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T cells reactive with a small synthetic peptide of the acetylcholine receptor can provide help for a clonotypically heterogeneous antibody response and subsequently impaired muscle function.

The influence of T cell specificity was evaluated with regard to its role in the antibody response against the acetylcholine receptor (AChR) and resulting AChR-dependent muscle dysfunction. The reactivity of immune Th cells was restricted to a small region of the AChR alpha-subunit (amino acid residues 100-116) reported to be highly immunogenic. T cells primed to this peptide were found to demonstrate significant proliferation when challenged in vitro with either the homologous peptide or the intact AChR. Adoptive transfer of the peptide-immune T cells into immunologically naive recipient rats followed by AChR challenge resulted in the production of anti-AChR antibodies very similar to those produced under the regulation of T cells immune to the entire intact AChR with regard to overall clonotypic heterogeneity (measured by IEF) and their ability to interfere with AChR-dependent muscle contraction. Interestingly, when the threonine at position 106 was substituted with a proline, the resulting peptide continued to be equally, if not exceedingly, capable of stimulating T cell-proliferative responses, but was found to be ineffective at stimulating the levels of anti-AChR antibodies necessary for producing neuromuscular dysfunction.

Animals↗

A review of NMDA receptors and the phencyclidine model of schizophrenia.

Current models of drug-induced psychosis insufficiently describe the symptoms of schizophrenia. Phencyclidine-induced psychosis is a model that more completely reflects the pathophysiology of the disease. By decreasing glutamatergic neurotransmission, phencyclidine decreases gamma-aminobutyric acid release from the nucleus accumbens, striatum, and hippocampus (manifested by MK-801); may inhibit tonic release of dopamine from the nucleus accumbens and striatum, resulting in increased dopamine phasic reactivity; and decreases long-term potentiation. Glutamatergic system dysfunction may be involved, but pharmacologic manipulation has not revealed a clear mechanism of this dysfunction.

Brain Chemistry↗

Evidence for decreased DARPP-32 in the prefrontal cortex of patients with schizophrenia.

BACKGROUND: The neurotransmitters dopamine and glutamate have been implicated in the prefrontal dysfunction associated with schizophrenic illness. Studies suggest that the D1 subclass of dopamine receptor and the N-methyl-D-aspartate subclass of glutamate receptor are involved in this prefrontal dysfunction. These 2 receptors regulate, in opposing directions, the amount of phosphorylated activated DARPP-32, a potent inhibitor of protein phosphatase 1 that modulates the activity of several classes of receptors and ion channels. Thus, DARPP-32 occupies a key regulatory position, and may play an important role in the pathophysiological changes in dopamine and glutamate function reported in patients with schizophrenia. METHODS: The amounts of DARPP-32, synapsin I, and the alpha subunit of calcium/calmodulin-dependent protein kinase II were measured by immunoblotting in postmortem samples from 14 schizophrenic subjects and their age-, gender-, and autolysis time-matched control subjects. Possible confounding influences of neuroleptic treatment were analyzed by comparing subjects with Alzheimer disease who were and were not treated with neuroleptic agents. RESULTS: DARPP-32 was significantly reduced in the dorsolateral prefrontal cortex in more schizophrenic subjects relative to matched controls. The ratios of 2 other synaptic phosphoproteins, synapsin I and the alpha subunit of calcium/calmodulin-dependent protein kinase II, did not differ between schizophrenic and control subjects, nor between subjects with Alzheimer disease who were and were not treated with neuroleptic agents. CONCLUSIONS: Our findings are consistent with a selective reduction in DARPP-32 levels in schizophrenic subjects. This may be involved in the prefrontal dysfunction associated with schizophrenia.

Adult↗

Microtubule disruption, not calpain-dependent loss of MAP2, contributes to enduring NMDA-induced dendritic dysfunction in acute hippocampal slices.

Brief exposure to excitotoxic agonists can result in substantial loss of the microtubule-associated protein MAP2 from neuronal dendrites, and accumulation in somata. A possible mechanism underling MAP2 loss is the activation of the calcium-dependent protease calpain by excessive dendritic Ca2+-loading. The present study examined mechanisms of MAP2 redistribution and loss of synaptic efficacy in the CA1 region of acutely prepared hippocampal slices. Brief NMDA exposure resulted in persistent and profound inhibition of postsynaptic potentials, and loss of MAP2 from dendritic compartments. When Ca2+ was removed during NMDA exposure, synaptic potentials recovered significantly during NMDA washout, and MAP2 loss was reduced. Calpain inhibition with MDL 28,170 (20 microM) did not prevent the loss of synaptic potentials, nor did it attenuate the initial aggregation of MAP2 into irregular dendritic swellings. However MDL 28,170 did reduce subsequent MAP2 loss from abnormal dendritic aggregates. Pre-exposure of slices to taxol (100 nM) effectively prevented microtubule depolymerization following NMDA exposure, as well as MAP2 disorganization and loss from apical dendrites. Slices treated with taxol also exhibited substantial recovery of synaptic potentials after transient NMDA stimulus. These results demonstrate a close correspondence between the maintained localization of MAP2 in apical dendrites and the recovery of postsynaptic potentials following transient NMDA exposure. In addition, it appears that rather than underlying the initial disruption of microtubule structure via MAP2 proteolysis, calpain activity instead may contribute to the degradation of irregularly aggregated MAP2 observed following microtubule depolymerization.

Animals↗

Rescuing neurons from trans-synaptic degeneration after brain damage: helpful, harmful, or neutral in recovery of function?

Certain instances of neuronal degeneration secondary to brain damage might be functionally beneficial, and steps taken to protect against such degeneration may adversely affect behavioural outcome. After unilateral damage to the intrinsic neurons of the striatum, which includes GABAergic striatonigral projections, delayed trans-synaptic degeneration occurs in the ipsilateral substantia nigra pars reticulata (SNr). This degeneration was prevented by a 2-week regimen of muscimol delivered intraventricularly via osmotic minipumps. Muscimol is a direct-acting GABA agonist that presumably substituted for the absent GABA at the interface between the degenerating striatonigral GABAergic terminals and the GABAergic receptors located on SNr neurons. Sensorimotor asymmetry tests sensitive to unilateral striatal damage were carried out for 4 weeks to determine the functional consequences of the sparing of SNr neurons. Recovery of function was not improved. Instead, tactile extinction and hemiplegia were exaggerated in the contralateral forelimb. Other impairments were unaffected by the muscimol. The experiment was repeated using diazepam, rather than muscimol, to address the possibility that the disruptive effects of muscimol might reflect a more general disruptive influence on recovery processes. Diazepam, which has been shown in our lab to disrupt recovery of function after cortical lesions and to potentiate lesion-associated atrophy in remote subcortical structures, is an indirect-acting GABAergic agonist that requires GABA for its mechanism of action. Because GABAergic terminals at the SNr were destroyed, diazepam (as expected) failed to prevent SNr degeneration. Although diazepam presumably enhanced GABAergic synaptic activity in other brain regions, diazepam had no significant effect on postoperative behavioural function. Apparently, in the first experiment, the prevention of SNr degeneration per se was instrumental in the detrimental effects of muscimol. The rescued SNr neurons may have contributed to dysfunction because they lacked inhibitory GABAergic control. Transsynaptic degeneration secondary to brain damage was discussed as it might relate to release phenomena and their treatment by surgery or transmitter blocking agents in the clinical literature.

Animals↗

Passive transfer of autoimmune autonomic neuropathy to mice.

Autoimmune autonomic neuropathy (AAN) is an acquired, often severe, form of dysautonomia. Many patients with AAN have serum antibodies specific for the neuronal ganglionic nicotinic acetylcholine receptor (AChR). Rabbits immunized with a fusion protein corresponding to the N-terminal extracellular domain of the ganglionic AChR alpha3 subunit produce ganglionic AChR antibodies and develop signs of experimental AAN (EAAN) that recapitulate the cardinal autonomic features of AAN in man. We now demonstrate that EAAN is an antibody-mediated disorder by documenting sympathetic, parasympathetic, and enteric autonomic dysfunction in mice injected with rabbit IgG containing ganglionic AChR antibodies. Recipient mice develop transient gastrointestinal dysmotility, urinary retention, dilated pupils, reduced heart rate variability, and impaired catecholamine response to stress. The autonomic signs are associated with a reversible failure of nicotinic cholinergic synaptic transmission in superior mesenteric ganglia. Mice injected with IgG from two patients with AAN (of three tested) demonstrated a milder phenotype with evidence of urinary retention and gastrointestinal dysmotility. The demonstration that ganglionic AChR-specific IgG causes impaired autonomic synaptic transmission and autonomic failure in mice implicates an antibody-mediated pathogenesis for AAN. The antibody effect is potentially reversible, justifying early use of immunomodulatory therapy directed at lowering IgG levels and abrogating IgG production in patients with AAN.

Animals↗

Developmental models of brain dysfunctions induced by targeted cellular ablations with methylazoxymethanol.

Abnormal brain development represents one of the major causes of neurological disorders in humans, and determining the factors responsible for generating specific brain malformations represents a formidable task for developmental neurobiology. The knowledge of the precise neurogenetic time table and the use of toxins, like methylazoxymethanol, able to interfere with neuroepithelial cells entering their last mitotic cycle, have allowed for targeted neuronal ablations in specific brain areas of the central nervous system (CNS) when administered at different gestational or postnatal days in various animal species. Of particular relevance are the studies in which ablations of neuronal populations of cortex, hippocampus, and cerebellum have been made. The results obtained show that these early ablations induce a number of neuroanatomic, neurochemical, and electrophysiological changes that give us the possibility to unravel the biochemical strategies utilized by surviving neurons to adapt to the perturbated environment. Most striking are the findings that target deprivation does not affect the survival of afferent neurons in the CNS (except for neurons of the lateral geniculate nucleus), in sharp contrast to the notion of target dependence for peripheral nervous system neurons. Animals showing selective ablations in the Ammon's horn of the hippocampus allow us to understand the complex biochemical pathways leading to changes in activity-dependent synaptic plasticity, and the data underscore the fundamental role of diverse Ca(2+)-dependent protein kinases, and their substrates, in modulating pre- and postsynaptic events during induction and maintenance of long-term potentiation (LTP). Because LTP represents a useful model to study molecular substrates of learning and memory, this animal model might be of relevance in understanding cognitive brain dysfunctions.

Animals↗

Visualizing synaptic disruptions in the release and regulation of dopamine hotspots in Huntington's Disease.

Dopamine neuromodulation is a critical process that facilitates learning, motivation, and motor control. Disruption of these processes has been implicated in several neurodegenerative disorders including Huntington's Disease (HD). While dopaminergic signaling is a therapeutic target for treating physical and psychiatric HD symptoms, the mechanism by which dopaminergic dysfunction occurs during HD is unknown. New tools for the visualization of dopamine dynamics at the spatiotemporal resolution of neuromodulator release (ms) and dopaminergic boutons (µm) provide a richer understanding of how dopamine signaling is disrupted in HD. Here we employ near-infrared fluorescent catecholamine nanosensors (nIRCats) to image dopamine release within the striatum of R6/2 Huntington's Disease model mice of either sex. We find that dorsal striatal dopamine release decreases with progressive degeneration and that these deficits are primarily driven by a decrease in the number of nIRCat imaged dopamine release sites, termed dopamine hotspots, combined with decreased release fidelity. Using nIRCat's high spatial resolution, we track individual dopamine hotspots over repeated stimulations and pharmacological applications to measure dopamine release fidelity from individual sites. Compellingly, we found that D2-receptor (D2R) antagonist sulpiride drives increased fidelity of dopamine hotspot activity in wild type striatum but not in late-disease HD striatum, suggesting that D2R regulation of dopamine release is compromised in late HD. These findings, enabled by nIRCats, provide more detailed insights into how dopamine release is disrupted and dysregulated during Huntington's Disease.Significance statement Huntington's Disease (HD) is a neurodegenerative disorder with no cure. Dopamine signaling is known to deteriorate in HD but has not been studied at the level of individual release sites. Here, we image dopamine release from individual dopamine release sites in R6/2 HD mouse brain slices containing the striatum with novel dopamine nanosensors. We find that dopamine release site number and release fidelity are decreased in late HD. Furthermore, we demonstrate that D2-receptor signaling may be altered in late disease R6/2 HD mice, and that these disruptions are likely to drive decreased dopamine release fidelity over multiple stimulations. These findings suggest dopaminergic neurons projecting to the striatum as a potential therapeutic target for HD treatment to complement more commonly targeted medium spiny neurons.

Journal Article↗

Subclinical cervico-spino-bulbar effects of lead: a study of short-latency somatosensory evoked potentials in workers exposed to lead, zinc, and copper.

Subclinical central and peripheral nervous system dysfunction among lead-exposed workers was studied by measuring short-latency somatosensory evoked potentials (SSEP) and maximal motor and sensory nerve conduction velocities (MCV and SCV) following stimulation of the median nerve at the wrist. The examinations were conducted in 20 gun-metal foundry workers exposed to lead, zinc, copper, and tin, with blood lead (BPb) concentrations of 16 to 64 micrograms/dl (mean, 42 micrograms/dl). The interpeak latency of SSEP in the cervico-spino-bulbar region [N9(Erb)-N13 latency] was significantly prolonged, and the MCV and SCV in the forearm were significantly slowed. Multiple regression analysis revealed that the yield of urinary lead following challenge with calcium disodium ethylenediamine tetraacetate (CaEDTA) and packed red blood cell volume were the major factors associated with the prolongation of SSEP latency in the cervico-spino-bulbar region. Similarly, the interpeak latency in the upper central nervous system (N13-N20 latency) was inversely related to the zinc concentration in erythrocytes; latency up to the Erb's point [N9(Erb) latency], which reflects conduction time in a long pathway of the sensory median nerve, was inversely related to urinary zinc level; the MCV and SCV in the palm were positively related to erythrocyte zinc concentration and plasma copper concentration, respectively. These findings suggest that the subclinical neurophysiological effects of lead occur not only in peripheral nerves but also in the central nervous system. It appears that zinc antagonizes the central and peripheral neurologic dysfunction caused by lead; similarly, copper antagonizes the peripheral sensory nerve dysfunction.

Adult↗

Pupillary dysfunction in myasthenia gravis.

The constriction-dilation cycles of pupils exposed to a stationary, discrete slit-lamp beam were significantly prolonged in 25 myasthenic patients (1,060.4 +/- 45.8 msec) undergoing therapy with steroids, anticholinesterases, or both, compared to normal controls (801.9 +/- 8.6 msec) or subjects receiving steroids for nonneurological disease (860.9 +/- 14.9 msec). The duration of myasthenia correlated with the slowing of the cycle time. Myasthenia gravis may affect ectodermally derived smooth muscle or the autonomic neuromuscular junction or both, and not be restricted to the well-demonstrated alterations of neuromuscular junction in striated muscle of mesodermal origin. Alternatively, prolonged pupillary cycles could be attributed to dysfunction of central pathways of the pupillary light reflex.

Adolescent↗

Potential therapeutic targets in the rapidly expanding field of purinergic signalling.

The concept of a purinergic signalling system, using purine nucleotides and nucleosides as extracellular messengers, was first proposed over 30 years ago. After a brief historical review and update of purinoceptor subtypes, this article focuses on the diverse physiological roles of adenosine triphosphate, adenosine diphosphate, uridine triphosphate and adenosine. These molecules mediate short-term (acute) signalling functions in neurotransmission, secretion and vasodilation, and long-term (chronic) signalling functions in development, regeneration, proliferation and cell death. Plasticity of purinoceptor expression in pathological conditions is frequently observed, including an increase in the purinergic component of parasympathetic nervous control of the human bladder in interstitial cystitis and outflow obstruction, and in sympathetic cotransmitter control of blood vessels in hypertensive rats. The antithrombotic action of clopidogrel (Plavix), a P2Y12 receptor antagonist, has been shown to be particularly promising in the prevention of recurrent strokes and heart attacks in recent clinical trials (CAPRIE and CURE). The role of P2X3 receptors in nociception and a new hypothesis concerning purinergic mechanosensory transduction in visceral pain will be considered, as will the therapeutic potential of purinergic agonists or antagonists for the treatment of supraventricular tachycardia, cancer, dry eye, bladder hyperactivity, erectile dysfunction, osteoporosis, diabetes, gut motility and vascular disorders.

Adenine Nucleotides↗

[Semiology and etiology of anosmia: apropos of 306 patients].

Chemosensory dysfunction is relatively common. This article describes a series of 306 patients who presented with anosmia. We divided olfactory disorders into those associated with interruption of the transport of stimulus and those associated with damage to either peripheral or central nervous system structures. Nasal and paranasal sinus disease (transport interruption) was found to be causative in 67% of patients presenting with anosmia. These patients are generally 45 years old, the loss of olfaction is progressive and associated with additional nasal symptoms. Upper respiratory infection was found to be causative in 18% of patients. They are generally older, with a mean age of 58 years and are predominantly female (78%). The loss of smell is sudden and anosmia is often accompanied by troublesome parosmias (50%). CT-scan is necessary for the evaluation of a smell dysfunction.

Adult↗

Changed responsiveness of the detrusor in rabbits with alloxan induced hyperglycemia: possible role of 5-hydroxytryptamine for diabetic bladder dysfunction.

PURPOSE: We assessed whether the responsiveness of the detrusor is changed in rabbits with alloxan induced hyperglycemia. MATERIALS AND METHODS: Hyperglycemia was induced by a bolus intravenous injection of alloxan (60 mg./kg.) in Japanese White male rabbits. At 16 weeks after alloxan detrusor muscle strips prepared from age matched normoglycemic and hyperglycemic rabbits were mounted in organ chambers. Contractile responses to KCl, carbachol, adenosine triphosphate, 5-hydroxytryptamine and electrical field stimulation were compared in the 2 groups. The effect of sarpogrelate as a selective antagonist of 5-hydroxytryptamine 2A receptor on the contractile response to 5-hydroxytryptamine was also compared. RESULTS: The current experiments demonstrated that hyperglycemia caused significant decreases in neurogenic and carbachol induced contractions accompanied by unchanged adenosine triphosphate and KCl induced contractions. Neurogenic bladder contraction in the hyperglycemic rabbit was significantly potentiated by exogenously applied 5-hydroxytryptamine. Potentiation was detectable even after the desensitization of purinoceptors but undetectable in the presence of atropine. Hyperglycemia resulted in enhancement of the 5-hydroxytryptamine induced bladder contraction. Sarpogrelate tended to normalize the enhanced contraction. CONCLUSIONS: The decrease in neurogenic bladder contraction possibly accompanied by the decreased density of muscarinic receptors, the potentiation of neurogenic bladder contraction with 5-hydroxytryptamine probably due to facilitated cholinergic transmission and the enhanced contractility to 5-hydroxytryptamine would be at least in part involved in bladder dysfunction associated with hyperglycemia.

Animals↗

Glutamate uptake block triggers deadly rhythmic bursting of neonatal rat hypoglossal motoneurons.

In the brain the extracellular concentration of glutamate is controlled by glial transporters that restrict the neurotransmitter action to synaptic sites and avoid excitotoxicity. Impaired transport of glutamate occurs in many cases of amyotrophic lateral sclerosis, a devastating motoneuron disease. Motoneurons of the brainstem nucleus hypoglossus are among the most vulnerable, giving early symptoms like slurred speech and dysphagia. However, the direct consequences of extracellular glutamate build-up, due to uptake block, on synaptic transmission and survival of hypoglossal motoneurons remain unclear and have been studied using the neonatal rat brainstem slice preparation as a model. Patch clamp recording from hypoglossal motoneurons showed that, in about one-third of these cells, inhibition of glutamate transport with the selective blocker dl-threo-beta-benzyloxyaspartate (TBOA; 50 mum) unexpectedly led to the emergence of rhythmic bursting consisting of inward currents of long duration with superimposed fast oscillations and synaptic events. Synaptic inhibition block facilitated bursting. Bursts had a reversal potential near 0 mV, and were blocked by tetrodotoxin, the gap junction blocker carbenoxolone, or antagonists of AMPA, NMDA or mGluR1 glutamate receptors. Intracellular Ca(2+) imaging showed bursts as synchronous discharges among motoneurons. Synergy of activation of distinct classes of glutamate receptor plus gap junctions were therefore essential for bursting. Ablating the lateral reticular formation preserved bursting, suggesting independence from propagated network activity within the brainstem. TBOA significantly increased the number of dead motoneurons, an effect prevented by the same agents that suppressed bursting. Bursting thus represents a novel hallmark of motoneuron dysfunction triggered by glutamate uptake block.

Action Potentials↗

Metabotropic glutamate receptor protein expression in the prefrontal cortex and striatum in schizophrenia.

We investigated the expression of metabotropic glutamate receptors (mGluR) in the prefrontal cortex (PFC) and striatum in schizophrenia. mGluRs modulate the release and reuptake of synaptic glutamate and mediate some molecular correlates of neuroplasticity, including long-term potentiation. The mGluRs are expressed widely in the PFC and striatum, regions often implicated in the pathophysiology of schizophrenia. Thus, we hypothesized that abnormal expression of mGluRs might contribute to glutamatergic dysfunction observed in the PFC and striatum in schizophrenia. Accordingly, we measured the expression of metabotropic glutamate receptors (mGluRs) in Brodmann areas 9, 11, 32, and 46 in the prefrontal cortex (PFC) and the caudate, putamen, and nucleus accumbens in schizophrenia (16 cases, 9 controls) by Western blot analysis. We found an increase in the expression of mGluR1a and mGluR2/3 immunoreactivity in the PFC in schizophrenia, while no changes in the expression of mGluR4a or mGluR5 were detected in this region. In the striatum we found no changes in the expression of any of the mGluRs studied. These results suggest that alterations of mGluR1a and mGluR2/3 expression in the PFC may contribute to the pathophysiology of schizophrenia, and support targeting these receptors for the generation of novel treatment modalities for this disabling illness.

Aged↗

Schizophrenia: genes and environment.

The historical and genetic foundations of our current understanding of schizophrenia are reviewed, as are the present and future directions for research. Genetic epidemiological investigations, including family, twin, and adoption studies have confirmed the contributions of genetic and environmental determinants of schizophrenia. For example, identical twins show average concordance rates of only 50%; rates of 100% would be expected on the basis of genetic equivalence alone. Genetic factors may cause errors in brain development and synaptic connections. A broad range of environmental components may further damage the brain. Biological components may include pregnancy and delivery complications, such as intrauterine fetal hypoxia, infections, and malnutrition. Primarily nonbiological components may include psychosocial stressors, such as residence in an urban area and dysfunctional family communication. It is likely that the environmental factors interact with the genetic liability in a negative manner to produce disorders in the schizophrenic spectrum. Genetic and environmental components of the disorder are examined, as well as their interactions in producing either neurodevelopmental syndromes or schizophrenia itself. The implication of these findings for prevention and treatment are considered.

Brain↗

Expression of the glial glutamate transporter EAAT2 in the human CNS: an immunohistochemical study.

Glutamate transporters play an essential role in terminating the excitatory glutamatergic signal at post-synaptic receptors and in protecting neurones from excitotoxic effects, as well as replenishing the neurotransmitter supply at glutamatergic synapses. The distribution and density of glutamate transporters may be important determinants of vulnerability to glutamate-mediated injury. There is emerging evidence that glutamate transporter dysfunction may be present in motor neurone disease (MND). In this study, a monoclonal antibody, suitable for immunohistochemistry (IHC) in human post-mortem tissue, was produced to the human astrocytic glutamate transporter EAAT2 (excitatory amino acid transporter 2). Western blotting of homogenates of human cortical tissue with the EAAT2 antibody produced a discrete band at 66 kDa. Detailed IHC analysis of the expression of the EAAT2 protein in the human CNS was undertaken. EAAT2 was exclusively localised to astrocytes, with preferential expression in the caudate nucleus, nucleus basalis of Meynert, spinal ventral horn, cerebral cortex and hippocampus, but with lower levels of expression throughout many other CNS regions. Motor neurone groups vulnerable to neurodegeneration in MND appeared distinctive in being surrounded by extensive, coarse, strongly immunoreactive perisomatic glial profiles. Motor neurone groups which tend to be spared in MND, such as those present in the oculomotor nucleus, showed a lower expression of EAAT2, with fewer perisomatic profiles. The EAAT2 antibody will provide a useful tool for increasing our understanding of the role of EAAT2 in excitatory neurotransmission in health and disease states.

ATP-Binding Cassette Transporters↗

Immunohistochemical localization of calcium-binding proteins in the brainstem vestibular nuclei of the jaundiced Gunn rat.

Vestibular gaze and postural abnormalities are major sequelae of neonatal hyperbilirubinemia. The sites and cellular effects of bilirubin toxicity in the brainstem vestibular pathway are not easily detected. Since altered intracellular calcium homeostasis may play a role in neuronal cell death, we hypothesized that altered expression of calcium-binding proteins may occur in brainstem vestibular nuclei of the classic animal model of bilirubin neurotoxicity. The expression of the calcium-binding proteins calbindin-D28k and parvalbumin in the brainstem vestibular pathways and cerebellum of homozygous recessive jaundiced (jj) Gunn rats was examined by light microscopy and immunohistochemistry at 18 days postnatally and compared to the findings obtained from age-matched non-jaundiced heterozygous (Nj) littermate controls. Jaundiced animals exhibited decreased parvalbumin immunoreactivity specifically in synaptic inputs to superior, medial, and inferior vestibular nuclei, and to oculomotor and trochlear nuclei, whereas the neurons retained their normal immunoreactivity. Jaundiced animals also demonstrated a decrease in calbindin expression in the lateral vestibular nuclei and a paucity of calbindin-immunoreactive synaptic endings on the somata of Deiters' neurons. The involved regions are related to the control of the vestibulo-ocular and vestibulospinal reflexes. Decreased expression of calcium-binding proteins in brainstem vestibular neurons may relate to the vestibulo-ocular and vestibulospinal dysfunction seen with clinical kernicterus, and may provide a sensitive new way to assess bilirubin toxicity in the vestibular system.

Animals↗