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Structure, dynamics, and membrane topology of stannin: a mediator of neuronal cell apoptosis induced by trimethyltin chloride.

Organotin compounds or alkyltins are ubiquitous environmental toxins that have been implicated in cellular death. Unlike other xenobiotic compounds, such as organomercurials and organoleads, alkyltins activate apoptotic cascades at low concentrations. Trimethyltin (TMT) chloride is amongst the most toxic organotin compounds, and is known to selectively inflict injury to specific regions of the brain. Stannin (SNN), an 88-residue mitochondrial membrane protein, has been identified as the specific marker for neuronal cell apoptosis induced by TMT intoxication. This high specificity of TMT makes SNN an ideal model system for understanding the mechanism of organotin neurotoxicity at a molecular level. Here, we report the three-dimensional structure and dynamics of SNN in detergent micelles, and its topological orientation in lipid bilayers as determined by solution and solid-state NMR spectroscopy. We found that SNN is a monotopic membrane protein composed of three domains: a single transmembrane helix (residues 10-33) that transverses the lipid bilayer at approximately a 20 degrees angle with respect to the membrane normal; a 28 residue unstructured linker, which includes a conserved CXC metal-binding motif and a putative 14-3-3zeta binding domain; and a distorted cytoplasmic helix (residues 61-79) that is partially absorbed into the plane of the lipid bilayer with a tilt angle of approximately 80 degrees from the membrane normal. The structure and architecture of SNN within the lipid environment provides insight about how this protein transmits toxic insults caused by TMT across the membrane.

Amides↗

Effects of trimethyltin and triethyltin on lever pressing, water drinking and running in an activity wheel: associated neuropathology.

Rats were given single injections of saline solution, or doses of triethyltin, or trimethyltin, and their drinking behavior, lever pressing for food pellets and running in an activity wheel were measured continuously for 16 consecutive days. At doses of 3.0 and 4.5 mg/kg, triethyltin decreased lever pressing, drinking and running, usually for more than a week. Subsequently, drinking and running showed increases. Only the highest dose (4.5 mg/kg) produced decreases in body weight. Doses of 6.0 and 9.0 mg/kg trimethyltin generally decreased lever pressing, drinking and running for several days, but large increases were observed subsequently for all of these measures. Rats receiving 9.0 mg/kg died 6 to 8 days after trimethyltin administration, but rats receiving 6.0 mg/kg continued to show increases in behavior for 12 to 16 days after trimethyltin administration. Examination of the brains by light microscopy of the same animals used in the behavioral studies showed high correlations between behavioral changes and neuropathology in individual animals.

Animals↗

The effects of trimethyltin on the Ca+2, Mg+2 and Ca+2 + Mg+2-dependent ATPases of human neuroblastoma GM 3320.

Data presented here indicate neuroblastoma GM 3320 tissue homogenates exhibit ouabain insensitive Ca+2-dependent, Mg+2-independent, Mg+2-dependent, Ca+2-independent and Ca+2 + Mg+2-dependent ATPase activities. Inclusion of trimethyltin in homogenate preparations of these cells appears to discriminate between these various ATPase activities. At low concentrations (25 microM), trimethyltin preferentially stimulated the Ca+2-dependent, Mg+2-independent ATPase activity while inhibiting the Ca+2 + Mg+2-ATPase activity approximately 70%. At 75 microM trimethyltin, the Ca+2 + Mg+2-dependent ATPase activity is inhibited greater than 95% while the Ca+2-dependent, Mg+2-independent activity is essentially unchanged from control activity and the Mg+2-dependent, Ca+2-independent activity is inhibited approximately 50%. At concentrations greater than 75 microM, trimethyltin significantly inhibits the Ca+2-dependent, Mg+2-independent ATPase activity. Thus, at trimethyltin concentrations of 50-75 microM, preferential inhibition of the Mg+2-dependent, Ca+2-independent and Ca+2 + Mg+2-dependent ATPase activities of neuroblastoma GM 3320 is achieved.

Adenosine Triphosphatases↗

Effects of trimethyltin on repeated acquisition.

The behavioral effects of trimethyltin were studied in male White Carneaux pigeons using the repeated acquisition procedure, which required that the birds acquire a different four-response position sequence from day to day. After rates and patterns of acquisition of new sequences had stabilized, trimethyltin was administered i.m. at three different dosages (1.0, 1.3 and 1.75 mg/kg) to three different groups of birds, and saline was administered to a fourth group. The birds received one injection and then were tested daily for a period of up to 10 weeks. Trimethyltin produced increases in total errors within sessions, as well as decreases in rates of responding. Analysis of the pattern of error elimination within sessions suggested that error elimination did take place after trimethyltin administration in all birds, but that errors frequently were eliminated more slowly than in control birds. Over the 10-week testing period, there was a gradual recovery to control levels of both total errors and the pattern of error elimination within sessions.

Animals↗

Differential effects of triorganotins on calmodulin activity.

In vitro effects of three triorganotins--tributyltin (TBT), triethyltin (TET), and trimethyltin (TMT)--on calmodulin (CaM) activity were studied. Stimulation of Ca2(+)-ATPase of rat brain synaptic membranes and phosphodiesterase (PDE) of bovine brain were assayed as indicators of CaM activity. The rat synaptic membranes were prepared and CaM was depleted by washing with 1 mM EGTA. All the three organotins inhibited the basal as well as CaM-stimulated Ca2(+)-ATPase in a concentration-dependent manner, suggesting their interaction with calcium pump. However, CaM-stimulated Ca2(+)-ATPase was more sensitive than the basal enzyme. The order of potency of the three organotin compounds was TBT greater than TET greater than TMT. The IC50 values of Ca2(+)-ATPase (basal) were 0.63, 35, and approximately 800 microM, respectively, whereas the values for CaM-stimulated Ca2(+)-ATPase were 0.05, 0.8, and 18 microM for TBT, TET, and TMT, respectively. CaM-deficient PDE did not show any sensitivity to these three organotin compounds, while TBT and TET significantly decreased the CaM-stimulated PDE activity. TMT, which was the least effective inhibitor of Ca2+ pump, did not alter PDE activity. Further, the inhibition of CaM-stimulated Ca2(+)-ATPase activity by these organotins could be reversed by excess addition of CaM. These results suggest that the organotins interact with CaM activity, as evidenced by their potent effect on CaM-dependent Ca2(+)-ATPase and PDE activities.

Animals↗

A system for assessing toxicity of chemicals by continuous monitoring of homecage behaviors.

A noninvasive system is described for continuous recording of behaviors in the home cages of rats. Commercially available mesh cages were used so as to conform with housing conditions in most toxicological studies. A minicomputer controlled environmental lighting and recorded eating, drinking, rearing, and horizontal activity. The system's sensitivity was comparable to more complex systems. Validity was demonstrated through manipulation of environmental lighting, food deprivation, and the effects of amphetamine, scopolamine, ethanol, methylscopolamine, triethyltin, and trimethyltin. Advantages over other systems are practicality, economy, the simultaneous analyses of several naturalistic behaviors of individual rats, and the quantification of diurnal rhythms.

Amphetamine↗

Acute trimethyltin limbic-cerebellar syndrome.

An acute limbic-cerebellar syndrome was seen in six industrial workers who inhaled trimethyltin (TMT). Clinical features included hearing loss, disorientation, confabulation, amnesia, aggressiveness, hyperphagia, disturbed sexual behavior, complex partial and tonic-clonic seizures, nystagmus, ataxia, and mild sensory neuropathy. Severity paralleled maximal urinary organotin levels. One patient died and two remained seriously disabled.

Acute Disease↗

Trimethyltin-induced neuronal damage in the rat brain: comparative studies using silver degeneration stains, immunocytochemistry and immunoassay for neuronotypic and gliotypic proteins.

Trimethyltin is a neurotoxicant which produces a distinct pattern of neuronal cell death following peripheral administration of a single dose (8 mg/kg, i.p.) in rats. The cupric-silver degeneration stain was used to produce an atlas documenting the distribution and time course of trimethyltin-induced neuronal damage in adult, male Long-Evans rats. Animals were examined at survival times of 1, 2, 3, 4, 5, 7, 10 and 18 days after intoxication. The earliest degeneration was observed at day 1 in the intermediate and ventral divisions of the lateral septal nucleus, followed by development of degeneration on days 2-4 in neuron populations including the septohippocampal nucleus, septohypothalamic nucleus, anterior olfactory nucleus, bed nucleus of the stria terminalis, endopiriform nucleus, parafascicular nucleus, superior colliculus, interstitial nucleus of the posterior commissure, inferior colliculus, pontine nuclei, raphe nuclei, pars caudalis of the spinal trigeminal nucleus, the caudal aspect of nucleus tractus solitarius, dorsal vagal motor nucleus, granule cells in the dentate gyrus, pyramidal cells in CA fields of the hippocampus, and of neurons in the subiculum, pyriform cortex, entorhinal cortex and neocortex (mainly layer Vb and VI). This was followed by degenerative changes on days 5-7 in other structures, including the amygdaloid nuclei, the ventral posterolateral and ventral posteromedial thalamic nuclei and the periaqueductal gray. The distribution of terminal degeneration from these neurons indicate that specific pools of cells are affected in each structure, and the time course suggests somatofugal degeneration. The trimethyltin damage was also assessed with immunocytochemical visualization of a neuronotypic protein, protein-O-carboxyl methyltransferase and a radioimmunoassay for glial fibrillary acidic protein. Protein-O-carboxyl methyltransferase immunoreactivity was altered in neuronal populations damaged by trimethyltin, but did not appear to be either as sensitive or selective an assay of neuronal damage as the silver stain, especially at short survival times. Glial fibrillary acidic proteins were dramatically elevated 21 days after trimethyltin intoxication, particularly in areas of extensive damage. These studies revealed advantages and problems encountered in the use of each technique in assessing neurotoxic effects, forming a basis for discussion of the relative merits of using a battery of specific molecular probes for neurotoxicity evaluations.

Animals↗

Frequency of sister chromatid exchanges induced by trimethyltin chloride in human peripheral blood lymphocytes as related to age of donors. A brief report.

Two concentrations (0.5 microgram and 1.0 microgram) of trimethyltin chloride were added to lymphocytes of healthy male and female donors of different age groups and cultured at 37 degrees C for 72 h. The range and mean number of sister chromatid exchanges were significantly increased in the treated cells but could not be related to age or sex of the donor.

Adolescent↗

Selective neurochemical and histological lesions in rat hippocampus following chronic trimethyltin exposure.

Trimethyltin exerts a unique and selective pattern of toxicity which may be related to the neurochemical innervation of the hippocampus. Rats were chronically administered trimethyltin and the kinetics of neurotransmitter uptake was assessed in hippocampal synaptosomes. Additional rats were prepared for histological examination. Uptake of the endogenous hippocampal amino acid neurotransmitters glutamic acid and gamma-aminobutyric acid showed dose-dependent alterations. Uptake of norepinephrine was not significantly affected. Histopathological analysis indicated differential neuronal loss within classically defined hippocampal cell fields.

Animals↗

Cellular and molecular effects of trimethyltin and triethyltin: relevance to organotin neurotoxicity.

Many of the neurotoxic aspects of organotin exposure have been described. Organotin exposure culminates in its accumulation in the CNS and PNS. The clinical picture is dominated by neurological disturbances; yet, the primary basis for their neurotoxicity is unknown. Trimethyltin (TMT) is primarily a CNS neurotoxin affecting neurons within the hippocampal pyramidal band and the fascia dentata. Triethyltin (TET) is a neurotoxin that produces a pathological picture dominated by brain and spinal cord edema. The first part of this review summarizes the current understanding of the interaction of TMT and TET with biologically active sites in the induction of neurotoxicity. In the second part, several hypotheses for the differential neurotoxic effects of these organotins and their shortcomings are discussed.

Animals↗

Neuron-specific phosphoproteins as biochemical indicators of neurotoxicity: effects of acute administration of trimethyltin to the adult rat.

The cytoarchitecture of the adult central nervous system is expressed by proteins specific to individual cell types. In this investigation, a subclass of these proteins, the neuron-specific phosphoproteins, was examined after the administration of trimethyltin (TMT), a neurotoxicant which preferentially damages neurons in limbic structures. After acute administration of TMT (0.0-9.0 mg/kg i.v.), effects on neuronal phosphoproteins were examined by three separate techniques: endogenous phosphorylation of total synaptic membrane proteins; radiometric assay of synapsin I, a neuron-specific phosphoprotein associated with synaptic vesicles; and radioimmunoassay of synapsin I and protein III, another synapse specific, synaptic vesicle-localized phosphoprotein. All three procedures gave similar results. TMT caused dose- and time-dependent decreases in hippocampal phosphoproteins. These effects were large in magnitude and were still evident 14 weeks after exposure to TMT. Microdissection of slices of dorsal hippocampus did not reveal significant regional differences in the extent to which TMT affected synapsin I. Phosphoproteins in frontal cortex, unlike those in hippocampus, were not affected by TMT. Our findings are consistent with the neuropathological effects of this compound and suggest that neuron-specific phosphoproteins may be useful biochemical indicators of neurotoxicity.

Animals↗

Electroencephalographic and evoked response correlates of trimethyltin induced neuronal damage in the rat hippocampus.

Trimethyltin produces localized neuronal damage in the rat hippocampus, amygdala and pyriform cortex when given systemically. In the present study the behavioural, electroencephalographic and auditory evoked responses of conscious rats were followed over an 11 day period after oral administration of trimethyltin. An early increase in hippocampal and, to a lesser extent, neocortical evoked response was seen, this preceding the behavioural symptoms. Development of symptoms (hyperactivity, tremor and fear) was accompanied by an increase in the incidence of theta rhythm in the electroencephalogram (EEG). Finally a fall in hippocampal evoked response and theta incidence was seen. It is suggested that a phase of neuronal excitability precedes neuronal damage, and that this is more pronounced in the hippocampus than in areas not developing subsequent neuronal loss.

Animals↗

The effect of trimethyltin on three glutamergic and gabaergic transmitter parameters in vitro: high affinity uptake, release and receptor binding.

The effects of trimethyltin (TMT) on high-affinity uptake, release and sodium-independent binding of glutamic acid and gamma-aminobutyric acid (GABA) were studied in vitro in homogenates of hippocampal tissue. TMT (50 micron) increased the release of glutamic acid from synaptosomes in the resting state (5 mM K+), whereas the release of GABA was only slightly affected. High affinity uptake of glutamate was inhibited by TMT in the same concentration range as release. The uptake of GABA was only affected by TMT-concentrations from 500 micron to 5 mM. The sodium independent binding of both glutamate and GABA, usually assumed to be binding to receptor sites, were inhibited with 50 microM or more TMT in the incubation medium. The results indicate that TMT can interfere with several different events of the neurotransmission process in the central nervous system at concentrations which can be obtained in the brain of rats after a sublethal dose of the compound.

Animals↗

Effect of trimethyltin on hepatic and extra-hepatic non-protein sulfhydryl levels in the mouse.

Administration of trimethyltin (TMT) ip to mice lowered non-protein sulfhydryl (NPSH) levels in a tissue-specific and dose-dependent manner. Incubation of TMT with GSH and mouse hepatic cytosol did not result in conjugation of TMT, as evidenced by the lack of reduction of GSH levels. Additionally, TMT in vivo did not increase oxidized glutathione (GSSG) levels, nor did it alter hepatic ATP content. These results suggest that TMT decreased NPSH levels in vivo by either directly inhibiting GSH synthesis or by inhibiting uptake of precursor amino acids.

Animals↗

Effects of trimethyltin on the immune system of rats.

Treatment with trimethyltin (TMT) induced atrophy of the thymus, spleen and lymph nodes within 2 days, but no changes in the bone marrow were observed. Atrophy of thymus and spleen did not occur in adrenal-ectomized rats treated with TMT. Antibody responses to sheep erythrocytes (SRBC) and proliferative responses of spleen lymphocytes to phytohemagglutinin (PHA), concanavalin A (ConA) and lipopolysaccharides (LPS) were suppressed significantly in treated rats. Delayed hypersensitivity to oxazalone, natural killer (NK) cell activity and the phagocytic activity of peritoneal macrophages (PEM) were not affected significantly.

Animals↗

Septotemporal gradients of trimethyltin-induced hippocampal lesions.

Rats were administered 6 mg/kg trimethyltin (TMT) PO, and sacrificed at various time points (up to 60 days) for pathological evaluation. Studies along the full extent of the septotemporal axis revealed region-specific and cell field-specific damage. Dentate granule cells were most affected at the temporal pole and were only minimally affected at the septal pole. CA3c pyramidal neurons were affected along the full extent of the septotemporal axis. CA3a and CA3b pyramidal cells were most affected in the septal pole, and virtually unaffected in the temporal pole. It is suggested that CA3a and CA3b pyramidal cell damage may be dependent upon functionally intact granule cells.

Animals↗

[The effects of prenatal trimethyltin exposure on development and learning in the rat].

Developmental effects of single prenatal trimethyltin exposure were examined in THA rats. Pregnant rats were injected on gestational day 12 with single dose of trimethyltin chloride (TMT) ip at either 0, 5, or 7 mg/kg. Significant differences between treated and control offspring rats could not be observed in terms of body weight, pinna detachment, incisor eruption, eye opening, surface righting, cliff avoidance, pivoting, negative geotaxis and auditory startle. Spontaneous motor activity and open field behavior in the rats were also not affected by TMT. In Sidman avoidance test, however, the avoidance rate of the treated offspring rats was lower when compared to that of the controls. These results suggest that prenatal TMT administration disrupts learning acquisition.

Animals↗