk, N. Y.
'
Carl V. Moore, M. D. W a s h i n g t on- u n i v e r s itv St. L o u i s ,. Missouri.
Kim Cramer, M.D.
-.
Universitetet I Goteborg
:
Goteborg SV, Sweden
..
Jean M, M o r g a n U M.D. Univers ity of Alabama Birmingham, Alabama .
Robert E. E c k a r d t , M.D,
Erail'A. Pfitzer, Sc.D
osso Research & Engineering Company university of Cincinn ti
L i n d e n , N e w . erse
Cincinnati, Ohio,
Robert Feldman, M.D. . Boston University Boston, Massachusetts
George Roush,. Jr. , M. T u lane Univers ity New Orleans, Louisian
A b r a h a m Goldberg,- M . D f D . S c . , -F.R-.C.B. Ge o r g e E. ScTireini r, M.D..
university of Glasgow
G e o r g e t o w n Tjr.1 /Vi'.\S1.tV
Giasgow; w . 1 , Scotland
W a s h ing t o n , D , C,
Harold Goiy, M.D.
.-
Araerlean Petroleum Institute
N e w York, S-]. Y .
.. '
G . J . St o p p s , .B. , B S.
......
E . I . du P o n t .de '.Nemo'Jirs & Comp a n y
Wilmington, Delaware
"Robert A.--Gyer, M.D. " ` ' University of North Carolina! -Chapel Hill,''North Carolina
L l o y d B. Teppi fr, M.D. U n i v e r s i t y of incinn;at i Cincinnati, -Ohio -
Robert c . G r i g g s ,.M.D. : Western Reserve University Cleveland, Ohio '' - ' " * ' '
D a v i d .D . U l m e r , M.D. Harvard University. Bast on -, Mo ssachusetts
Robert j. m . Horton, M.D. -
Bert L. Va l l e e M-.D ,
National Air P o l l u t i o n .C o n t r o l A d m i n i s t r a t ion . H a r v a r d Un; v e r s t v
Durham, North Carolina.,
Boston, Massac :husetts
F o l i a c N, Jensen, M.D. George Washington University Washington, D. C. '' ' -
?. w?V-*S
Kl= 0017363
.Il
Summ a r y of Repo r t s on E n v i r o n m e ntal and Hurnn Lea d Levels T h e concent rat i on of lead in soils, fcjods, Wat ex', .and
air is highly variable. Alimentary lead intake coders a range of a p p r o x i m a t e l y 0.12 to 0.35 mg/day.-: ,T h e absorpti on of lead from the atmosphere varies 6 to 10-fold. In spite of this w i d e range of lead intake levels, the amouit : Of lea d in man
0017364
3
is: r e l a t i v e l y constant, totalling about 'IGOrf^OO mg, .of w h i c h
at least 90% is stored in the bone.
\"
B lood lead levels are e ven more constan]t, r e m a r k a b l y so
in view of the wide range of exposures. When the'mean blood
lead levels f r o m 'v a r i o u s .p o p u l a t i o n s are e x a m i n e d ,'ther
seems to b e an increase in the b lood level a s one -goes from
a rural to an urbanized area. This phenomenon
no
related to the dens i t y of motor vehicles in these respect ive
communities, and the u r b a n -rural gradient i; observ sd in areas
of the world with very low number of cars, When one goes from
society to society the differences in blood lead levels are
n or impres-s i v e , .he o i o o a xeaa. .lever or ru
nans, tor
example,
approximates that for rural Nor th Americans
Soft tissue lead levels and b o n e lead eve Is dp not c o r
relate well in individuals. The lead in t h bona seems to
increase w ith age whereas the soft tissue-life nsi of .ead does
not rise after the end of the second decade In fe nales the
soft tissue lead levels tend to be slightly lower than in
males, w h i l e in' b o n e the lead c o n c e n t r a t i o n in females .1.
very much lower than in males. This lower Jtone lev of lead,
h owev er, also rises wit h age as in m.a3.e s . c hila r e n show v e r y
lo w levels in soft- tissue and bone, find n o d iffercn
0017365
A
the sexes is d e m o n s t r a b l e , wh ether the higher bone levels .in older adults is due t o a c c u m ulation w i t h a-ie or simply- due to the fact that these peo p l e w e r e living arc a. time w h e n there was more lead, in the total eavironme at is notknown. Lea d c o n c e n t r a t i o n in nones varies wp tii the bone sslec th lead content being higher in the more dense bone s and
highest in the petrous temple.
Bone lead levels h a v e b e e n d e t e r m i n e d .i i the sk o.1ep on s
of.40 Indians w h o lived in A r i z o n a during th period /00 to
m a i1450 ekS. The specimens w e r e from original 7
ites and
did not include museum material. Soil samples from within
thfc b o d y cavity and adjacent to the buried se Lc-cons
lads lead than the bone; therefore, the q u e s t i o n of sont ami.n-
at ion wa s excluded. A ssay showed 6-8 p p m in the b or.e ash ot
the rib. Sacrificial skulls from Mexico, probably Srom the
tine of the Conquistadors, c o n t a i n e d lead levels ir m o rar.ae
of 2-4 p p m of the ash. C o p r o l i t e s (muiraoifio fecal material)
found with these skeletons gives evidence of the diet on
w hich the p o p u l a t i o n lived. T h e food supply.
mPiV* i'
't\~FifSh',,pma l 1. o'Jrains- grasse-s,- and t he ..t'otai i cal lee ii c en
c entration was very low.
.'
At some point in history, environmental
fer ax
0013366
the-Civil W a r i n this country, -contaiivTDead- in conce ttrat ions
w h i c h ap p r o x i m a t e those noted in m o d e r n autojisy mte trials, viz
40 to 50 ppm.
-
In v i e w of the v e r y great range of lead] intake between
t1
individuals.jand v a r i a b i l i t y in lead absorpti);on , the ionsistency
of blood lead levels is extremely impressive; One w onders if
there is a biological basis for this consist) ncv of blood
lead levels, and whether in fact the biological basi s of the
consistency reflects a biological necessity or lead. We-have
n o evidence for this, bu t we h a v e no evidencie that it is not-
the case. It is generally true, h o w e v e r , that when a metal
snivtr-l T.n.r. L U C I V tf --L V . U
/-\v\ (i > < *" n i
r*V, /v.m T-a/'-v-* *r , rns merer r > * .-a r- r> c.'--
* AS"
JT*
ent merely on an incidental basis but rather as a s batanee .|
with specific biological importance. One cannot hel p but re
collect the early studies of so-called zinc jroxioitv , in which
zinc was r e g a r d e d solely as. a toxic metal r^sponsibl e for .
metal fume fever. Zinc was a typical trace hiatal -p esent in
amounts difficult to detect and in a ssociation -with only traces
if i nformation about its significance. W h e n in 194] , it be-
came apparent that zinc was- an essential constituent of the
met:alloenzyme carbonic anhydrase it b e c a m e apparent T h a t zinc
w a s . n e i t h e r incidental or solely .toxic but iln fact 1i.ad a s p e
cific b i o l o g i c a l funcfieri. That a similar a ntna t i o n may apply
0017367
o
in the case of lead has never been critically or systematical!
examined.
Xn rnaking. inferences fram b 1 ood 1ead 1ei/el dete[rmination.,
. ' I.
it is important to r e m e m b e r that the analytical tecljuiicfues
for lead assays at low levels do .not yield ikpressivfely c o n
sistent results. in many situations the variation between
repl i c a t i o n s is grea t e r tha n the v a r i a t i o n b e t w e e n i.ndividuals l_
in a sampled population. In addition the precision of analyst;
b y a given laboratory may vary trom day to ahy,
II. Summary of R eports o n L e a d and S u b - c ellular U h y s i o l
T here are a number of metals jthe b i o l o g i c a l furiction of
Ui'lKliO'.Vil.
C*1*'j1ir*i I1
metals in tissues and b i o l o g i c a l fluids is nteither an index
of their importance or of their biological sfignificance, posi
tive or negative. There is still active disfcussion as to whether
s e l e n i u m and c h r o m i u m are e s sential trace medals or simplv in-
c i d ental metals i n c o r porated into tissues. bead is m a
similar category. W e do not k n o w w h e t h e r of; not lead has an
essential biological function.
Where metals have been known to interact with Essential
b i o l o g i c a l systems., they ei t h e r interact w ith prote. .ns ox*
I
with nucleic acids or with, integrated system^ such as o r g a n e l l e s ,
KE 0017368
p r o b a b l y w i t h the m e m b r a n e s . A m o n g the proteins, tnose 'chat:
hav e b e e n e x a m i n e d e x t e n s i v e l y are the enzymes. Eh zyiaes often
contain a metal which is bound in such a specific r armer that
it cannot be remo v e d without loss of activity. Thi s p h e n o m e n o n
is not related to activation or inhibition of an en zyme but
rather to the intrinsic activity of the enzyme. A large num-
h e r of me t a l s are b o u n d t o nucleic acids.. |The func tion of . 'l
these metal-containing nucleic acids is presently nt ireiy
unknown, T h e r e l a t i o n s h i p of metals t o organelle function is
also not understood.
The sites to which metals can attach in biolog rear mate rials are not infinite. Metals can attach t o the enc *i \o'n
amino acid group of lysine, to the carboxyl groups or gruramic V
and aspartic acid, to the suifhydryl groups of cyst ene, Rin
other less c o mmon ways such as with the phelnoxy gre up of tyro-
sine.
in
the
case .
of
metals .
such
as
lead, '
bonds
11
are
stable,
W I, '
immobile, and polyd^ntate.. Lead, can combin e w i t h any ox- all
of these groups,and it is misleading to believe the t lead
associates only with sulfhydryi..groups to form mere aptides
. W e d o k n o w that lead ca n be toxic under certai n c ix-cunv-
stances, but so can any metal. Essential metals ac
proteins.. When these metals are present in sneers and attached o ligands w h i c h aire .not the normal .active letfiI-bi ppr"iJV"jf f? f-./rx
RE" 0017369'
s
ol: these
metalloproteins, inhibition
o c c u r s ,1' i.e. i
,
the
raeta]
is toxic, Whether a lead mefcalioprotein exists and nas an
essential b o d / function is not.known.
Worlc w i t h c a r b o x y p e p t i d a s e illustrates several imporrant
points. C a r b o x y p e p t i d a s e is a zinc-containiirig enzyrr.e w h i c h
has t w o functions: first as a peptidase, secondly aft an esterase
It is p o s s i b l e to remove the normal zinc constituent of the
enzyme and replace it wi t h various other metals. Wh en the
zinc is remo v e d and r e p laced w i t h lead, one finds th at the
m e t a 11oenzyme has lost is peptidase properties, but the esteri i;
properties are increased; in fact, the lead ciarboxyp eptidas
is a b e t t e r esterase than the nat u r a l l y occuprinq zi nc a n a l o g .
Th e poinc neie is tliat a lead m e t a l i o e n z y m e dan have
fectly legitimate biological purpose.
;
pa:,
W o r k w i t h this enzyme is instructive in a sec on sense:
j.c lias b e e n round that the metal of c arb oxypcajptIdas a is att a c h e d to three ligatas: two i m i d a z o i i u m groups cf (histidi ns cine
one c a r b o x y group. .Sulphur-containing amino s.cids are not in-
volved. Tills o bservation is c o n trary t o many! of the exp ectaticns which h a v e been expressed in the literature, i
`I 7\nocher metalloprocein, metallothionein, ; was di!scoverei first in the horse, then in other species and|certs* ly in m a n .
K 0017370
.. ..
Met-allothi one-in is a e a d m i m u - c ontaining- p r o t e i n w it h a
molecular Weight- of about -6000 without the meta] 6800 1 n
the metal. Th e p r o t e i n is c o m posed of sme 52 ahlino acid
groups, o n e -third of w h i c h .are cystine, Accordina to tra.dr' - iI
t i c n a l 't h i n k i n g , this h i g h c o n c e n t r a t i o n jof s u l ft vclryi groups
should y i e l d a m a t e r i a l with, great avidit
ad. This is
not the case in vivo, however, and lead is not ffielentiy
strongly b o u n d to me t a-i1oth i one in to displace cad mium or z i n c ,
The b a l a n c e b e t w e e n metals is essent ial in a .1 considera
tions of metal biochemistry and toxicity, Metal interact and
may b e antagonistic, metal A protecting' f com tue exrece ox
ii'C ' - a i . j j ,
o * i . a i 1. .
.
>if'1 J". -\- `erj
example is that of. m o l y b d e n u m i n t o x i c a t i o n w h i c h is observed
in Somerset in England and in the western part of the United
States, The manifestations of this disea may b enhanced
b y the p r e s e n c e of excess copper. It is cjuite lively that
lead, iron, and p erh a p s other metals Interact in vj-ays which
are relevant t o this discus s i o n s bu t are n ot well u n d e r s t o o d .
T h e competition, b e t w e e n metals f o r .ligands! depends upon numer-
ous factors, most of which are p oorly u n d e r s t c o d . Included.
among these factors are the amount and character o
ho j_ c: n a
the p e n e t r a t i o n thro u g h m e m b r a n e s b y m e t a l s ,.-the .'stability
on s tant .ror tne several m e t a l - l x c a u d .cono ieri b i n a the ep a c xal arrangement between
HE 001-7371
ana s eric laccor tali? ;ind ligands,
It is relevant to examine systems 'which might p o s s i b l y
.
i'
be disturbed, by lead and hence represent target systems tor
lead effect, One such .system is the pyru vate - c a r b o x y l a s e
system vherebv pyruvic acid is introduced into the Krebs cycle b y acetyl co-enzyme A. T h i s sy s t e m is % conglomerate of sulf-
hydry 1-ccntairsing enzymes- and co-enzymes, including thiaminepy rophosphate folic acid, and cc-enzyme A cnd is rentrai in the energy metabolism of the brain, we know, for example, tha
t h i amine deficiency, as in W e r n i c k e 's synch orne or Korcavkof f 1s
psychosis /leads to g"ross f u n c t i o n a l abnormc iliti.es. A similar syndrome has b e e n observed, in -foxes fed on f-rsh en rails -which
m J(~ 1-g -I *. v n i r i . o - n
r:0 <tv"0r?\f o
r'hb r
thiamine- is destroyed, absent, or interfered v/ith b y m etal
attachments to relevant sulfliydryl groups would be expected
to y i e l d the same c l i nical syndrome. That 'the eenijral nsrvou |
s y s t e m manifes t a t i o n s of lead po i s o n i n g may be rela tea to lire
feronce v;ith p".y'ruvic acid m e t a b o l i s m m*ay.'wejll b e pc s s i b l e .
T h e p r o b l e m of m e r c u r y intoxication, as in the chrc m e mercu-
r i a l i s m of the M a d Flatter, the q u e s t i o n .of arsenic :oxicity and the therapeutic effect of BAL, a sulfhydry1-c on t a m i g material, are all relevant to the question of metal bind!ng to s u Ifhydry1 groups c the pyruvate-carboxylase sy stem and the disturbance of this system bv-extraneous metals
0017372
Th e p e r i p h e r a l ner vous m a n i f e s t a t i o n s -of lead poi s o n i n g r
` I;
are not r e l a t e d to these phenomena, but it |is entir eiv possiDle
that lead may attach to sulfhydryl groups o|f the n =ur oc onduc 1 1on
` I
system peripherally,
'i
I
A n o t h e r s y s t e m w here inves t i g a t i o n m a y yield i 'for mar x on
on the b i o c h e m i s t r y of lead is that related to oxidtstive phos.i
phorylation. This process depends upon thejintegr.il
mitochondrial membranes, which among other things, preserve
the r e s p e c t i v e levels of c a l c i u m and p o t a s s i u m insi de and
outside the m i t o c h r o n d r i a , Impairment of tdjiis meirib] ane b y
carbon t e t r a c h l o r i d e is a s sociated w i t h a dramatic Shift of
i ' v . 1 s ' - i n 7 . `i 4 y , .""i i " n
'i 'V !
ih
p , r 1 i i r i , * t i! i ; > 4 ' r u i
.
and phosphorylation. The sulfhydryl ligandi of the mitochon-
|
d r i a l m e m brane suggest that the attachment cj>f lead or other.
metals to the m e m b r a n e ma y interfere w i t h itjs intrinsic met a Ii
holism and its ability to protect the intra-jmitochondr iai
environment. U n d e r such c i r c u m s t a n c e s - t h e rrjstals might be
' - ...
I
e x p e c t e d to cause significant damage to the energy rr.etabo3.isra
.
'i
svstem,
*
T h e r e are u n d o u b t e d l y ways in w h i c h thel effect o f .lead
on nucleic acids mav b e measured. W e 'know that the binding of lead to nucleic acids causes their hydrolysis. Research in this area is cur r e n t l y less w ell devel oyse .2, h owe v
*15.-.
Sum m a rv- of Rep or t s on L e?xd and 'the K,id ney
--
T h e r e is no doubt that lead in a b n o r m a l l y h i g h aracunr
may cause acute or chronic renal injury, in children acute
lead i n t o x ication may b e associated w i t h a irenal le $3.on
typical of the panconi syndrome. In cases pf intox icat i o n
without encephalopathy one nay see either akino aci furia or
g l y c o s u r i a or both. In more severe cases, such as vith en-
c e p h a l o p a t h y ,the triad of the Faneoni syndrome may ':;c seen-,
amino aciduria, r i c k e t s , and k y p e r p k o s u r i a in the i.essence of
extreme liypophosphdternia in the range of 2 fag % (no. mal = 3.5
to 4,5 m g '%), Fructose and glucose are excreted in the presen
r- ........ .
O '! -, - 1 ,i' Vi--'/~ -- -j--j-. ,, -- , -i i ... ; ; ,
sugars varies. Some c h i l d r e n excrete c l o sejto a gi am of cj.tra i
in a day although the b l o o d citrate .level ib normal
During the acute episode seme' of these; child.ro hav e
shown the inappropriate secretion of ADH. This ohs ervatjon
cannot b e cittributed to treatment s i n c e 'it has b e en observed
b e f o r e ti trnent is initiat
th EDTA has
K - '/ lsn
i .> 1-k i * > r .
to canee a" trans
erma ph os--
a , and a tr ansie:
d u r i a,
r e a trnent, many o
ndrciit are
treeted. The me ituria is gone Within a week; the
Is c5;";rs vi th in
KET 0017374
-.T -
Arorntography). Bons changes resolve within ? to 8 months.
E D T A m o b i l i s a t i o n tests in which. P T H wa-s* used as we
to mobilize lead stored in the bene have been attempted, In
sene ca ses sufficient; PTH ha s b e e n used to raise th Q s erum
c a l c i u m level to more than 13 mg %. Althoujgh the aiaount ox
'
'r .
i
c a l c i u m in the urine i n c r e a s e d 3- t o 4-fold, there w a a n o in-
crease in the u r i n a r y e x c r e t i o n of lead above that w h i c h wj
associated with EDTA alone.
W i t h respect to chronic renal injury there is, of course,
the A u s t r a l i a n m a t e r i a l w h i c h shows quite ejonvincin jlv that
under certain conditions of exposure lead ihtcxicat ion can
i ,*> " r - i * i- / - \ e t V *y .X. C_ v~v C - 'w V - i i J u
- v s - v- v V~- 4 * -i c
it'
t .U U ,1 . k.> c
d i- n o t f jn O, '.4 V -t . } . w . J
t vs .J.. .1 *
*. * f I/*-. *--i -> v s x.J .> '4 U l A V .
.
I have failed to demonstrate, however, an equivalent Phenomenon
in the United States, Th e E D T A m o b i l i s t iofc tests .n the; Balri-
more g r o u p w e r e normal and -it was not p o s s i b l e to d m o n s u r a u e
chronic renal injury. Epidemiological factors must tlC C OUil'C
for the dissimilarity between Australian and American exper
ience. In the U n ited States the patients have chewc d paint
at some time b e t w e e n their first and third jj-ear o n e . In
Australia the children are in the 6-to IG-y ar age ranee and
absorb lead through the ingestion of raindrops which contain
lead from decomposed paint on veranda rails and r o o f t o p s .
Phis may represent a less `intense exposure I ire a mo? prolonged
K 0017375
14
one. M a n y of the A u s t r a l i a n - p a t i e n t s 'have a jpes- cav s deformit
and tophaceous gout
A nu m b e r of cases of lead p o i s o n i n g in adults t ive been
observed in Alabama in relation to the prolonged exea ssive con
sumpt i o n of .illegally-prepared whiskey This di'seas- ce curs "
as well in Georgia, the earolinas, and indeed m ay d o . expected
anywhere that w h i s k e y is illegally p r e pared i n soi.oei ed vats
and distilled, through old automobile radiators
'Til ,tii- e is evi-
deuce that over 50 m i l l i o n gallons of illegal tie on oil are
d i s t i l l e d i n 'this c o u n t r y every y ear and that over 50% of the
illegally-prepared alcohol contains more than
Si U C n o r U : i S ii!=
' .\r-.1" -ii -|
m g .o lead/ ucr and
even as high as 80 mg of lead per liter.
In Alabama experience the typical patient is a n =gro male i
b e t w e e n the ages of 45 and 60. Perhaps some 25 % of h aspital
admissions in this group have been exposed to
alcohol.
T h o s e w h o h a v e e x p e r i e n c e d severe and prol o n g a expos ur s of
iO y iars or m o r e are t y p i c a l l y found t o b e ant raic, t o h s.v e a
s t a b l e renal insufficiency, and to s h o w a nor na i pye jlpgr a m ,
a l t h o u g h the kidneys, while s y m m e t r i c a l > are occasion 1J.V somewhat smaller dtidaaeyg- than might b e expect id. Tile re .is no
evidence of infection or of glomeralonephriti inert is nonspecific wi t h very few cells, and
Tne irj.ne seu.1. ofIi't
HE" 0017376
p;cotein/liter is e x c r e t e d in the urine, T h e b e is n o glycosuria, Rena] b i o p s y shows interstitial fibrosis without inf .ammation. Glomeruli are rather well preserved; however, there s evidence of degenerating tubules and a loss in the number of :ubuies Host of the .patients have naphr.csc1er os s of varying aeqrcei as w e l l .
Patients in this group with long-standihg lead exposa
and renal impairment may have symptomatic saturnine gout. This
can b e d i f f e r e n t i a t e d from p r i m a r y or h e r e d i t a r y goult b y the fact that saturnine gout follows a p r e - e x i s t i n g rena 3. aisease
and has no increased pool of urate but does have a
T.-, v u j > \ e.!. o r
n >" m
' i > v-vr'x-.
creased metabolic pool of urate, and renal ijury ro liows r a m e r
than proceeds the appearance of clinical gou t. One would not
esponsijudge that any of these patients reflect sen S i t i V S r
to lead insult inasmuch as they ha v e b e e n w thout er ce p e ion
severely dosed over long periods.
-
From the morphological point of view t e exassi 1 hall
marks o f lead n e p h r o p a t h y are severe nephros c l e r c s is . aovancec:
tubular degeneration, interstitial fibrosis, ina iru.ran u c l e a r
inclusion bodies. The bodies are acid-fast i U C U U S l ! ns which d
not contain iron, T h e y are unlike inclusion
seen xn
viral diseases which affect the Kidneys,
vu cui ari
maqaiic disease.
".
,
C o n s i d e r a t i o n s of c l i n i c a l .renal disej&se cans a by l e a d ,
i'
particul-ar 3.y the r e l a t i v e l y acute episodes;! in-chxl Cren, suggest p o s s i b l e p h y s i o l o g i c a l interpretation^,. The aeute effe< of lead u p o n the k i d n e y is-'manifested b y a| disturb ance or t r a n s e p h i t h e l i a l transport.mechanisms' fox d. varxsr.v od ingly u n r e l a t e d solutes: glucose, a m i n o a d i d s p h o s p h a t e ,. and urate. In the no r m a l k i d n e y these solutes arein the r enal tubule, against a c o n e e n t r a 1 1 c}n g r a d e energy-dependent, energy-generating transp the lead syndrome the transport of each of these p tubule r esorbed solutes is modified, giving
.1. CJ. _ .
syndrome. It is k n o w n from studies of intestinal e pithelium
" | " 1ancl isolated p e r f u s e d nephrons that the ttaisport of glucose
is in some w a y s o d i u m - d e p e n d e n t . Studies ofj isolatetQ j etc "corexcii.
systems sho w that the transpc of some arainjo ac id C-nil b &ac iurr
ons t o b e l i e v L that P cospiriate transport is s o d i u m - d e p e n d e n t . A l l t h e s e p r e s u m a b l y thLt _LU1
do-pendent t r a nsport 'm e c h a n i s m s then are impaired b y |ead.
, .I Simultaneously, -uric acid is m o v e d f rom the ciapiilari
tie tubular fluid. The impairment of uric ac id trans sort: uy
lead results in a retention of uric acid and jurieemia arc reasons for b e l i e v i n g that uri c - a c i d rani s vor-t ma
There
odi viTi-dooendent. T h e m e c h a n i s m of excretior of h
S'5
is not fid
u n d e r s t o o d but at least in the chicken it involves tjhe pas
aqe of lead from the c a p i l l a r y across the" cell' 'to the tubular
lumen. L ead is also filtered so that there may c o n c e i v a b l y
b e as v?eil' a r e a b sorptive m e c h a n i s m for lead. In arty case,
lead crosses cells and in this transient''ma\j alter the m a chinery
. ior the transport of glucose, amino acids, jjfoosphat^s, and
urates, the mechanisms for which appear to be closely coupled
to sodium transport.
Sod i u m transport is the p r i n c i p a l en e r q v consu: er m tne
kidney, accounting
at least 50% and perhaps 70 or 8 0 % of
cxygen and substrate consumption. The search for common
derouiinator for these vari o u s Lranspor L abuorwrid .1.L.:ios suygosta
:hat one examine the so d i u m transport and the enex-gy? p r eemption
mechanism in the kidney.
A r e asonable h y p o t h e s i s is that lead .in transit through
the epithelial cell modifies the structural and functional in
tegr i t y of mitochondria. W e k n o w t h a t 'mito c h o n d r i a are well
j e q u i p p e d for the transport of calcium, and :j.t is qu:
that lead, is tran sporte d in the B3.
Lfymi t o chondria migh t well raodd the
v;hi ch drive the s oiuta- Irani?.por - it
T.phai:e, amino ac id s , and "U cl!:e. In
the ae transpo rt n echani
`rm e coir
lain thi mechanx sins ose, phoS" ;nce that, orption,
-. K 00173 79
XO
SU2?p r X s i.no* to f present as wall
n sodium dueed
h<-*
modj.fications are manifest. 'v
'j I
Definitive studies to examine this hypothesis have not
been conducted. Experiments have been conducted, h owever,
which shed light on several features of the functional renal impairment due to lead. whe n rats are fed for two iceks on a
diet containing 1% lead acetate, the total urinary jauno acid
n i t r o g e n increases to a p p r o x i m a t e l y 2 to 4 -times no rma.L. If the renal tubular cells h a d b e e n hilled, as with ca^-hiium, the
excretion of aiph?/amino n i t r o g e n then w ould oe appr xixnate.ly
-ii'.* \ _I uiO O I 1 0 r r i u 2 2.
U ? ;G C u .ij 0 1 2 0 . 0 0 -b 02? *3 2
. c.<.
e xperiments the renal tubular cells are func cj.onxnq but at
less than optimal level,
W h e n one does cl e a r a n c e s t u d i e s , the cl sarancs of glycine
is net i n creased to the extent of that for the. other a m m o
acids; h o w e v e r the amount of glyc i n e is very much .increased
in the urine. Tills reflects a m a r k e d increa :e in cn e p l a s m a content of glycine, an. o v e r f l o w h i n d of amin 2) filO2O.Lij!ia. for
glycine. One wonders v/hether rhis glycine comes fro:ti an xn~
p a i r e d c o n j u g a t i o n of glyc i n e and succinate m the s acnes is
of delta a mino levulini c acid, a q u e stion raised b y IiaaerPror o o n v o cir ,o cHO'c, `\1ii-e clCh'it'cu'jCi? oi t'o'os trie snei ci'xot id ine
K 0017380
19a
is increased more than that for the other amino ac ids. Since
lead can form bonds with the p h e n o x y group| of tvro sine and
the imidazolxum group of histidine, one can specul ate that
the binding of lead to these two amino aci is re lated to
xf c learance,
-
It has been suggested that the amino- aciduria may b e
related to changes in mitochondria. Isola ted mitebhondria
have been studied and show swelling and defect in oxidative
phosphorylation, This defect is dem o n s t r a ied with a p y r uvate
substrate but not with succinate. These findings indicate
that lead interferes with early stages of electron transport,
m i s m t e r r o r o n c e being incomplete awl noli block.in g elec Iron transport entirely. A d ditional studies are requir ?d to
localize the effect of lead on m o lecules in the "c ompiex o n e '
part or the electron transport system.
M i t o c h o n d r i a from normal k i d n e y s havej b e e n is elated and
main t a i n e d in a m e d i u m w i t h pyruvate-phospiiate b u f fer, no
EDTA, an various concentrations of lead, At a lead cone en-
..
' . ...r? " '''
tration of 1 x 10 ~ molar, there is a small effect with partia
uncoupling. At a c o n c e n t r a t i o n of 2.x 10~D molar h e r e is
c o m plete paralysis of re s p i r a t i o n indicating a tox .c effect
or the lead upon kidney mitochondria. The concent 'ation of
' H 0017381
leaa eff e c t i n g h i She;
snewn to be toxic in Studies nave bo
tes of
lead 1 oc a Ii 2at i on in
:iere is
more lead in the -cel
.tccnond: cxa; hcw-
ever for those rats on 1% lead acetate diets there Is a small
increment of lead in the nucleus, primarily in the Intra-
nuclear inclusion bodies. It is not p o s s i b l e or ar h r o prlate
:o compare the c o n centrations of lead in raifochondr ia rrom
in v i t r o studies to in v i v o studies. Nevertheless, -lid- con-
centrerions in b o t h systems appear to be of the sait ; croer or
magnitude. Concentration of lead-in the intranucl ar inclus!
b o d y can b e ' d e m o n s t r a t e d b y a utoradiographid tochni pue follow
ing exposure to labelled lead.
T h e m o r p h o l o g i c a l appearance of the intranucle ir inclu-
sion b o d y in rats is the same as that observed in h Umans -
acutely exposed to lead.. The e l e c t r o n mic;
appearance
of the body is characteristic. There is a dense ce itral core
surrounded b y ' a p e r i p h e r y of fibrillar material co ita in ing `
some hind of material in the matrix. The nucleolus in the
nucleus is normal under these conditions indicating that
there; h a s b e e n n o i n h i b i t i o n of p r o t e i n synthesis, It is be-
ieved that the f o rmation of the intranucIOio; j.ncrusi
is ir.dependent o f the x;ucloolus.^~w.d:f'--d;G-daoIievrrl"'-'c-:iT:
19c
-ittsAwei&'cwi- body is formed b y acc r e t i o n ..of lead- __ ,
comp]. exec p:
grows by continual addition
of th 1 s iicXtn
;ur-. typi~-
cal ly only :
j. The
chang es con;
oms lyosomal
phenomenon i are n ot spei
tubles /
Th e in-
class ical n\'
i|d nucleoli,
Suudb se q uent l1*y u l t r a s o n i f i c a t i o n de-s-t-r-i-es the nucleoli v b u t ..
does not daa:mage the intranuclear inclusion -body or a Iter their
t..tit.J"*"X*'i">-!-"1ology.
.. 4 - -H T V -
r cp
_l W . O . J I
< i .
i . t~:
ti
sisti ng inos'
ned from
sixteen rat k i d n e y s . . W h e n the-bodies are treated wi th RNA'- -
"
i
ase or BNA-ase there is little if any defect!, indie ting the
Vv>
y \ 1 v_>, t-- \
/. ' Y `/ s s '
<i v C
: !
p r e sence of RNA or D M A or their compl e t e absence, 'Ireatment n " !'
w i t h proteolyti c enzymes such as -t r i p s i n .dods cause a change
which apparently reflects the splitting off |oi: a p r o t e i n
fragment. The remaining materials presumably still contain
'.
''
''
j
i lead and some protein. More positive identification has not
Yfi.ai.'i.
been possible with the quantity of "material javaiiabl e .
-
a!
'
T h e r e is evidence that -lead enters the urine b y b o t h glo-
ionitir lining .
KX. 0017383
cell/. It is h y p o t h e s i z e d that lead t r a n s p o r t e d ac :oss the
tubular lining ,cell is in t h e ..form of a diffusable liqandcomplex and that mito ehondria are expos ed to this complex. Lead in the urine has been shown i 0 be in both an inorganic
and. an orga nic form. Th e organic form is 'a compie X wich a
sma.ll ligand w h i c h has not b e e n p o s i t i v e l y identif l e d . In
cases of lead poisoning, it is a p p a r e n t l y the orga nically
A.
complex lead which increases m tne urine.
i
I
Intranuclear inclusion bodies may represent
tor age
': of excess quantities of lead that enter the nucleu s of the
.
prxima], tubule cell. Bodies are noted inj rats w h e.n their
n 'l 1!
hd
*r
r ? p f * ^5 *j_v*i ^
0 ^ /I
m fr
q
1 _ O l 3 t i * p 3 v `j I ' l l . , ,
1ove 1
exposure which does not cause anemia or other sign : of detri--
mental effect. Thus intranuclear inclusion bodies may be
among the most sensitive indicators of chajnge.
It h a s b e e n oted, hov;ever, that effects can be observed
. at this and lower dose levels if rats- re pl a c e d on a 1 cw--
c a l c i u m diet, i. e. , 0.1 g r a m percent, whicjh is jus t sufficxen
to prevent hypocalc-iumio. Purina Laboratory chow includes
c a l c i u m in excess of that required b y ratsj. Gn th is low- . '
c a l c i u m diet lead at a c o n e e n t r a t i o n of 0 .& millig rams p e r
mi 11 i 1et er has to date les/id to abnormalities /inoli; ling elevat d-LA and blood lead levels.
K E .0017384
It should be n o t e d that c o n centrations of lead .n arxnK-
ing water to which rats show no significant ^response are still r e l a t i v e l y high, and that the; rat is a relativ elv r e s i s tant species to lead intoxication.' The rat jmay serv e, however,
as a m o d e l to study the vari o u s factors vhicjh in flu* nee lead
intoxication such as low-calcium diets or pxje-existl ng renal
disease.
....
!
;
It is p o s sible to develop an hypothesis! w hich xJelates solute, t r a n s p o r t failure, d i s t u r b a n c e s of oxjidative. p h o k p i n o r y 1 a TM
Lien, and lead in the intranucleaj; inclusion! bodies, Central to
this h y p o t h e s i s is evidence for the t r a n s-tubular ss
l ^ i r"
.i *-at xs-s. _il _ rx - u r M e' * ! .- I
x ip
v -'
/ `o t . ' u .
b l o o d lead is a t t a c h e d to the red b l o o d celjl, there j . S 3. .L2-C.-1 rj, ! 1Q
bound diffusable form of lead which passes abross th e renal `
tubular cell. Mitochondria are exposed to tbis lead which move
against a gradient into the nucleus and into! t h e .int anuclear
inclusion bodies, probably as a lead lipoprolein complex. In
V>.L'\
\
a sense, the inclusion body represents a protective mechanism
tending to v/itharaw lead from the renal tubular cell,
If one is to exam i n e the effect of l e a d [on oxidative phos
.
i.
phorylation, it is useful to examine experiments wh ich have
' ,
' -j
b een done in cases of e x p e r imental (hetrapa.i:bone chloride intox
ication, W h e n this chi or inatod hydrocarbon, is admin rentered to
E 0017385
rats and oxidative p h o s p h o r y l t ion is .examined vitri suecirx ' !' i
glutamate, and act in pate substrates-, one -observes i::hat- un-
i
c o u p l i n g does not occur until some 10 to 'li hours er ^ 'I
_ i.
a d m i n i s t r a t i o n of the carbontetrachlorj.de. i T h e r e .1s then . 'i
rapid u n c o u p l i n g w h i c h exists for some 20 flours, a r
time the process returns to normal. It is easy to uno o u p 1s
oxidative p h o s p h o r y l a t i o n wit h lead in. vitr"'j-jo, in vihl;ich cases
I
the m i t o c h o n d r i a show a h i g h increase in lelad content. whe n
in v i v o studies are conducted, however, the mitbchc ilCl'/f d.Ci , T;V.ri Tl J- O
! showing a v e r y h i g h concent inti on of lead ^ajs compel so. to all
other subcellular fractions, snow n o evidence o f 'in pairment of 'j
/*%*' r i
^ 7o. p V
c
y l *-j -5~ a
!
is n ot uneierstood '
/ animal
m d adjust ror m e .
he int act organism
b e t t e r o pportunity to attach to active enzyrhe si
than would
b e the case in- in v i t r o experiments. irg v i t r o e x p e r i m e n t s , in
w h i c h the effect of the order of addit i o n id examine d,. often
show that the addition of substrate and co-factors influences
the accessibility of b i nding sites on enzymesj to administered
metals. P r e s u m a b l y in the livinq animal in which cerribination:
" "
I
of co-factor, substrate, and enzyme occur more actively, lead
might h a v e a b e t t e r chance t o interfere. This .ape-jars not to
to be the case, however.
A d d i t i o n a l .clinical..and experintent-ai studies relevant -
to tine effect of lead u p o n r enal function might b e attempted;
1. A' g r o u p of p a t ients with lead intoxieati.cn might be
put on a salt-free diet. It is c o n c e ivable that- the distal
tubule and the loop of Henle might not be able to compensate
for a defect in proximal tubular sodium resorption. A simple
screening technique r h t test and demo.nstrate a defect in
p r o ximal tubular rest reion of sodium. If th.p test is xnegative,
it is not meaningful; . it is posit acre , h o w e v e r , it is highly
significant.
.
u n c t u r c techniqu es might .be used to
imal tubular resorption of sodium.
.
3. in v i t r o t echniques are available for studying sodium-
transport in kidney tissue slices.
4. Uric acid is p r e s u m a b l y t r a n s p o r t e d b y the same system
that transports organic anions. The kidney uses as a primary
energy substrate fatty acids, which are delivered primarily
by organic anions, e.g. , paraaminohippurate One can measure
how effectively rabbit kidney cortex slices concentrate para-
arainohippurate from solution in vitro and the influence of
u
22
l ead added t o the m e d i u m defect in th"!1ran sport of PAI-I
is induced,
............... .....
` ' ..
--
5. .Such slices m a y also b e use d in a similar study of
the uptake of amino acids,
.
.
6. One might also measure A T P levels in the k i d n e y and
levels of substrate and co-factors associated with g-lycolysis
and oxidative phosphorylation.
7. The e x a m i n a t i o n of oxidative p h o s p h o r y l a t i o n in the
mitochondria of lead poisoned, animals might be considered.
8. A m i n o acid infusions might b e e x a mined in lead p o i s o n
ing to see if an aminoaciduria insues in any predictable manner.
W o J-K. Oi l V i i*z: j l tr X i cl .L l a 1 1>y>O j T I ' O -L
i . ... T. t } i"u .* *It i*v
1 0 . St udies of s o d i u m t.ransport in the relat ed fr og kid-
ney . red bl ood cell, and oth er pi-lysiolog ically ac tive tissues
are appr opr iete ,,
1 1 . Th e in vivo kinetic s of glucose resoroti on in the
presence of lead can be examined by glucose titration studies.
Bicarbonate titration studies can be utilized to test this
sodium-linked proximal tubular function.
J. Su m m a ry _af Espprts jan L e a d ar.d the Kematopo.ietic s ystem. G etrec of heme
h e m e s y renesxs occ
X. J, cell
23
for n ormal cel l u l a r fu net ion dA1*.1. s t n
' y - k J - p -, -{-* ' r \ 7
'the r e v i e w associated With rh e h emat <
ove clapped w i t h other area.s , par ticu:
-! y , -o n e r v o u s system.
It has b e e n 'known for ye ar s the
in the mature red cell in v-ivo, in y.
by read cells are expo sed to lead inn_ v i t r o and returned to
the living organism. Aneiri.3. due to
in children and in adu I t s .
nT
.i.
1ead
<
ica nt a n e m i a is rather rai- r per haps h 0 : 3 pitalired lead verb ers and ch ildr
ei i a . V anemia. In c h i l d ren l :jl c ? ef fect
>rten ccrm-
b ined wit h iron defici ency w n.ich c avi f.
more widely noted, T he anemia is typically microcytic and
h y p o c h r o m i c ; how ever it is sometimes norrnccyiio and n o r m o
chromic. The reticu1ocytes are usually elevated to a minor
degree, perhaps 2 to 12%. There is an increased erythyrocyte
index, meaning increased erthyropoietin- activity or at least
increased s t i m u l a t i o n for red cell production. There i.s no
evidence that a g GP deficiency, such as is observed in some
10% of American negroes, has any effect on anemia due to
loud. Similarly, alcohol dees not appear to influence the
r.-c -
j.
KE 0017389
24
.....
In studies of red ceil survival in lead workers there .
may be shortening in- some-. In -h o s p i t a l i z e d patients, how--'"
ever, some half of the adults do show red cell survival
decreases. Studies in c h i l d r e n show t h a t *the shortest s u r
v ival time, is associated with the shortest and most acute
lead exposure. With intense, acute exposures an acute hemo
lytic anemia ma y be seen,. Some y ears ag o p a t ients w ith
carcinoma, who were treated with lead because of a presumed
anti-neoplastic effect of lead, were observed to have acute
hemolytic anemias.
F erro k in o.t ic studies show "C1clt ir on is absorbe'
l , "5 . r- ii.iu.I 1'Jd'J'J.liO*." normally.
"1 ; r * -iJ .
V. - J -
Cx u
iron into the dev-eloping red cel 1 d os:s not seeni to b
In vitro studles, however, show that high concentrt
load seem to interfere with the passage of iron from trans
ferrin. to the d e v e l o p i n g red cell. Long chronic exposure to
lead appeal's to reduce the turnover o f iron and the clearance
of iron from the plasma. This is associated with a reduced
utilization of iron for new red cell production. In acute
exposures in children ferrokinstic studies are typical of
who.t is seen in h e m olytic anemias. T h e r e is a rapid 'uptake
of iron in narrow, a rapid clearance of iron from the plasma,
and a r apid ut i l i s a t i o n of iron for red coll pre-duel loi'..
UE..0017390
i
StipPle^cells 11ave b e n c l a s s i c a l l y recorded in lead ..
poisoning.. T h e r e is n o co r r e l a t i o n k n o w n b e t w e e n the nura- .
her of stipple^ cells and.the intensity and type of symptoms
observed. Experiments in animals suggests that stipple^ceil;
are preferentially sequestered in the spleen. Splenectomy
or a d m i n i s t r a t i o n of lead .to splenec t o m i a e d animals results
in the increase of number of stipple^ cells. The spleen
reduces the number of stipple^ cells either by maturing, then
and returning them to the systemic circulation or by destroy
ing them.
osmotic fragility studies snow that the lead-poisoned
rp>ri
j ct t"C
JLr_02 clC't.i.Cf
.i - i i-.u i e r e
fragility or c^n increased r e sistance to osmotic stress. This
--t.
is u n d o u b t e d l y a m e m b r a n e .e f f e c t .* A T P a s e activity is decreased
in the red cell membrane, and one notes increased permeability
to cations, e s p e c i a l l y loss of p o t a s s i u m ,thro u g h 'the m e m b r a n e .
It is likely that these observations are' related to
modi
fications in osmotic fragility. A p o s i t i v e Coombs test, is
observed in some patients with lead poisoning. Ceils bitch
are C combs-positive, are those .which are young, stippled, or .. re txcu.LccytpoTT T h u s indicates that some m e n b r a n e defects
have picked up serum protein.
E l e c t r o n micros c o p i c studies of normab 1r.s-ty reverb, a
nu m b e r of changes character 1 s t i.c of -loud inf oxicati.cn:
I. Gaps in the m e m b r a n e of the noriaablast nucleus are
increased both, .in .n u m b e r .and^.in.size. .... ... ... ........... .. - .....
2. The p r o t e i n - s e c r e t i n g Golgi apparatus is t r e m endously
dilated,
.
3. The m i t o c h o n d r i a are enlarged. The crystal poles
are pushed apart.
.
4. M y e l i n bo d i e s are observed. T hese are e l e c t r o n dense
bodies between the nuclear membrane and the mitochondria.
5. The mitochondria, are di s t r i b u t e d in p erinuclear
fashion to form ring sideroblasts. Cells with this mitochondrial
arrangement are termed ring sideroblasts because they are
siderrihl a s t " . i.e. `henenuo the'" c o n t a i n non-heme j rmi . and
secondly, abnormal, sideroblasts because the iron is located
in mitochondria. In man
. deposits of ferruginous m i c e l l e s .
or ferritin are not normally seen in the mitochondria. one
cannot distinguish morphologically ring sideroblasts observed
in lead poisoning from those observed ..in thalassemia or in
alcoholism. In these materials derived from lead-poisoned
animals one may distinguish with elecfcronmicroscopic technique
the m o l e c u l e of f e r r i t i n , 'w h i c h is chara c t e r i z e d b y a 4, S, 16
or 3 2-dot pattern.
,
Special studies show the retlcu.locvte to have a marbe&ly
irregular outline and to cont a i n numerous m i t o c h o n d r i a he.avi 1v
K # 0017392
/
Uvten wit h non-heme iron, the ferruginous micelles. Stippiim- -
' ,p-ywiin animals and patients is c h a r a c t e r i s t i c of lead p o i s o n i n g ,k*'* *
The cause of the stippling is not understood, but the stipples'
themselves are c o m p o s e d p r imarily of ribosomal material. in
she p o l y c h r o m a t o p h i l i c cells the `p o l y c h r o m a s i a is due to the
retention of ribosomai material. In lead poisoning the in
corporation of 32P into phosphatiiiic acid in mature red blood
cells is decreased.
. .. -
:
W h e n lead is administered sub cuta n e o u s l y over a period
of time in sufficient concentrations, a subcutaneous granuloma
forms, a "piumboma, ' the p r e s e n c e of w h i c h m a y be associated
V - . n . i , p ' f.
S " i ' S S Sp i * i Ji p } `a- iOJ l~' ;'-.':Cl`j l O S' 'S'-1 J.. ` :
Cl .
.
for some time, it has b e e n k n o w n that protoporphyrin,
coproporphyria,- and d - A L A increase in the red cell in the
presence of lead intoxication. With improved isolation of
individual enzymes it has become possible to examine the ef
fects of lead on the various .stages of the herr-e biosynthet ic
pathway. It is c l ear that lead affects multiple sites at cen-
~f
a '` . .
.
centrations of 10 t o 10 molar. It has b e e n shown that the
main effects are early in the s y n t h e s i s .stage at the formation
of d~ALA,' and later at: the point at'whi ch iron is inserted
into the protoporphyrin molecule by -hemesynthetase. These
Kf 0017393
processes take place within the mitochondria. More recently
it has b e e n shown that A L A deh y d r a s e is inhibited as well.
It is important to indicate that practically every living
cell contains heme, and that these disturbances of heme forma
tion are relevant not only to blood production but equally
important to cytochrome formation as well. The k i d n e y contain
A L A synthetase as does the liver. -Drugs
synt h e t a s e in the liver W produc e sihormo' i'
: thl s enzyme there, and the kidney as well
A c u t e inte rmittent porp h v r la (AIP) j.S .1 v crrwr./r,i r o C*pe cts 3
able model for the study of cer tain asp ecr s of a:CUte 'jG3 C
.ban.x j-v-a c3.Oil, This inb1yrn errer ..of met a b o I J.s m .x. ds <--) occur f
in faim! lie s , moiSt COTOTUCinly in v;o m e n of the 20 - ,,30 -y cir- old
age group. Pre senting symptoms inc lude acut e 1:lSX pi ai.r`3d
abdo minal pain, vomitin.g, const Xpd Cio n , and neur sy ch iatrie
man i.festat ions w h i c h en.compao s a br oad range
ph en en a
from motor weakness to psychiatric disturbances. Signs in
clude tvehardia, hypertension, decreased reflexes, and sensory
abnormalities. D-ALA synthetase, d~ALA, and PBG are increased
in the blood. ALA -and PBG are elevated in the urine as well.
Asyuptomatic relatives of persons with acute intermittent
porphyria may show only the biochemical alteration of 11 1I S
disease, viz, , increased X'rinary ALA and p u g .
ne 0017394
Other porphyrins which may be found in the urine on ,
laborat cry examination are net excreted but rather are formed
in the' v o i d e d u rine as d e g r a d a t i o n products.,
.
Isolated and purified ALA and P3G show no evidence of .
phar m a c o l e g i c a x activity; t hey are not p r e s s o r substances, ~ -
The clinical phenomena associated with AIP can be explained
on the b a s i s of a d i s o r d e r of the nervous system. Indeed it
has been shown that the peripheral nerves of patients with .
this disease can undergo derayellnyhation. The presence of
macrophages containing lipid-staining material around the
nerve gives evidence that these changes occur ante~-mortera.
1 Lilcj*), n. -i.. j. v* v--x i t ' d -- . _i_ . _ c - P. . .
udu
iM .>LC: ii f . i l u i III V i-.-,.-',,- .
/f
J-Ir-
approprlate secretion of ADH has been noted in the presence
of changes in the thalamic region.
W i t h lead a similar symptom pattern is observed: ab
dominal pain, vomiting, constipation, and peripheral nerve
d i s t u rbances p r i m a r i l y of m otor f u n c t i o n / Anatomically, it
has seen shown that lead, ha s an effect on myelin sheaths,
Schwann cells, anterior h o r n cells, a n d a x o n s . T h e p a t t e r n
is strikingly similar to that in AIP.
In AIP the main biological disorder is found in the liver,
which shows a high level of ALA, PBG and ALA synthetase, There
is m a s o n to beli e v e that there is an a s s o c iation rwtvcon the
Kf 0017395
30
hepatic l>iochemical alterations and the morphologtea 1 braii
c h a n g e s L e a d appears to-set directly on the brain and m r
ana hematopoeti.c systems. Thus, it vnvn la evopear tlm1v M F a
acut e load poisoning have different basic causations but sh
a f ivial common p a t h w a y of c j.xnic'.i. 'm a n i f e s t a t i o n .
Xn tlie search for more :
examin at icss h a v e b e e n condui
cur sor S Xn chiIdre:n. W h e n L
c h i 1dr en into the 40-60 /ag/l
poor c orr elation b-etween the
PiiOX XI"), C.nd other h e m e preen: T,71*-hj'V A-iits c**?*r*1A*tT*?
concen ZTV.lions of these mate:
at the 60 yug/lOOg r a n g e , In
c h i l d r e n and those w i t h merit. (
of eti OxCj gies, a d ifference :
gr oups ha s not bee n observed,
- Similarly, there has bee
no d i f f e r e n c e in b l o o d lead levels nor in the lack of corre
tion'between' blood lead and intelligence, or b e t w e e n ALA'
dehydrase and intelligence. It has b e e n found, h o w e v e r , th
there is a significant co r r e l a t i o n b e t w e e n b]..ood lead level
in the 40 /ag/100g range and AL7i d e h y d r a s e in the blood. Tit
c i inicx* ipi.Q'j'jj_v,,jLc ^ncc Oir Jclix.x coxx'xl d '*xo~* i_s
c m t 1i r^ldC'
X 0017396
T h e r e is experimental, -evidence for a co r r e l a t i o n betw e e n ALA dehydrase levels in liver, brain, and blood. Such evidence
is deri v e d from studies on su ckling rats w h o h a v e received
lead only through the milk of their m o t h e r s , 'who had b e e n
placed on a 5% lead acetate, diet after the litter had been delivered, Neur opathological changes were observed in the suckling nice under these cirounsfarces, The clinical impli- ' cations of this v/ork are obviously not fully defi n e d inasmuch
as interrelations b e t w e e n lead, d epressions of b l o o d and b r a i n
ALA dehydrase, and anatomical changes of the central nervous svs rein are not well understood',
r-\ o
r
hydraso activity is reduced in b o t h the b l o o d and b r a i n of
lead poisoned r a t s / (2) a significant c orr elation exists b e
tween blood and brain ALA dehydrase .activity in normal, and
lend p o i s o n e d rats, and (3) a correlation exists 'between b l o o d lead and A L A d e h ydrase levels in children. It is p o s s i b l e
that d i m i n u t i o n in ALA deh y d r a s e activity in t h e 'peri p h e r a l blood of children may reflect a similar reduction of the enzya in the brain. (The p r e s e n c e of ALA d e h y d r a s e ;in h u m a n b r a i n
may b e assumed since p o s i t i v e enzyme a c t i v i t y was found ire
the brains' of two aborted fetuses -which were at the 15th a nd
i; .i. 7 :
X ! . - ' k i / j . V v. kX 1 3
:ori elation. exists b e t w e e n the b l o o d lead .!evel /> y g //.r:
and the ALA dehydrase activity in the brain. The potential
s i g n i ficance -of these - o b s e r v a t i o n s suggests tha.tt it is -aapp-
p r o p r i a t e to c o n sider s e riously the p o s sible :ect on the
d e v e l o p i n g b r a i n of lead levels p r e v i o u s l y regairrddeed as normmaall.
Pr e l i m i n a r y studies of lead p o i s o n e d dogs have be een c o n-
du c t e d to shed light on the p h y s i o l o g i c a l signi.ffiiccarniccee ojf .
roeasurements which show a depression of ALA dehydrase. In
such studies dogs were fed for 42 weeks on diets containing
0, 100, and 500 p p m
of added lead. At the end of
the 42-v/eek pe r i o d the b l o o d ALA deh y d r a s e level was v i r t u a l l y
zero in the group of dogs fed 500
lead. Eow-
. v.- 1 . 1b e nc ri.ciV .o s a c a *,-u w .:,,.cc- o i <*,->,i.... ,:5 <.i( ../1,t.a .s
'.. as the same. N o an'itaals a p p e a r e d to h a v e b e e n adv e r s e l y
affected by the ingestion of lead over this period. Although
these animals did not appear to have suffered a detrimental
physiological effect, there was the question of Whether or
not the dogs would respond differently to physiological stress.
In these studies .the animals -were- .stressed t h r o u g h a reduction
in blood volume of each dog to 50% of its original value
thro u g h phlebotomy. The re cu p e r a t i o n from, this insult ap~
peared to b e identical for the three groups o.f cicgsiand the
carves reflecting the blood paramaters could be essentially
super i m p o s e d , one upon th . ocher. The bleeding procedure did
n o t .ssera t o influenc' the b l o o d load level of. the animals
w hich returned to th e p r e p h i e b o t c m y level some one weak' nicer
the loss, of blood.'
In the study of hemoglobin synthesis a convenient bio
logical model is available in cultures of the photosynthetic
mi cr oorg&rsism, Rh od op seu d croon a s s p h r o d e s . This organism
grows very well, either as a facultative anaerobe, without
oxygen, in. w hi ch case it. produces b a c t e r i o c h i o r o p h y l l , or
in the presence of oxygen^ it v;i3.1 g r o w in the dark and m anu
facture primarily hems, Lead suppresses the growth of the
organism very m a r k e d l y when the cult u r e is r e l a t i v e l y low
^ d 01^ * \ co c' '-j ' aV-, ; -i p. v? -P *1
---ra -pji'-J -i*.`
-v-T--,r\ - t-i'-. - -
effect of lead on the g r o w t h of the o r g a n i s m is much less apparent.
The exc r e t i o n level of coproporphyrin b y this- organism clearly- demonstrates the antagonism -between iron on the one hand and lead, manganese,..and cobalt on-the other, t h e n the
organism is grown at -lo*w co n c e n t r a t i o n s of iron v e r y little
cop-rop orphyr in is excreted. ^ T h e a d d i t i o n of 0.03 ppm manganc
to the culture medium, however, causes the excretion of large amo-.ii'.ts of coprop orphyr in. In iron--supplemented cultures rmic uxer.ar quantities of man g a n e s e are tolerated before the- cxeos "cprop orphyr in appears. L e a d potent i a t e s the effect of
:u a -' o in causing increase;; c opr op orphyr x 11 e x cretion a n a is
thus antagonistic to the addition of v-fepon. If than still
more iron is. ded ;tO 4t-i1-l,e medium one overcomes the ef f ec t
ryf
cinnS'0
tiresi y and t he ef f ec t of l eaa to a somewhat
lesser extent, No amount of iron supplementat ion can completely
-the reverse c o p r o p o r p h y r i a .production caused b y lead,
..
An examination of the other metabolites in the tetrapyrrole
a y"i3the t ic p atlv
OK idase or "co:
c)Ct ivit ies are
n ci
Qo-thh e r antag ooniiisti c metals. Ferrocheiat3.se and A L A deh y d r a s e
mo y a.1s o be . 3.i
O'**"owing erg on t
eons to he the most
imp o r t a:ot ,
Pu mrnary of Rep
Cl iinicaall m]a n i f e s t a t i o n s caused b y e x c essive amount %
sy 0 1.nni c le ad !
af fecte d or aai
Le vels of 1ead i --sns it y of exp al so in clud e a:
C t*ilcj_cJL and pe:
K 0 ..L
ct on c:id so ft
O-Uoh as men tal ms-v b e t h e r e s u l t o f a n a t o m i c a l darnao
e. 0017400
d behavioral axsoniors urn m g au r i n g m e
\
acute intoxication or possibly the result of chronic cellu
lar damage resulting 'from the s l o w release of stored lead
in corahinatiora w i t h c o n tinued exogenous exposure. E x p e r i e n c e d
observers have repeatedly emphasized the importance of con
tinued environmental exposure ro Lead as an important factor
v.hich increases the likelihood of severe permanent da m a g e to
the brain.
It is r e asonable to c o n sider as wall the p o s s i b i l i t y that
continued exposure may be caused by.the slow release of stored
amounts of lead which in themselves do not produce obvious
symptoms but. nevertheless; may be capable of damaging certain
j.u-j.'j . u .Ue o.'jverve eyCi-Cmu m e pi o c w o m y raven*1.-- o x.rw o s .
The concept of latent effects due to lead in persons Who do
not show obvious clinical plumbisra has been raised by Lane
and otheres who believe that lead burdens insufficient to cause
symptoms or to produce disability have shortened life expec-can
dles b e c a u s e of p r e m a t u r e de v e l o p m e n t of '.nephritis or in some
instances cerebral hemorrhage.
neurol ogical inifestations of lead poisoning are
e and wi o.0 sprs
illtv, depress ymptoms are th
%4~ *YU'1 :**
ally dev roe sad
yH o -o
KE
3 -3b
peripheral neuropathy is considered a common neurologic
anitestation of lead poisoning, and involvement of the radial
erve is frequently described. W h i l e the clinical pi c t u r e may
resent as a mononeuropafhy, neurological examination will
fren demonstraroo. r.rc ^ Ir in rao c*
other muscles, and neuroelectrici
tudies rnay sho w p r o l o n g e d cond u c t i o n times or d e c reases in
he amplitudes of the action
K 0017402
36
tic paraplegia and
ron damage. In su
lead' neuroxnyel opat
cord degeneration such as in imary lateral sole
amyotrophic lateral sclerosis may be difficult.
Lead encephoiopathy has been considered more common in
children than in adults, in w h o m it m a y b e misdiagnosed as a
brain tumor responsible for such symptoms as h e a d a c h e , vomit
ing , diplopia, and periodic confusion, in conjunction with
evidence of increased i n t r acranial .pressure. Opthalmo.lcg.ica 1
disturbances are not common in systemic lead poisoning although t\ " "
i 33.0. ulQrilSujCBtl'jiJ ui -le: jTG'CxiiB ii3.S
u c SCl IOc:'..'. XTi yT0...t2
Ocular symptoms of lead poi s o n i n g h a v e b e e n more common in
children in w h o m it is possible to recognize disturbances of
the visual cortex, suprageniculate pathways, optic nerve, retina
lens, and intra- and extra-ocular muscles.
uf the n e u r o l o g i c ' m a n i f e s t a t i o n s of lead p o isoning in
children, p e r i p h e r a l .neur o p a t h i e s h a v e not b e e n the most ap
parent, and central nervous system manifestations have been
considered mere common. It is likely, however, that examples
of p e r i p h e r a l n e u r o p a t h y in c h i l d r e n go.: unre c o g n i z e d in
many eases, i n cluding those in w h o m .encephalop CitUV -u
tuva eorjicuvacir c.u.nicdi aiLCint i.<
Cilx la x v: v:- cn c.1.x a i c.h J
tfE. 001*7403
e v i dence of p h e r i p h e r a l neuropathy, viz:.-,- sen-soyy l o s s - a n d - -weakness ,ch-ow evidence of de n e r v a t i o n when tested electrically.
Neurochemicai studies of the brain in lead poisoning have been technically difficult and have most commonly focused upon the effect of alkyl lead compounds, the pharmacolcgy for which is undoubtedly dissimilar to that for inorganic load. Although seizures encountered in acute lead ohe'ephalo- ' pa thy ma y be due to neur on o-~e x c i t a t i o n related to local -edema or vascular lesions, these manifestations may be due to an inierterence w ith glutaraic acrid transport or m e t a b o l i s m re-' suiting in a r e d u c t i o n of aminobutyric -acid (GABA) produ c t i o n
t O ;aC _--i. G -V X eiXi xnr}. i c OJ.. y J- Cl' .!.o sent moderator, and interferen ce w i t h GAB A p r o d a c t i o n mightfc produce seizures by increasing neuronal excitability. Meta bolic- steps w h i c h might b e .susceptible to- the effects of lead include (1) glutaraic acid decar b o x y l a s e (GAD) which carboxylate glutamate, to GABA; (2) gluta m i c acid dehydrogenase, (GHD) -which reduces 2-ket o .glut ar-ate to glut auric acid; and (3). pyridoxal' p h o s p h a t e (B.gP) m e t a b olized from pyridox.tne which functions as the co-enzyme for transamination react.ions in the synthesis of GABA. Evaluation of those systems and of the clinical e f f icacy of p y r i domine or g l utamate in childr en -with seizures of acute lead poisoning might be warranted.
Rts 0017404
w*
38
Recent electron microscopic studies in experimental lead
neuropathy have shown that the primary damage is to Schwann
cells and myelin sheaths but that axons also show degenerative
and reactive changes. Steps in the .remye i i n a t i o n process,
have been demonsrrated microscopically. Two mechanisms have
been suggested in explanation ox the process of derayelination.
and remyeiination in lead nephropathy. One possibility is
that a substance h a ving p o r p h o bilinogen as a precursor is
essential for the mainte n a n c e of myelin. It is. k n o w n that .
in porphyria there is a metabolic blech, which results, in the
excretion of excess p o r p h o b i l i n o g e n and d-JILA ana c-oncurrentXy
a dop.ye.1 xr.ar~eg puiveija the .specific. lV u s s >..'i wiii'j:.:
not
known. The second possibility is that lead causes vasodilation
and altered vascular permeability which cause -intraenaensara 1
edema and consequent damage to the Bchwaim cells by pressure
or ischemia.
Biochemical studies of lead nephropathy have concentrated
on the motor endplate region of striated muscles, the point
where the greatest proportion of synaptic acetylcholinesterase
is localized. Th e introduction of lead into suitable n e u r o
m u s cular p r e p a rations results in the p r e c i p i t a t i o n of lead at .
the coteratic site of this e n z y m e , . The prime binding site for
load appears to b e the post- s y n a p t i c sub- nerve.:, apparatus of
the motor endplate. The b puling of the sub-neural apparatus
39
by lead 'Is not influenced b y the pric&y administration. diiscpropyl fluorophosphate {DFF} or neostigmine. Hcwever, tV-v of tree traent c PTipIetely 'inhibits -ciholin-esterase activi ftv *w-< -1_ TM ne otera se. acti' rity does appe a r to. b e r e d u c e d in muscle
in vd::1.Ch the sxibneu. :ai apparatus lias been, b o u n d by l e a d . s
St a i are part of an attempt to identify, some properties
o i th choli nergic receptor and the c h a r a c t eristics of lead ;ding at the sets of the Other S Xli < ,ly prese Tit <it the m otor e n d plate in a b o u n d form and is -rA5-Tpfl ?XS r"h'0-3 relai X OXi.i
the: site of b i n1d i n g of divalent m etal ions such as lead may exp'llaaiinn the p`-xr-v*,e d i l e c t i o n for p a l s y in the m o r e active rr.usc.l Load and calcium may .also be interrelated through a meohuni which is r ef l e c t e d in the fact that a red.uct.ion in calc i u m concentration may produce neuromuscular blockade by decrees trig 'the p r e s y n a p t i c release of acetylcholine.
K 0017406
V. C o n f erence Summary
'
..
T h i s 'confrence r e a f f i r m e d a long k n o w n fact that'
. poisonings due to moonshine liquor containing Dead, pica for
lead-containing material, and excessive occupational exposure
to lead continue to occur. This fact represents a failure
on the part cf health experts and other responsible elements
. of so ci e t y t o prevent gross exposures to -lead..
.
The presentations of this conference illustrate tho in
creasingly sophisticated methodology being used to study the
lead
manifestations of absorption. Such studies are obvicuslv
f- .
`
. .important to our understanding of the mechanisms and conse- .
queneos of lead intoxication, Gf even-greater iimportance,
however', would b e the development of sensitive and specific
m e a s u r e s w h i c h could e s t a b l i s h w h e t h e r ' o r not "n o r m a l " people
are being harmed by current concentrations of lead in the
'n o r m a l " environment. N o new, p r a c t i c a l measures are as yet
.' a v a i l a b l e as screening p r o cedures to .detect v e r y e a r l y adverse
res p o n s e s to lead. T h e v a l i d i t y of n e w enzyme studies is
currently under examint ion.
Aminoa cid u r l a . Abnormal quantities of amino acids in
urine occur only in people with overt lead poisoning. Barely
elevated levels of amino acids can be detected in urine of
HE 0017407
workers w i t h excess lead e x p o s u r e , Aminoaciduria,. .therefore^ d o e s not ap p e a r t o be a -highly sensitive clinical study p r o
c e d u r e for "n o n s a l " populations, although it .is :certainly_
important for. r e s e a r c h in cases of .lead, intoxication, IncI n s i on Bodies. N u clear inclusion bodies in kidney
cells appear., to.be r e l a t i v e l y ;specif i d b u t . .t o plate, h a v e only,
b e e n f ound after r e l a t i v e l y hig h exposures `to lead. ...Their'. .'
only presently, k n o w n function is as a storage site for excess
lead 'which has ente r e d the nucleus., of k i d n e y cells and comp le with, mitochondria. Intranuclear inclpp ioru bodies should be . looked for in. c a d a v e r studies, p a r t i c u l a r l y in those v?ith
h x g h b o d y burdens of load,and in cells in the urinary sediman
of h u m a n s w i t h chronic, lead exposure. In addition various
animal species should be used in laboratory studies of n u d e a
inclusion bodies.
.
..
.
. '
G l o m e rular F i l t r a t i o n Rate. It was' suggested that the
g l o m e r u l a r ...filtration .rate .might b e a -useful screening me a s u r
H o w e v e r this m e a s u r e ' w a s q u e s t i o n e d as lacking specif-ity .for
lead exposure relative' to renal disease in general.
'`S o d i u m P u m p " I n h i b i t i o n . This pheno m e n o n presents as
a. h y p o t h e t i c a l lead effect and r equires .research for v e r i f i c a
B rochemical Functions. Two potentially sensitive indiea
are a v a i l a b l e r the .measurement of the respiration of rniro-
c n o n d r x a ot r e t i culocytes and ..the .m e a s u r e m e n t of. p o t a s s i u m
KE 0017408
42
loss across tlie re d b l o o d ,cel-1. meiTtoran. -Both' of 'these
-
'phenomeiia-xpqui're.-evaluat-i-o'n in 'animal-s-- a n d humans-with.--lead-
'ihtpxication.
:. '
. ' .
Enzyrae C h a n g e s. Enzy m e s w h i c h .are c o nsidered to be most
sen s i t i v e - t o -;l a d ."exposure ar e dai-ta :ainino l e v u l i n i c aci'd '
dehydr.ase:, .Tippamide. d e h y d r o g e n a s e -and ATP-ase. Changes- .in
enzymes levels-need to be correlated.with possible adverse .
e f f e c t s i n man -a n d .a n i m a l s . ' .....- - -- . - --- ---- -- -
- E s s e ntial. Trace. Met a l a ..- M a n y .trace metals are essential
for normal b o d y .functions,..: and .lead may .b.e' c o m p t i t i v e w i t h .
these metals. H o w e v e r there 'are .no k n o w n examples of such
inhibition by lead in in vivo systems Cadaver s tudies have
shown. that essential-trace-metals in-.soft-tissues are normal'
despite,.increased concentrations, of lead.
.
Heme.. S y n t h c s i s .. C o p r o p o r p h y r i n and delta amino"levlinic
acid in u r i n e are.sensitive and r e a s o n a b l y specific indicators
of. lead exposure, .. These .measurements' are'.'of value in studies
w i t h adult s',""hut may.b of less' value' i n ':studies wit h children
There are marked diurnal variations in these indicators, and
it is r e c o m m e n d e d that- concent r a t i o n s b e - e x p r e s s e d in un.i-t.s-
relative, to urine flow rather than to urine volume. t-eira
avnino ievulinic acid determinations in serum are suggested
as ..a more refined measure of lead effect .upon h eme synthesis..
KE 0017409
f
43
-.T h behavior.. of-.A L A-dehy.drase. u n d e r lead exposure situations
'requires examint ion a n d `i n t e r p r e t a t i o n from the point o f .v iew
of health.- . - -
'
:
-- --nerve- Conduction- T i m a . One of- the more p r a c t i c a l -and
refined "tests -.-for ```n e u r o L o g x c a b change, is th e - measurement of : ;
nerve -conduction- time.- -However-; this p r e c e d u r e is c o n s i d e r e d : t-o b e - m o r e u s e f u l - f o r following' cases of lead into x i c a t i o n tha
for screening purposes.
*-
* A n a l y t i c a l Variability.' For almost -every s t u d y , quest ion
about- analyti cal acc u r a c y - a n d p r e c i s i o n can b e raised. It is
suggested' that.' comparisons'-of data .would b e f acilitated b y
-
col lab oration, .through, a. c ent r a l laboratory, This vaohnigue . 'w o u l d avoid much c o n t r o v e r s y and'expedite interpretations of
data.
:'
''
- T his c o n f e r e n c e r e v iewed th state of- current k n e w .ledge-,
about, h o w lead interacts with man'and. experimental .living
- systems. .It a p p e a r s .that the b e s t "indicators :of early respons
-to-lead" are. already in use.. Several areas of research w hich
may iead to, i m p roved measures of early response are a p p a t eut..
. It. "has b e e n r e a s s u r i n g - t o note that ..exhaustive animal. -
studies h a v e not led to the, dis c o v e r y of ne w lesi ons due .to
lead, a l t h o u g h it is also-clear that there- are major differer.-c
b e t w e e n species in response to' load absorption,
'
HE 0017410
44
- ...... -s.ev-erai-ineeds -for the immediate future-.-arerhighlighted* ,
" ' 1, Prevention- of exc e s s i v e 'and u n u s u a l exposures to lead
a broad problem for society-at-large.-
'
' 2r liefined-studies of those- cases of .lead i n t o x i c a t i o n
which, unfortunately. centinue to occur. ' .
' 3. Refi n e d studies on p o p u l a t i o n s w i t h elevated, but not
necessarily clearly harmful, exposures to lead* especially .
v.?ifh_ respect to.lchanges in- r e n a l funetioiwand. h e m e s y n t h e s i s .
. . - 4. -Research .with.animals .on .correlations b e t w e e n enzyme
changes and adverse effects of lead.
...
'`
.
5. Surv e i l l a n c e of- the environment and .populations fox-
V d.*iClC? v j-ClCrliCt? Oi_ iflci.il'hi 01^X3 L
aiid
OU.K
CC.
load, " .. V"
.'
.-
. 6. Surv e i l l a n c e for p o t e n t i a l l y . s u s c e p t i b l e individuals
and indications 'of synergistic .actions .or..aggravation of exist
ing disease.
- --..
.. - -
-
--