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Clinical manifestations of the presences of unnatural amounts of
systemic lead depend upon tha particular structures which are affected
or damaged and these are determined by the intensity and duration of r.
exposure. In some instances, the excretion levels of lead may reflect
a person's on-going .exposure, but the actual lead burden must also include an unmeasured quantity of lead stored in the central and peripheral . nervous systems: as well as in the skeleton, liver and kidney muscles. The persisting effects of the encephalopathy, such as, mental retardationepilepsy aud behavioral disorders, may be the result of ckimsge occurring
during the acuta intoxication. It is important to recognise the possibility that such chronic cellular damage may be the result of the slow release of stored lead from certain tissues, as well as continued exogenous exposure and .absorption. For, It is wall known (Kehoe, 1961; Black, 1962} that .it takes twice as long to excrete- an excessive burden -of lead from
the body as it: takes to acquire the burden. Byers (1S59) felt that most children who have been damaged Intellectually have been re-exposed to lead after treatment of the acute disease. Chisolm (1956) (1S68) has repeatedly emphasized the importance of continued environmental exposure to lead as one factor which increases the incidence of severe permanent damage
to the brain amortg survivors of an initial attack of acute lead encephalopathy. This "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 poisoning certain intracellular ensyme systems and producing latent effects. An increased incidence of cerebral hemorrhage as a. late effect in workers in lead-using Indus cries has been ascribed to the prolonged heavy exposure to lead (Dingwall - Fordyce and Lane, 1563). Lane (1964) believed that many
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N36910
2
persons carrying lead burdens insufficient to cause symptoms or to produce
disability from work have shortened life expectancies because of the
premature development of nephritis and in some instances cerebral. . .
hemorrhage* Harriet Hardy (1966) has also emphasized the potential dangers
in'low level exposure to lead.
In this discussion 1 shall first review some of the clinical and
pathological aspects of the effects of lead on the nervous system?;
secondly, relate some of the recent studies utilizing histochemistry
and electronndcroscopy to offer better discriptlon of some of the possible
metabolic defects associated with lead poisoning; and thirdly, I shall
present some of our own measurements of less obvious effects of lead
on peripheral nerve function in children. In the latter part I hope to
evaluate with you our findings as to their possible value as a delicate
indicator of continued exposure to lead in otherwise asymptomatic
individuals who have normal blood levels of lead*
'
A. Clinical Features
Nikander, the Greek physician of the second century before Christ
described the neuxotoscic effects of paralysis, and ocular disturbances of
probable cases of poisoning in a poem: "His feeble limbs droop and all
motion is still. His strength Is now spent*-". Paul of Aegina, in the
7th Century, recognized epilepsy as a result of what was probably lead
poisoning. Francois Citois observed patients to have weakness of legs and feet, elbows and hands to follow the occurrence of convulsions in cases of,
-"colick". Pranchin the physician of Voltaire, in an essay entitled
"De colica pictoiuta" published in 1757, showed that the colica pictonum
in Amsterdam was caused by water passing over leaden roofs into cisterns
where it was kept for drinking purposes. Ten years liter, Sir George Baker
DUP050312417
3.
was able to prove that the Devonshire colic'was due to lead-lined
ceder presses. Indeed, when the fanners removed the lead linings from
their cider presses the Devonshire Colic no longer occurred.
While the subtle symptoms and signs as contrasted with the obvious
or "outspoken1* are of greatest importance in making an early diagnosis.
. I shall restrict my remarks to the "outspoken" signs and symptoms as
Minot (1938) used the word. Industrial lead workers have complained
of lassitude, irritability, depression, constipation and abdominal
discomfort. These symptoms are the came as those sometimes expressed .
by an emotionally depressed individual and could easily be overlooked.
Individual case reports have been many but several typical patient*s
- histories may be of interest. One patient, was a lead melter, aged 34, who
had worked at the same job for ten years without previous symptoms. He
-`
;. complained of a weak right hand, although examination revealed bilateral
. radial nerve palsies. Except for a mild anemia, no other signs or symptoms
were present. A second example is that of a 53 year old business man whose
only possible exposure to lead was a water pipe-line to his house. He
complained of progressive weakness and atrophy of his shoulder and arm muscles.
More recently, Simpson (1964) described an "acetylene burner" who was
.torch-cutting lead painted steel on ships who developed a left foot drop,
hyperreflexia, spastic gait, and widespread muscle fasciculations.
*
.
Electromyography confirmed these as myelopathic symptoms and signs which .
were attributed to the effects of chronic lead poisoning. Spastic paraplefdLa
and hyperref lexia suggest upper aches and lower neuron damage. In such cases
the differential diagnosis between lead myelopathy and spinal cord degenerations
such as primary lateral sclerosis and amyotrophic lateral sclerosis may be
quite difficult. Lead encephalopathy has been considered more common in
DUP050312418
children than adults, When it does occur in adults it nay misdiagnosed as a brain tumor for example, there was a 28 year old woman who complained of intense headache, vomiting, diplopia, and periodic confusion for about one months duration. She had papilledema and ataxia of gait. This picture of increased intracranial pressure was attributed to a posterior fossa obstruction until the history of ingesting an ounce of abortifacient containing lead was obtained. We have seen other cases of encephalopathy ( ) in -adults masquerading as focal brain disease often with increased intracranial pressure. Others have subtle changes in higher cortical fmotion. Ophthalmologies! disturbances have been asociated in only 1 to 2 percent of cases of systemic.lead poisoning. Sonkin (1969) reported finding lead particles, appearing upon ophthalmoscopic examination, as glistening; discrete, gray pigment concentrated in the tretina around the optic disk in 8 of 25 workers. He suggested that the ophthalmoscopic examination could predict those workers who would be found to excrete abnormal amounts of urinary lead. Grant (1962) stated that ocular symptoms of lead poisoning afe not usually among the early ones in adults, although it may be one of the first in children. In the majority of cases, the onset of ocular symptoms has been gradual. On the basis of clinical observations, it has been possible to recognize disturbances of the visual cortex and suprageniculate pathways; optic nerve, both retrobulbar and bulbar; retina, intraocular muscles; the lens; and extraocular muscles.' The optic nerves may be injured either by increased intracranial pressure or by direct toxic action of lead on the nerve. Pupils may be unreactive to light because of the damage to pathways rostral to the lateral geniculate body. Many
cases of acute and transitory amaurosis have been found to have associated blurring of the borders of the optic nerve head, slight turbidity of the -'-surrounding retina, and abnormal distension of the retinal veins* The onset
DUP050312419
in someichronic cases has been' accompanied by constriction in peripheral visual
fields'and in others- there has been a central acotoma. Clinically, the optic
neuropathy of chronic lead poisoning has been likened to "tobacco-alcohol
. --:fj; >i::- i amblyopia. Optic, neuropathy caused by excessive lead intake has been
induced,in animals (Giannantoni, 1933) but the mechanism is still unclear.
Ocular,symptoms are fewer, it seems, with tetraethyl lead than with inorganic
lead;. Symptoms due to tetraethyl lead develop after long term exposure
to*low concentrations.(von Oettingen, 1958).
\,
y- Peripheral neuropathy is considered a common neurologic manifestation
of industrial hazards caused by several substances, such as lead, acrylamide,
organophosphates, and thallium. The radial nerve palsy is quite common
in lead, poisoning. In fact, it seems there is a predilection for this
nerve in the most active extremity, such as the'right hand in a right
handed lead worker. Seme older authors felt that this was due to the proximity
to the noxious material and that absorption through the skin was greater
(Gusserow, 1861), while Reznikoff and Aub (1927) claimed that after an
initial'period of contraction, it was the "leaded" muscle, not nerves
exposed to large concentrations of lead which became fatigued much more
rapidly, and completely. Fullerton (1968) studied lead poisoning on peripheral
.nerves in five men who were exposed to this substance during their work.
They all had raised blood lead levels with mild anemia and one had had
abdominal pain. They had no abnormal neurological symptoms or signs, tftiile
there was not a significant difference between these five men and twelve
age-matched control subjects as to the conduction velocities in the
peroneal nerves, a statistically significant difference in the proximal
and distal amplitudes of the action potential extensor dig!torum brevis
%*
muscle was noted. Fullerton suggested that the amplitude changes may be
DUP050312420
a very sensitive way of detecting minimal peripheral nerve damage.
Of the neurologic manifestations of lead absorption in children,
peripheral neuropathies have not been the most "outspoken". Watters
and Barlow (1967) refer to lead neuropathy as "infrequent". Pearlstein
(1966) considered the central nervous system a more likely target in the child.
Seto and Freeman (1964) found only nine well documented cases of lead
neuropathy in children in the English literature and thirty-one others
referred to but: in less detail. One of their patients was a three and one half year old boy who.shewed proximal weakness, moderate wasting of
the hands, reduced reflexes at the ankles but increased at the knees.
Routine blood lead level was 30 mcg/100 grams-of blood, urinary
,
coproporphyrin was strongly positive, and delta amino levulinic acid excretion was 192.5 uM/day (normal 20 uti/day). Urinary excretion of
.
lead was within the normal range prior to calcium disodium edatate.
(EDIA), administration, after which it increased 1000 fold. Muscle
contraction thresholds of the intrinsic muscles of the hands, wrist flexors and extensor digitorum communis as veil as the extensors of the feet were elevated. Electromyography revealed numerous fibrillations and
positive potentials in the same muscles, consistent With denervation.
A two year old girl described by Millichap (1952) whoso blood level was
40 mcg/100 gr. and whose admission to hospital was prompted by diaphragmatic
paralysis, later developed a foot drop with electrical evidence of denervation.
Seto and Freeman emphasized that of the nine cases adequately studied,
two had gone unrecognised for several.years jirior to exacerbation and diagnosis;
two had clinical evidence of peripheral neuropathy, viz, sensory loss and
weakness and when tested electrically, evidence of deiveryatlon was observed.
All 9 cases had. evidence of lead in bones, anemia, and basophilic stippling.
DUP050312421
The point was also made, in referring to the four of five children reported by Byers and Lord (1943), that in those instances of peripheral neuropathy
later evidence of mental deficiency became apparent. This may imply that the neuropathy and encephalopathy may actually occur together more often than has been recognized.
A ten year old boy came to try attention with the obvious combination of encephalopathy and neuropathy. He had been admitted to hospital several times over the previous five years because of abdominal cramps, usually . attributed to his sickle cell anemia which has been earlier diagnosed. His hemoglobin averaged 5.6 grams for the year before the current admission. In addition, his blood pressure had been running at about 160/120. His lethargy and headache had been attributed to the hypertension. Although he began to walk with a high steppage gait, probably because of the weakness in his extensor muscles of his feet, he was not brought to the hospital until several months later. A history of pica was obtained and a blood level for lead was found -to be 13 mcg/100 gras of blood, urine coproparphyrins were positive, and x-ray?.of the distal metaphysis of the femurs, tibia, fibula, radius, and ulna shot-red dense bands consistent with exposure to heavy metal. EDTA proved the diagnosis. Nerve conduction velocity studies showed evidence of severe neuropathy in the peroneal nerves, muscle action potentials could not be elicited. Conduction velocity in the ulnar and median nerves was slowed. In this chronic case the encephalopathy and neuropathy had been neglected for various social reasons.
In another instance I know of, the acute encephalopathy was quite dramatic as it was heralded by a generalized convulsion which developed Into status epileptlcus. After the spinal fluid protein was found to be increased ^(153 mgm%) and the cerebrospinal fluid pressure elevated, arteriograms
DUP050312422
were done to "rule out brain tumor". Not until the fifth hospital day
was the urine tested for copxoporphyrins and found positive. The blood
lead level of 80 mcg/100 gm discovered. She was chelated with EDTA. This child, an 18 month old girl, was in coma for fifteen days (Then she awoke -
by the 20th day, she appeared to be blind. Nerve conduction velocity in the peroneal nerve was normal at that time <68 m/sec). However, three
months later, at a time when her hair still showed increased amounts of lead in the proximal portions, although the blood lead had come down, her
conduction velocity was reduced (44.8 K/sec.)
These comments and cases indicate the likelihood that peripheral
neuropathy may he a manifestation -of chronic exposure to lead, in
conjunction with encephalopathy. In some instances one condition overshadows
the other. Eeznikoff and Aub (1927) were convinced that muscle weakness /
was the result of lead's effect on muscle cell membrane permeability and
was not dus to. the nerve supply. Other studies cite a direct correlation between the low pliosphocreatine content of a poisoned muscle and a diminished
capacity for contraction. Since resynthesis of the hydrolyzed phosphocreatine is essential for muscle excitability, the leaded muscle is rendered inevitable.. It is of interest that the development of fatigue in lead poisoning is accompanied by increased urinary excretion of creatine.
(Caatarrow, 1944).
.. ;
,,
- Modem biochemical studies have concentrated on the motor end plate region of muscle. Of note is the finding that lead precipitates at the esteratic site of acetylcholinesterase, (Koelle et al, 1968). A modification
of the technique for binding of gold and lead complexes at the esteratic sites of motor end plates was accomplished by Kosa and Cslllik (1966).
A better electronuicroscopic delineation of the localisation of cholinesterases
DUP050312423
was'-'afcKibved by using copper and lead together in the incubation.
This/slide (#1) shows the acetylcholinesterase activity of a motor-end-plate
in the'rat diaphragm, as outlined by the Cu-Pb thiocholine technique.
The enzymatic activity of pre and post-synaptic membranes is conspicuous;
slighti/activity within the synaptic cleft is present. A: terminal motor axon, filled with synaptic vesicles (SV) and (M) mitochondria. (JF):
i ./'*
tfiMS. the post synaptic membrane, estending into the post;:/:' sz4^tic sarcolasm (Sp). Most of the acetylcholinesterase was present
at the posfcsynaptic sites. Introducing the lead into this histochemical technique increased the electron density of the end product. Mamba and Grob (; > have attempted to delineate, further, the preferential binding' of subneural apgjaratus^ of the tidtor end plate, by lead and other divalent metal ions. While the binding of divalent metal ions to the subneural apparatus included zinc, cadmium, copper and tin, it is pointed out that the appearance of lead-stained structures is identical with the subneural apparatus stained for cholinesterase activity. The binding sites are post-synaptic, as indicated by the observation that, following denervation, the axon terminal disappeared, but the cholinesterase activity did not. That the binding of lead to post-synaptic subneural apparatus is not completely identical with the characteristics of cholinesterase activity vas shown by the fact that the latter was not affected by freezing the muscle then thawing it prior to staining, while binding of metal ions disappeared completely when the muscle specimen was treated in this way. On the other hand, binding activity of the subneural apparatus to lead and tin was not influenced by prior intramuscular injection of one oillimolar solution of diisopropyl fluorophosphate or neostigmine. Cholinesterase activity was completely inhibited by these compounds. Also, cholinesterase activity was somewhat
reduced in amount in muscle in which the subneural apparatus had been found
,1 -
DU P050312424
10 with lead. These studies of Hassba and Grob are a part of attempts to ideatify some properties of the cholinergic receptor, but the differential characteristics of lead-binding at the motor end plate may shed light ' on some aspect of weakness found in lead poisoning. At the present time little is known about the influence of most metal ions on neuromuscular t^^smission. Metal ions do affect muscle contraction (Sandow and Isaacson, 1966). A change of external calcium ions has been found to cause a change in permeability of the post-synaptic membrane (Takeuchi, 1963), while lowering the calcium concentration may produce neuromuscular blockade by decreasing the pre-synaptic release of acetylcholine. (Elmquist and J ldman, 1965). Calcium is normally present at the motor end plate in bound form and is released as the free ion following nerve stimulation. Nakamura, Namba, and Grob (1967) were able to demonstrate, the release ;<vo calcium ions at the motor end plate,'indicating a close relationship between the site of calcium release and the site of binding of divalent metal ions. This relationship between Calcium and lead binding may have
significance. Further work is needed. Such a relationship may explain
the predilection for palsy in the more active muscles. The lead binding
substance at post-synaptic membrane was postulated by Csillik (1963)
to be an organized lipo-protein. Studzuiski and Love, 1964, demonstrated
the binding of lead with nucleolar ribonucleoprotein of unfixed fresh.
BeLa cells.
-
Is It possible that Pb-Lipoprotein complexes, are formed in a similar
fashion suggested earlier by Sayer?
Neurones t_and .Enc^^haLqjjath^:
Evidence for toxic effect on anterior horn cells and the peripheral nerve itself is convincing; some authors found changes in the anterior
DUP050312425
u
roots and others also found changes in dorsal roots.. Spinal roots have shown atrophy of anterior divisions. The anterior horn cells had
eccentrically placed nuclei, Kissl bodies were dispersed shotting .
chromatolysis (JIaslett?:and Warrington, 1898). Edema and severe nerve
cell degeneration seem to be prominent features of both acute and subacute
intoxication, (Alkelaites, 1941, Marsden and Wilson
). Emphasis has been
placed upon mesodermal changes, some of which resemble atheroma with endothelial proliferation (Pelri, 1930). Blood vessels of the gray matter
of the spinal cord and brain have been commonly Involved.
Routine microscopic study of the pathologic changes in the brain
in cases of lead poisoning show patchy nerve cell degeneration and slight
vascular endothelial reaction. (Pentschew, 1958). Brun and Brunlc (1967) studied the effects of lead experimentally in rats poisoned with lead.
Animals killed one day after the cessation of administration of lead
showed an increase in the quantity of lead in the brains of rats. An
increase in alkaline phosphatase activity was found in the capillaries.
Simultaneously, the acid phosphatase activity of the neurons appeared increased.
Brun and Brunk (1967) explained these findings the pathology lead encephalopathy
as being in part due to autolysis. Reduced allcalina phosphatase activity
was thought to be a result of a toxic inhibition produced by the lead
resulting in damage to the blood vessels, allowing transdate formation and
perivascular cellular responses.
.
Small perivascular hemorrhages in all parts of the brain have been__
described. These are usually after acute poisoning. These were scattered
in the walls of blood vessels ' as well. Granular perivascular material has
been considered evidence of cerebral edema. Usually the brain is swollen
with evidence of a pressure cone. In some instances, in the gross section
DUP050312426
*
punctate hemorrhages arc fGund. Microscopic sections show exudate about
blood vessels. The vessels are dilated, narrowed capillaries, some with
thrombi, necrotic cells, fat--laden cells. All lesions are patchy and
irregular in distribution. Lesions in meningeal as well as cerebral
-
vessels .are prominent, but more abundant in the white matter of the
centrum setaivovale, internal capsule and in the corpus callosum.
Large fibrous astrocytes are seen. Some, laden with fat. The nerve cells
show variable degrees of damage. The nuclei are more basophilic, nearly
pyknotic, and the nucleoli are indistinct. Necrotic cells are scattered
about and have irregular shapes. Host of the changes in nerve cells seem
related to vascular changes and consequent presence of exudate in the tissues. They are similar to changes of ischemia and hypoxia.
The cerebellum is intensely affected in acute lead encephalopathy.
Lesions are numerous in the molecular layer. Damaged capillaries, capillary
thrombi, perivascular foci of necrosis, hemorrhages, and thin films of
serous exudate about many capillaries are found. Purkinje cells are found
to be vacuolated and even necrotic. Nerve cells of the dendate nucleus
are lost. In White matter there are pools of perivascular serous exudate,
perivascular foamy fat-laden cells, and pigmented cells. Basal ganglia I
and spinal cord showed.similar changes. Obviously, lesions of a lesser
degree must exist in individuals who survive lead encephalopathy,
Neurocheiafcal studies of the brain in lead poisoning have been
technically difficult but the fact that epileptic convulsions, psychotic
states and excitement are common symptoms of lead poisoning, it is essential
to consider certain aspects of brain metabolism in this condition. Tower (
)
cites lead as one heavy metal which interferes with brain oxidative metabolism.
Because tetraethyl lead is a lipid soluble organic lead compound, it rapidly
DUP050312427
penetrates the shin and because it is so volatile, it is rapidly absorbed by inhalation. Continued absorption of small amounts of tetra\ ethyl lead may result in classical syndrome of chronic lead
l poisoning. Since the tetarethyl lead has high lipid solubility, large amounts gain access to the central nervous system. Cremar showed (1939) that the tetraethyl lead was converted in the liver to triethyl lead. Thus, the study of tfce effects of tetraethyl lead on tlie nervous system must be-concerned with triethyl lead effects. .Triethyl lead inhibits oxidation of^lucose_bv brain cortex slices. This effect was. observed whether in brain slices to which triethyl lead had been added in vitro, or in slices of the brain taken from poisoned animals (Cremer, 1962). Some studies of the effects in vitro of Pb on amino acids have been done. Vamadis and Quastel, (1961) showed that tetraethyl lead inhibits active transport of energy dependent amino acids into cortes: at concentrations that show no effect on glucose metabolism of the slices. Tetraethyl lead inhibited the oxidation of glutamate by rat brain slices; it abolished, at low concentrations, potassium stimulated brain slice respiration in the presence of glucose, having no effect on unstimulated brain slice respiration. Varaadis and Quastel (1961) reported that when the brain is poisoned in the jiving animal by administration of tetraethyl lead, the only metabolic abnormality fonnd is an inability 6f brain slices to transport actively; glutamic acid and glycine. Since this disturbance coincides with the appearance of pathological symptoms it is reasonable to assume that some of the neurological symptoms of tetraethyl lead may be a consequence of the failure of the brain cell to transport amino acids, and possibly other ions, across the neuronal membrane.
The importance of glutamic acid is emphasized by the fact that it is the sole substrate capable of sustaining cerebral metabolism in the
DUP050312428
.abs'eaiceVjpf glucose (Geiger, A., 1958). Glutami^ acid is of central
importance In the transfer and metabolism of ammonia. During seizure
. L.*V. .
.
6 tatesi Aramonla levels rise as a result of extra glucose oxidative
metab'olifeo secondary to high level of neuronal activity. It is conceivable that defects in glutamote-transamiantion reactions may be
partly, responsible for Initiation of seizure activity in certain situations.
Although,, seizures encountered in acute lead encephalopathy may be due to 'V-' i .
neuronal exicitation related to local edema or vascular reasons, inter-
ference>with flutaraic acid metabolism by lead may result in reduction
of (GABA) gamma erainobutyric acid production. This might be done by
affecting, the enzymes and cofactors such as ; . 1
1. Glutamic acid decarboxylase (GAD) which decarboxylates glutamate
.to GABA. _
2. Glutamic acid dehydrogenase (GHD) which reduces alpha-ketoglutarate
to glutamic, acid.
"
` __ s'
3* fytldoral phosphate metabolized from pyridoxino (B&P), which functions
es'i the coensyme for transamination reactions used for glutamic acid decarboxylase in the synthesis of GABA. Gemma sminobutyric acid has been considered ah inhibitory transmitter or depressant moderator, and interference with GABA production night produce
seizures by increasing neuronal excitability (Curtis, 1960, 65). Cremar (1964) reported that normal brain slices incubated in vitro with (-^C) glucose
showed that GABA attained the highest specific activity whereas both glutamine and aspartic acid had specific activities about- half that of glutamic acid. Triethyl lead had no inhibitory action on glutamic acid
decarboxylase (GAD) activity. Brains of fats, given triethyl lead which
showed excitable behavior progressing to permanent rremors, contained increased
DUP050312429
eaounta of .free jglutamine after alcctrlcal stimulation, but not after
BSS2SSi or plcrotoxin seizures. Further clinical evaluation of this Blight
include study of the use of pyridoidne or glutamine in children with
seizures due to acute lead poisoning. .
v
Peripheral Karves
`
. '*
Gonibault (1880) and da Villaverda (
) demonstrated segmental
parenchymatous degeneration of myelin sheaths and axis cylinders affecting
the distal parts of the motor fibers and motor end plates. Recent
careful electron microscopic stidues of experimental lead neuropathy by
Lampert and Schochet (1968) showed that while Schwann cells and myelin
sheaths were primarily damaged, axons also showed degenerative and reactive
changes. Degenerating axons at a distance from an area of traumaare
characterized by granular disintegration and clumping of axoplasmic organelles,
whilereactive axons show abundant mitoclirondria, vesicular elements and
membranous dense bodies. Remyellnation takes place as Schwann cells
wrap themselves around the denuded but other wise normal axons. The formation
of new myelin lamellae by the apposition and fusion of the enfolded plasma
membranes does not differ from normal 'myellnation or from remyellnation as
described inhuman hypertrophic neuropathies. Before some of the sheaths
became fully restored, their supporting Schwann cells again degenerate.
Each degenerated Schwann cell leaves behind a basement lamina that serves
as a scaffolding along which other Schwann cells grow. Repeated degeneration
and regeneration or proliferation of Schwann cells leads to the formation
of "onion bulbs" around axons.
(Slide 3 hamperu)
(#1) A transverse section of a sciatic nerve of a rat on a lead diet for
four months showed no pathological changes, stained with paraphenylene-
-- - diamine.'
DUP050312430
16
(52) At six months of 'lead diet, myelinated axons are separated from each other and there are wide distensions of the sheaths (arrow).
(53) After seven months there is disintegration of myelin sheaths and. Macrophages filled with myelin debris are seen.
(54) A sciatic nerve from a rat after 8 months of lead diet shows numerous reiayelinated axons, some of which are surrounded by concentric layers of Schwann, cell processes (arrow). I'he next slide (4) shows a portion of a disintegrating myelin sheath
from a rat on a lead diet for seven months. It shows splitting of minor and major danse lines and transformation of myelin lamellae into membranous blebs (xSO,OQG). Slide 55 (^17).~ An axon from a rat on a lead diet for seven months is enclosed by a Schwann cell forming a new myelin lamellae. Other cytoplasmic processes are in the space between the Schwann cell and the remnants of the old neurolcmmal tuba or basement lamina (xiO.OOG)
(513) In the lower electronraicrograph showing an axon enclosed by a proliferated Schwann cell. Processes from other Schwann cells grow along the inner surface of the basement lamina or old neurolemmal tube (arrow).
Slide (523) The onion-bulb .formation around an axon showing beginning remyelination from a rat on a lead diet for 8 months. Macrophages <MP) are seen between the concentric layers of Schwann cell processes (x6000).
Lamport and Schochet offer as an explanation for the process of demyelinaticn and remyelination in lead neuropathy two possibilities: 1, .that a substance having porphobilinogen as a precursor is somehow essential
for the maintenance of myelin. Such occurs In porphyria, in which a block ' dcc.urd In the liver resulting in excretion of excess porphobilinogen and
DUP050312431
17.
delta amino levulinic acid, and at'the same time causes derayellnation.
2nd, is based oa the possibility that lead causes vasodilation and produced r altered_vascnlar permeab111ty. Evidence of* intraendoneural edema
was seen, and such accumulation of exudation of protein rich material
within the endoneural compartment could produce damage to the Schwann
cell by pressure or indirectly by ischemia. Slide 10
The most conspicuous capsular cell changes were seen in those
animals showing Walleriandegeneration in the psoterior nerve roots and in sciatic and tibial nerves. Schlaepfer suHRested that the dense bodies contained a particulate material which has electron density characteristics 'of heavy metal compatible with lead.
Slide 11
'
` Evidence of segmental demyelinatioa and reayelilnation was noted.
(a) seen here is a (8) whole-mount teased preparation of tibial nerve
showing linear arrangement of ostaiophillc droplets in a fiber undergoing
Wallerian degeneration, (arrow).
--
, (b) (9) shows segaantal loss
<c) (10) unequal-thicknesses indicate remyelination
Slide 12
Axoplasm undergoing granular degeneration
Slide 13
,, -
Summarizes histo chemical studies. In section 11 and 12 is seen the
-add phosphatase activity in the nodal oxoplasa with unilateral spread
into the adjacent axoplasm; (13) accumulation of acid phosphatase activity
along 3 successive nodes, and (17) acid phosphatase activity following the arrays of lipid debris after Uallerian degenerations
DUP050312432
Schlaepfer (1969) produced neuropathy by feeding rats 1% lead acetate solution for periods of 3-IS months. He observed widespread segmented demyelination and rensyelination in peripheral nerves and the spinal nerve
s roots. A selective involvement of the capsular" cells in spinal ganglia was characterized by a proliferation of these cells and on accumulation of dense bodies vitnin their cytoplasm. These dense bodies contained a particulate material which has the electron density characteristics of a-heavy metallic substance, compatible with lead. An increase in neurofilaraents and a relative paucity of endoplasmic reticulum was seen in some associated sensory ganglion cells. More striking neuronal alteration, however, occurred in the distal peripheral nerves and in theposterior nerve roots, in the form of Wallerian degeneration. The accumulation of acid phosphatase activity in the nodal axoplasm of some peripheral nerve fibers appeared as an early form of axonal injury and attested to a special reactivity of the nodal region. Schlaepfer concluded that the coexistence of segmental degeneration and Wallerian degeneration in peripheral nerves of lead neuropathy may result from a common metabolic lesion of the supporting Schwann and capsular cells.
Slide 9 -- Phase contrast examination of dorsal root ganglia from the experimental animals revealed an increase of capsular cells which occurred in a circumferential manner around Individual ganglion cells and focally in the intervening tissue (fig 1-2). The arrow in figure 1 showed accumulation of dense bodies within cytoplasm of proliferating capsular cells. Figure 2 shows a ganglion cell surrounded by a seam of capsular cells
containing dense ganules (arrow).
DUP050312433
.:^'V
as: i,
v 1'; '?orfisla Fuilertcu (1966) had reproduced Goaibault's experiment and Cguihea\Pig)dGmonstrated teased nerve fibers undergoing segmental degenera
tion* (Slide 14) Different stages of demyelination were usually found
in\theisame animal and in different parts of the same nerve. In the
poisoned!animals (Slide 15) there was a marked reduction in large diameter
fibers but no decrease in the number of small diameter fibers. She felt
that the prolonged latencies (Slide 16) were not due to unmasking of
moreislbwiy. consisting fibers but rather due to degeneration of nerve
fibers.' Fullerton measured motor nerve conduction velicity in these animals
' : vy.\ 11
andl showed that it was below normal (Slide 17). As mentioned earlier (1969)
Fullerton measured conduction latencies in S iead workers and found no
significant slowing of conduction velocity in the peroneal nerve. However, by using the amplitude of the potential following stimulation at th~ knee expressed as a percentage of that following stimulation at the ankle, a difference emerged between the lead workers and 12 control subjects. The difference between the too means is significant at less than 1.01 level (Student "t" test) The explanation given is that conduction Is reduced in only/a few fibers. This would not affect maximal velocity but the potential would become more dispersed the greater the conduction distance
and thus affect the ratio. Fullerton suggested this method as a sensitive way. to measure peripheral nerve darage. She asked what level of lead
poisoning might be naeded for such small changes in man? This question ^
was, raised years ago by Minot () when he reviewed studies of the
physiological effects of small amounts of lead. Ha emphasized the need
;
to reassess, the margin of safety between the lead exposure of the average
individual and those amounts generally recognized as dangerous.
DUP050312434
Original Research - Preliminary Results
What percentage of the patients with acute lead encephalopathy my
have evidence of peripheral neuropathy as well?' . Could these cases
represent chronic exposure with an acute precipitation of encephalopathy,
which may have been prevented if the minimal signs of neuropathy could
have been detected? Are the children who show neuropathy later,
*
after an acute encephalopathy, reflecting the continuing exposure
to endogenous lead being slowly released from stores in'bone and
soft tissues? Or simply, are these changes in peripheral nerve in
some patients and not in others the result of a dose - response
relationship?
We have tried to answer some of these questions by measuring nerve conduction characteristics in a gorup of children known to. have been exposed to lead* Seven children had had frank evidence of encephalopathy, with seizures, stupor and behavior change. Eleven ware the siblings of patients with encephalopathy or were picked up as suspect in a clinic screening by the hair test of Kaplto, Byers, and Schw&chmntm. None .
had obvious evidence in their hospital records of peripheral neurpathy, although several had ataxia of gait or unsteady stance. Host of these children were studied for hair lead concentration as well. In those
patients in whom the blood lead was not significantly elevated but the hair lead levels were convincing, EDTA provocative tests proved the
diagnosis by liberating lead into the urine from stored tissue sites. Conduction studies were done in three children within two weeks of a
diagnosis and after chelation had been instituted. It takes 21 days after denervation to get slowed conduction. In these cases the studie.3
ware repeated three months later. Two children were studied 6 months
DUP050312435
.20.
and two one year after initial diagnosis; five were done after 2 years
-"
*W
and five were studied three years after initial diagnosis. The children
-
were'all awake and drugs were not used for sedation.
Stimulating eledtrodes were placed at the peroneal nerve as it
coursed around the lateral head of the fibula. Surface recording
electrodes were placed over the extensor digitoma brevis rauscle. Distal
stimulation was done by placing the stimulating electrode over the anterior
tibial nerve, the branch of the peroneal which supplies the extensor
dig!Corum brevis. Recordings were made on an oscilliscops and photographed
for later measurements. Threshold stimulations at a constant duration
(0.1 milliseconds) single shocks, delivered at a frequency of one per
second and a voltage of fifty to one hundred and fifty volts were done.
A ground lead was placed on the leg being studied.
Results were analyzed in the following manner. (Slide 18) Threshold
curves were obtained. No consistent correlation was found in the minimal
voltage required to obtain either a muscle response or an' evoked response'
measured over the anterior tibial nerve when stimulating the peroneal
nerve. Threshold for the patients range from 50 to 100 and the supramaximal
response was obtained above 150. There seemed to be no correlation between
the threshold or supramaximal stimulus and the conduction velocity or amplitude
of reaponce obtained. Supramaximal stimulation produced the type of muscle
response recorded and shown on this slide 19. The time between the stimulus
artifact and the initial upward deflection is the latency. The latency
. of the proximal response and the distal response are subtracted and the
difference is divided into the distance between the two stimulating sites.
In this way the conduction velocity is calculated. The amplitude of the
response was measured from the baseline to the peak of the deflection.
DUP050312436
"21
Because of the paucity in available controls at the various ages
necessary for study those values reported by Thomas and Lamport,
have been used in tis study, .
the same ranges, (Slide 21)
(Slide 20).
Our own controls fall into ,\
When the conduction velocities were plotted against the control'
values of Gatasfcorp according to the age groups 1 to 3; 4-6; 6-10; it is
clear that the conduction velocities from our group of children \7ifch
chronic exposure to lead after chelation still showed abnormalities in the
ability of the peroneal nerve to conduct normally. These preliminary
data are significant to the .05 level for the younger grosp and to the .01
level for the middle group. We do not have enough date to be sure about the
older group.
Slide 22.23, 24
.... .These values, grouped according to ,age. so. that the developmental and
maturation factors affecting myelination of the peripheral nerve are talcen
into consideration, was studied in relationship to theHood level of lead
at-the time of the conduction studies as well as the hair lead at the time
of the conduction studies as well as the hair lead concentrations for a
given length (centimeter) of hair as measured by Kapito's laboratory.
(A) conduction of velocities are generally lower than normal; (B) the blood
lead levels, .are generally normal- since these children have all bean treated.
DUP050312437
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DUP050312441