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Biomedical subjects

M R Krigman

Publications and source records attributed to M R Krigman.

At least 37 records · Page 2Linked to original sources

Effect of triethyl tin on myelination in the developing rat.

Myelinogenesis in developing rats was studied following chronic dosing with triethyl tin (TET), at a level of 1.0 mg TET/kg body wt/day. Experiments included starved controls with body weights depressed by 17 to 40% to equal those of the TET-treated groups. Rats at ages of 16, 21, and 30 days showed decreases relative to well-nourished controls in body weight, forebrain weight, myelin yield, cerebroside level, and specific activity of brain 2',3'-cyclic nucleotide-3'-phosphohydrolase when dosed with TET. At 30 days, myelin and cerebroside yields were reduced by approximately 55%, while CNP activity was reduced by less than 20%. No differences in the forebrain myelin protein composition between control, starved, and TET animals were noted. The rate of myelin protein synthesis relative to brain total protein (assayed by incorporation of intracranially injected [3H]glycine into brain homogenate and myelin proteins) was decreased in the TET rats in proportion to the decreased yield of myelin, but no particular myelin protein was preferentially affected. Matching starved controls exhibited similar body weight decreases, less pronounced forebrain weight decreases, and little or no decrease in myelin concentration. There was a relative increase in the myelin protein synthesis rate in the starved rats, indicating preferential utilization of limited protein precursors for myelin protein synthesis. Spinal cord myelin was also decreased in the TET rats, but less severely than in the forebrain. At all ages optic, but not sciatic, nerves showed decreases in myelin concentration with TET treatment. We conclude that TET inhibits forebrain growth and CNS myelination more severely than can be accounted for by a general metabolic insult.

Animals↗

Effects of neonatal lead exposure on memory in rats.

Five groups of rats exposed to varying doses of lead by gastric intubation from Day 3 to Day 30 of life were tested to determine whether lead affects memory. A variable intertrial interval spatial alternation task was used to examine memory; it permits generation of a complete retention curve within subjects in a single session. Because of lead's putative effects on the cholinergic neuronal system, the cholinergic drugs controls to the drugs and to compare drug effects with lead effects. Orderly memory functions were obtained in all animals; however lead-exposed groups did not differ in performance from controls. Scoopolamine decreased alternation accuracy but its effects did not differ across the neonatal dose groups.

Animals↗

Pathogenesis of trimethyltin neuronal toxicity. Ultrastructural and cytochemical observations.

The ultrastructural cytopathologic and cytochemical effects of trimethyltin (TMT) neurotoxicity were delineated in hippocampal and pyriform neurons of acutely intoxicated adult rats. TMT produced neuronal necrosis that preferentially involved hippocampal formation pyriform cortex. The first subcellular alterations were multifocal collection of dense-cored vesicles and tubules and membrane-delimited vacuoles in the cytoplasm of the perikaryon and proximal dendrite. Ultrastructural cytochemical examination revealed that the vesicles and tubules had acid phosphatase activity analagous to Golgi-associated endoplasmic reticulum (GERL). Shortly after the appearance of the GERL-like vesicles and tubules, autophagic vacuoles and polymorphic dense bodies accumulated in the neuronal cytoplasm. Some dense bodies appeared to arise from the dense-cored tubules. Neuronal necrosis was characterized by increased electron density of the cytoplasm and large, electron-dense intranuclear masses. Alterations of mitochondria and other organelles were not observed in the early stages of cell injury. No light- or electron-microscopic alterations were found in liver or kidney. Comparable subcellular alterations were observed in adult and neonatal rats chronically intoxicated with TMT. A series of other trialkyl and tricyclic tins and dimethyltin did not produce similar pathologic findings. The GERL-like accumulations are unique in neuronal cytopathology. These findings suggests that GERL and autophagy play an important role in the pathogenesis of TMT-induced neuronal injury.

Animals↗

Developmental studies of the uptake of choline, GABA and dopamine by crude synaptosomal preparations after in vivo or in vitro lead treatment.

The kinetics of sodium dependent, high affinity uptake of choline and dopamine by striatal synaptosomal preparations and of GABA (gamma-aminobutyric acid) by cortical synaptosomal preparations have been examined during the development of Long-Evans control and lead-treated rats. Choline uptake was very low until 12 days postnatally, then the Vmax increased and approached adult values of 29 pmol/mg prot./min within a week. GABA uptake was somewhat elevated at birth and only after three weeks did it decrease to the adult value of 0.7 nmol/mg prot./min. Dopamine uptake was low at birth, developed linearly with age and by 30 days postnatally approached the adult value of 68 pmoles/mg prot./min. The high affinity uptake constants (choline, 0.66 microM; GABA, 4.4 muM; and dopamine, 0.31 muM) did not change markedly during development. Similar studies were conducted with rats treated at the highest lead dosage which did not result in weight loss (100 microgram lead as lead acetate/g body weight/day via intubation). Blood and brain lead determinations confirmed a substantial lead exposure. Such chronic exposure did not markedly affect the amount or developmental pattern of uptake of the putative neurotransmitters. The effect of 2.5 x 10(-5) M lead acetate in vitro on the kinetics of high affinity uptake of these compounds into preparations from 20-26-day-old rats was investigated. When uptake was assayed in the absence of calcium, lead caused a 20% increase in the Vmax for dopamine. This stimulation was reduced if samples were assayed in the presence of n mM CaCl2. The Km for high affinity uptake of these neurotransmitter-related compounds was not affected by lead. In other studies, crude synaptosomal preparations were preloaded with neurotransmitter by preincubation with radioactive choline, GABA, or dopamine. Release of radioactive neurotransmitter, either spontaneous or in response to potassium depolarization, was quantitated and correlated with the presence or absence of 2.5 x 10(-5) M lead and/or 10(-3) M calcium ions. Lead slightly inhibited calcium dependent spontaneous release of dopamine. Lead also appeared to partially substitute for calcium in the potassium depolarized release of dopamine and GABA, although subtraction of the spontaneous (potassium independent) component reduced the magnitude of the lead effect.

Aging↗

Effect of inorganic lead exposure on myelination in the rat.

The effect of defined lead burdens on myelination of the central and peripheral nervous systems was studied in neonatal Long-Evans rats. Pups were exposed to inorganic lead (100 or 400 mg Pb as lead acetate/kg body wt/day by gastric intubation) from day 2 following birth to 30 days of age. Accumulation of myelin in forebrain was not affected by the 100-mg dosage, but at the 400mg/kg dosage level, myelin accumulation was reduced by approximately 42% on a per gram forebrain basis relative to vehicle-intubated animals. The deficit was over 50% on a per forebrain basis, since there was also a slight reduction in brain weight. This lead effect was observed at both 15 and 30 days of age. Accumulation of myelin in optic nerve (determined on the basis of proteolipid protein concentration) was also reduced by 30% relative to controls by this dosage level. However, myelination in sciatic nerve (determined on the basis of Po protein concentration) was not affected by this exposure regimen. Myelin deficits were greater than could be accounted for by undernutrition secondary to lead exposure and were not due to a developmental delay in the onset of myelination.

Animals↗

Lead exposure during infancy permanently increases lithium-induced polydipsia.

Lead (200 milligrams per kilogram) was administered daily by intubation to Long-Evans rats on days 3 through 30 of life. Thirty to 180 days after cessation of lead administration, the lead-treated rats were consistently more polydipsic after lithium administration (2 millimoles per kilogram per day) than were pair-treated controls. Lithium increased the plasma renin activity equally in both the lead treated and the control groups. These data are evidence that there may be permanent neural changes induced by postnatal exposure to lead that are manifested by pharmacological challenge with lithium.

Animals↗

Experimental lead encephalopathy in the suckling rat: concentration of lead in cellular fractions enriched in brain capillaries.

Five-day old rats subjected to short-term (2-day) lead exposure by gastric gavage of aqueous lead acetate at the highest non-lethal dosage (1mgPb/g body weight/day) developed a hemorrhagic encephalopathy. Capillaries and microvessels isolated from brains of these rats showed abnormal morphology consisting of an increased number of irregularly dispersed endothelial nuclei and swollen, vacuolated endothelial cells. Lead was concentrated in isolated brain capillary-microvessel fractions, as demonstrated by both atomic absorption and 210Pb tracer methods. When lead exposure was continued for 20 days (at the maximal dosage regime compatible with a 60% survival rate), the rats recovered from the initial encephalopathy and capillaries and microvessels isolated from brains of these rats appeared morphologically normal. This recovery occurred despite continued high levels of lead in the blood and in the isolated capillary-microvessel fractions, suggesting that, as capillary endothelial cells mature, they are able to adapt to the presence of large amounts of lead.

Animals↗

Morphological evidence for 6-hydroxydopamine-induced sprouting or noradrenergic neurons in the cerebellum.

Intracisternal injection of 6-hydroxydopamine (6-OHDA) into young rats during the first 24 hours after birth resulted in a significant elevation of cerebellar norepinephrine by day 9. This elevation continued through 120 days. Fluorescence microscopy demonstrated an increased fluorescence in all layers of the cerebellar cortex in treated rats from 9 days after treatment through 120 days. This was considerably greater than the normal developmental change observed in control rats and appeared to be due to an increased number of fluorescent terminals. Quantitative electron-microscopic analysis indicated that all layers of the cerebellar cortex of treated rats contained significantly more boutons with small dense-cored vesicles (SGV), a morphologic marker for catecholamines, than controls. No significant difference in the number of SGVs per bouton was observed in 6-OHDA treated rats.

Animals↗

Neuropathology of heavy metal intoxication.

The basis for utilizing altered morphology, i.e., pathology, in defining diseases of the nervous system is presented. The importance of recognizing the dynamics of pathologic processes is emphasized, particularly in understanding the pathogenesis of neural diseases. Demonstrative examples of the neuropathology of human heavy metal toxicity are presented. The limitations of descriptive pathology are considered, and the potentials of quantitative (morphometric) analysis for studying pathologic processes are introduced.

Animals↗

Congenital saccular aneurysm in a 19-day-old neonate: case report and review of the literature.

A 19-day-old neonate presented with a massive intracranial hemorrhage which was found at autopsy to be due to a ruptured intracranial saccular aneurysm. Detailed histologic evaluation revealed that this was a true congenital lesion. A survey of the literature yielded 19 cases of saccular aneurysm in the first year of life. Together with this report, nine cases are now on record, containing sufficient histologic detail to suggest a congenital basis, contrary to the assertion casting doubt on the existence of the entity. Attention is drawn to the practical importance of recognizing this lesion as a rare cause of intracranial hemorrhage in the neonate, since successful surgical intervention has been reported in several cases.

Humans↗

Intracranial epidermoid tumor: discussion of four cases.

Four cases of intracranial epidermoid tumor are presented. These are uncommon tumors with no specific signs or symptoms, and their diagnosis depends upon a high index of suspicion. Computerized axial tomography (CAT scan) was helpful in diagnosing one of the cases described and undoubtedly will be instrumental in identifying future cases. Epidermoid tumors are biologically benign. They are often amenable to resection, and therefore tissue diagnosis before starting any therapy is important.

Adult↗

Failure of successful renal transplantation to reverse the dialysis-associated encephalopathy syndrome.

A patient is described who had been on home dialysis for two years before receiving a cadaver kidney transplant. In retrospect, minor speech difficulties were noted two weeks before the transplant. A week after the transplant the characteristic speech, movement and electroencephalographic (EEG) abnormalities of the dialysis encephalopathy syndrome abruptly presented. Relentless neurological deterioration ensued ending in death three months later despite excellent function in the transplant. The significance of this observation is related to current theories of pathogenesis.

Adult↗

Undernutrition in the developing rat: effect upon myelination.

Long-Evans rats were undernourished from birth by removing the mother from the sucling rats for part of each day; the undernutrition was continued after weaning till 60 days of age by restricting the daily food intake. Brain development was monitored by histologic and selected biochemical analyses coordinated with an ultrastructural morphometric analysis of the pyramidal tract of 30-day-old rats. Brain and body growth were already reduced after 10 days of undernutrition. At 20 days of age, the peak of myelination in the controls, the body and brain weights of the undernourished rats, compared to the controls, were reduced by 25 and 60%, respectively, and by the end of the study (60 days), the brain and body weights were reduced by 30 and 70%, respectively. Morphometric analysis indicated that the proportion of myelinated axons was significantly reduced in starved (34%) relative to control (43%) animals. Fiber analysis revealed that not only were the myelin sheaths thinner in the undernourished rats, but that the sheath was disproportionately reduced relative to the axon diameter. Chemical analysis on a whole brain basis demonstrated a greater than 60% deficit in the relatively myelin-specific galactolipids. (Whole brain analysis included regions more severely affected than the morphometrically analyzed pyramidal tract.) We also obtained evidence for both a delay in the initiation and a general retardation of myelinogenesis. The promyelinating fibers (axons with one or two non-compacted myelin lamellae) still constituted 4.5% of the myelinated fibers in the undernourished animals at 30 days but had declined to 0.3% in the controls. Analysis of the fabtty acids of cerebroside and sulfatide (lipids enriched in myelin) demonstrated in the undernourished group a pattern characteristic of a younger animal. Thus, the effect of undernutrition on the developing rat appears to be one of inhibited and somewhat retarded myelination. These effects were most likely due to a reduction in the number of myelinating glia formed and the restricted capacity of those which form to generate myeline lamellae.

Age Factors↗

Myelin synthesis during postnatal nutritional deprivation and subsequent rehabilitation.

Newborn Long-Evans rats were undernourished by maternal deprivation so that by 20 days of age their body and brain weights were about 45 and 80%, respectively, of the values obtained for control (well-nourished) values. Proteins from myelin of undernourished and control rats were separated by polyacrylamide gel electrophoresis in buffers containing sodium dodecyl sulfate. At 15 and 20 days of age the proportion of basic and proteolipid protein was reduced in the starved animals relative to controls, indicative of a delay in maturation. However, by 30 days of age the composition of myelin from starved and control animals appeared similar. At all ages the yield of myelin from brains of starved rats was less than 25% of that obtained from control animals. A series of isotope labeling experiments, using a double label design, was carried out to compare relative rates of incorporation of radioactive amino acids into individual proteins of various brain subcellular fractions. In 20-day-old rats the incorporation of [3H] OR [14C] leucine or glycine into myelin proteins, relative to incorporation into proteins of other subcellular fractions, is preferentially depressed (about 60%) in starved animals. Synthesis of all the myelin proteins was depressed, supporting the hypothesis that the high molecular weight proteins isolated with myelin are true myelin constituents. Similar experiments were conducted using [3H]-and [14C] acetate, choline, or glycerol as precursors of lipids. Incorporation of isotope into lipids of myelin, relative to lipids of other subcellular fractions, was also depressed by about 60% in starved animals. In several experiments we studied synthesis during rehabilitation (ad libitum feeding) following 20 days of postnatal starvation. After 6 days of rehabilitation, incorporation of radioactive precursors into myelin, relative to other subcellular fractions, was still depressed. This result was true for both proteins and lipids, and was interpreted as evicence against the initiation of a process leading to a net recovery of myelin (i.e., an irreversible deficit of myelin synthesis is induced by this regime of nutritional deprivation).

Animals↗