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The relation of the neurotoxicity of organic tin and lead compounds to neurotubule disaggregation.

The effect of organic lead and tin compounds upon the integrity of cerebral neurotubules has been studies in vitro and in vivo, using 3H-colchicine binding as an index of tubulin aggregation. Triethyl tin, trimethyl lead and triethyl lead chlorides at concentrations above 5 X 10(-5)M, all prevented the polymerization of tubulin. Inorganic lead had a similar effect. Trimethyl tin had a much lesser capacity to prevent such polymerization. Rats received a single dose of each organometal, by subcutaneous injection and the capacity of hippocampal soluble protein to bind 3H colchicine was assessed. At organometal doses sufficient to cause morphological damage and behavioral change, no significant differences of colchicine binding capacity were apparent.

Animals↗

Organotin compounds in trimethyltin-treated rats and in human brain in Alzheimer's disease.

As blood tin concentrations are elevated in Alzheimer's disease and as some low molecular weight organotin compounds are neurotoxic, we have attempted to detect organotins in brain in Alzheimer's Disease. First we measured the concentration of trimethyltin (TMT) in the brains of rats which had been exposed to memory-impairing concentrations of TMT and, as the method of linking hydride generation, cryogenic trapping, gas chromotographic separation and atomic absorption spectrophotometric detection permitted the measurements of organotin compounds when the total tin was greater than 0.2 nanograms, we applied these techniques to human brain tissue, some of which showed neuropathological evidence of Alzheimer's Disease. No low molecular weight organotin compounds were detected in the human brain tissue, but it is possible that tin may be complexed with large organic molecules, the hydrides of which would not be volatile, but which could be identified by liquid chromatography.

Aged↗

Determination of amino acids in different regions of the rat brain. Application to the acute effects of tetrahydrocannabinol (THC) and trimethyltin (TMT).

A modified HPLC method is described for the determination of amino acids [aspartic acid, glutamic acid, glutamine, glycine, taurine, and gamma-aminobutyric acid (GABA)] in brain tissue utilizing precolumn derivatization with o-phthalaldehyde (OPA)-tert-butyl-thiol and electrochemical detection. A simple extraction procedure was employed and DL-homoserine used as internal standard. A neurotoxin previously shown to affect brain amino acids (trimethyltin, TMT) and a psychoactive compound hypothesized to act on these neurochemicals (delta-9-tetrahydrocannabinol, THC) were administered to adult male rats and amino acids were measured. Results revealed a gradient of distribution of most amino acids, with lowest levels posteriorly in the brain stem and increasing to the highest values in anterior cortical regions. TMT increased glutamine significantly in all brain regions examined, but increased glycine and decreased taurine only in the frontal cortex and hippocampus. No significant changes in any amino acid were found in hippocampus after THC treatment. The results establish the validity and usefulness of this HPLC method for detecting neurotoxicity-related changes in brain amino acid metabolism.

Amino Acids↗

Blockade of glutamatergic and GABAergic receptor channels by trimethyltin chloride.

1. Organotin compounds such as trimethyltin chloride (TMT) are among the most toxic of the organometallics. As their main target for toxicity is the central nervous system, the aim of the present study was to investigate the effects of TMT on receptor channels involved in various processes of synaptic transmission. 2. The Xenopus oocyte expression system was chosen for direct assessment of TMT effects on voltage-operated potassium channels and glutamatergic and GABAergic receptors, and hippocampal slices from rat brain for analyzing TMT effects on identified synaptic sites. 3. TMT was found to be ineffective, at 100 micromol l(-1), against several potassium- and sodium-operated ion channel functions as well as the metabotropic glutamate receptor. 4. The functions of the ionotropic glutamate and the GABA(A) receptor channels were inhibited by TMT in micromolar concentrations. Thus, at a maximum concentration of 100 micromol l(-1), around 20-30% of the alpha-amino-3-hydroxy-5-methylisoxazole-4-propionic acid and GABA(A) receptor-mediated ion currents and 35% of the N-methyl-D-aspartate receptor-mediated ion currents were blocked. 5. In the hippocampal slice model, the inhibitory effects of TMT were much stronger than expected from the results on the ion channels. Bath application of TMT significantly reduced the amplitudes of evoked excitatory postsynaptic field potentials in a concentration-dependent and nonreversible manner. 6. Induction of long-term potentiation, recorded from the CA1 dendritic region, was inhibited by TMT and failed completely at a concentration of 10 micromol l(-1). 7. In general, TMT affects the excitatory and inhibitory synaptic processes in a receptor specific manner and is able to disturb the activity within a neuronal network.

Animals↗

Trimethyltin impairs retention of a passive avoidance task.

Trimethyltin is a neurotoxic organometal which produces neuronal damage in several limbic regions including the hippocampus, amygdala and the pyriform cortex. One administration of trimethyltin (5, 6 or 7 mg/kg) twenty one days prior to passive avoidance conditioning produced an impairment of retention when animals were tested 24 hours after training. Rats treated with trimethyltin exhibited shorter step-through latencies and freezing durations during the retention test. It was observed that the three dosages of trimethyltin were equally effective in disrupting retention performance. There retention deficits were not secondary to alterations in footshock sensitivity. The data presented here indicate that acute trimethyltin administration disrupted learning and memory. The compound might be a useful tool for examining the role of the limbic system in associative processes.

Analysis of Variance↗

Effects of organotins on rat brain astrocytes in culture.

The interaction of triethyltin (TET) and trimethyltin (TMT) with rat brain astrocytes in vitro was investigated. Both compounds are highly neurotoxic after in vivo application, cause neurobehavioral changes, and elicit neuronal and glial responses in the CNS. In this study, 5-week-old cultures were exposed to TMT or TET (0.1-2.5 microM) for 24 h. A concentration-dependent cytotoxicity was observed for both agents by vital dye uptake assay using neutral red (NR). The order of potency for half-maximal cytotoxicity (NR-50) was TET (0.7 microM) > TMT (2.5 microM), in agreement with results found after in vivo administration. TET and TMT caused similar morphological changes: large holes extending through the plasma membrane appeared initially in the flattened cell bodies, cytoplasmic extensions were retracted, and long cellular processes formed. Later, the cell bodies rounded up and had only a few extremely long and thin processes. Indirect immunofluorescence staining using anti-vimentin and anti-glial fibrillary acidic protein (GFAP) antibodies revealed that the orderly array of the intermediate filament system was severely disturbed. At lower concentrations, an increased bundling was observed, and at higher concentrations the disassembly of the intracellular framework was seen, and cellular staining appeared rather diffuse. Western blot analysis of cellular extracts was carried out to determine the protein levels of GFAP and vimentin. In this culture system, TET and TMT caused an almost two-fold increase in the levels of GFAP at concentrations around and below NR-50, indicating that astrocytes react to organotins independently of neuronal signals.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Activity changes in rats following acute trimethyltin exposure.

The aliphatic organo-metal derivative, trimethyltin, causes marked morphological damage to the central nervous system (CNS), when the compound is administered by the intragastric route. This report describes certain behavioral consequences of [CH3]3Sn treatment. Either 7.0 mg/kg [CH3]3SnCl or 0.9% saline was injected intragastrically in male rats of Long-Evans strain divided into two equal groups of nine each. Forty days later open-field activity during a 2-min interval was measured for each rat. Following activity testing, the animals were trained to press a lever for food reinforcement on an ascending fixed-ratio series ranging from FR 2 to FR 99. The results showed that rats treated with [CH3]3SnCl were three times as active as controls in the open field, and emitted lever responses at a significantly higher rate than controls throughout the fixed-ratio series regardless of the reinforcement schedule. The possible neuropathological consequences and the relative permanence of the neurobehavioral changes following tin treatment are discussed.

Animals↗

Behavioral toxicity of trialkyltin compounds: a review.

Triethyltin (TET) and trimethyltin (TMT) are neurotoxic organotin compounds which produce different patterns of toxicity in adult animals. Exposure to TET produces behavioral toxicity (decreased motor activity, grip strength, operant response rate and startle response amplitude) which reflects impaired neuromotor function. These deficits are consistent with the reported myelin vacuolation and cerebral edema produced by TET, and with its direct effects on muscle. Exposure to TMT produces both hyperactivity and impaired learning and performance. These impairments are consistent with reported neuronal cell death produced by TMT, particularly in limbic system structures. While the behavioral deficits produced by repeated exposure to TET are reversible when dosing is terminated, the behavioral impairments produced by a single exposure to TMT appears to be irreversible.

Animals↗

Effect of alkyltins on rabbit articular and growth-plate chondrocytes in monolayer culture.

The effect of four different alkyltins (trimethyltin, triethyltin, dibutyltin, and dioctyltin) on the metabolism of rabbit articular and growth-plate chondrocytes was investigated using a monolayer cell-culture system. In most instances the compounds tested exhibited a general cytotoxic effect on these cells, inhibiting the synthesis of both DNA and sulfated proteoglycans. The effect of these compounds on proteoglycan synthesis was both quantitative and qualitative, as demonstrated by CsCl isopycnic density gradient centrifugation and gel exclusion chromatographic techniques. However, certain tin compounds tested, at specific concentrations, exerted a stimulatory effect on chondrocyte proliferation. Regarding DNA synthesis, growth-plate chondrocytes were more sensitive to the effect of the triethyltin, dibutyltin, and dioctyltin than were articular chondrocytes. The data are discussed in relation to the possible effects of the alkyltins on skeletal growth and development as well as the mechanism of action of the alkyltins at the molecular level.

Animals↗