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Biomedical subjects

J O McNamara

Publications and source records attributed to J O McNamara.

At least 19 recordsLinked to original sources

Impairment of synaptic vesicle clustering and of synaptic transmission, and increased seizure propensity, in synapsin I-deficient mice.

Synapsin I has been proposed to be involved in the modulation of neurotransmitter release by controlling the availability of synaptic vesicles for exocytosis. To further understand the role of synapsin I in the function of adult nerve terminals, we studied synapsin I-deficient mice generated by homologous recombination. The organization of synaptic vesicles at presynaptic terminals of synapsin I-deficient mice was markedly altered: densely packed vesicles were only present in a narrow rim at active zones, whereas the majority of vesicles were dispersed throughout the terminal area. This was in contrast to the organized vesicle clusters present in terminals of wild-type animals. Release of glutamate from nerve endings, induced by K+,4-aminopyridine, or a Ca2+ ionophore, was markedly decreased in synapsin I mutant mice. The recovery of synaptic transmission after depletion of neurotransmitter by high-frequency stimulation was greatly delayed. Finally, synapsin I-deficient mice exhibited a strikingly increased response to electrical stimulation, as measured by electrographic and behavioral seizures. These results provide strong support for the hypothesis that synapsin I plays a key role in the regulation of nerve terminal function in mature synapses.

Animals

Limbic epilepsy in transgenic mice carrying a Ca2+/calmodulin-dependent kinase II alpha-subunit mutation.

Multifunctional Ca2+/calmodulin-dependent protein kinase II (CaMK) phosphorylates proteins pivotally involved in diverse neuronal processes and thereby coordinates cellular responses to external stimuli that regulate intracellular Ca2+ [Hanson, P. I. & Schulman, H. (1992) Annu. Rev. Biochem. 61, 559-664]. Despite extensive study, the impact of this enzyme on control of the excitability of neuron populations in the mammalian nervous system in situ is unknown. To address this question, we studied transgenic mice carrying a null mutation (-/-) for the alpha subunit of CaMK. In contrast to wild-type littermates, null mutants exhibit profound hyperexcitability, evident in epileptic seizures involving limbic structures including the hippocampus. No evidence of increased excitability was detected in mice carrying null mutations of the gamma isoform of protein kinase C, underscoring the specificity of the effect of CaMK. CaMK plays a powerful and previously underappreciated role in control of neuronal excitability in the mammalian nervous system. These insights have important implications for analyses of mechanisms of epilepsy and, perhaps, learning and memory.

Animals

Clinical relevance of defects in signalling pathways.

This review discusses seven diseases of the human nervous system that have been linked to defects in signal transduction. Recent molecular genetic analyses of rare monogenic disorders have led to the identification of mutant genes in six of the seven diseases. The molecules implicated are an enzyme (superoxide dismutase) and ion channels gated by either voltage or ligands.

Humans

N-methyl-D-aspartate receptors activate transcription of c-fos and NGFI-A by distinct phospholipase A2-requiring intracellular signaling pathways.

Activation of N-methyl-D-aspartate (NMDA) receptors is required for induction of some lasting changes in nervous system structure and function. The cellular mechanisms involved in transducing receptor stimulation into long-lasting changes in cellular activity are unknown. Immediate-early genes (IEGs) have been implicated in the conversion of short term stimuli to long term changes in cellular phenotype, by regulation of gene expression. Activation of NMDA receptors on dentate gyrus neurons triggers the transcriptional activation of several IEGs. To determine whether the same intracellular pathways transduce the signal from this ligand-gated ion channel to the nucleus, we compared NMDA induction of two IEGs. NMDA was sufficient to produce a striking increase in both c-fos and NGFI-A mRNAs in dentate granule neurons, in a calcium-dependent manner. The induction of both IEGs was blocked by structurally distinct inhibitors of phospholipase A2, an enzyme that catalyzes phospholipid degradation and formation of arachidonic acid. Arachidonic acid itself is catalyzed to biologically active metabolites by multiple enzymes, including cyclooxygenase and lipoxygenase. Selective inhibitors of cyclooxygenase attenuated NMDA induction of c-fos but not NGFI-A. Conversely, structurally distinct inhibitors of lipoxygenase blocked NMDA induction of NGFI-A but not c-fos. The signaling pathways linking NMDA receptors to the transcriptional activation of c-fos and NGFI-A are related but distinct. We suggest that phospholipase A2 and the arachidonic acid cascade play a pivotal role in NMDA receptor regulation of gene expression.

Animals

Differences in the anatomic distribution of immediate-early gene expression in amygdala and angular bundle kindling development.

Kindling is a model in which fleeting changes of neuronal activity produce a lifelong modification of neuronal structure and function in the mature nervous system. Immediate-early genes (IEGs) such as c-fos have been implicated as a causal link in the chain of molecular events coupling fleeting pathologic activity to lasting hyperexcitability. Identification of the brain structures exhibiting IEG expression during the evolution of kindling is necessary to guide investigations of the phenotypic consequences. We used in situ hybridization histochemistry to identify the structures exhibiting expression of multiple IEGs during the evolution of amygdala kindling and compared this to the pattern following angular bundle kindling. The principal findings included that: (1) generalized limbic and clonic motor (class 5) kindled seizures evoked by stimulation of one amygdala induced the expression of IEGs in a small subset of limbic structures with remarkable symmetry between the two hemispheres; (2) the anatomic extent of seizure-evoked expression of c-fos mRNA expanded progressively following focal limbic and motor (classes 0-3) seizures during the development of amygdala kindling; c-fos mRNA was detected first ipsilaterally in AM, ACO, and PC and with higher-class seizures in hippocampal formation and homologous structures contralaterally, and (3) class 5 seizures evoked by stimulation of two different sites in the limbic system (amygdala or angular bundle) induced IEG expression in distinct but partially overlapping anatomic structures. We propose that synaptic activation of glutamate receptors contributes to the expression of these diverse IEGs throughout the forebrain. The findings provide a constellation of anatomic structures in which to investigate the structural and functional consequences of IEG expression.

Amygdala

Autoantibodies to glutamate receptor GluR3 in Rasmussen's encephalitis.

Rasmussen's encephalitis is a progressive childhood disease of unknown cause characterized by severe epilepsy, hemiplegia, dementia, and inflammation of the brain. During efforts to raise antibodies to recombinant glutamate receptors (GluRs), behaviors typical of seizures and histopathologic features mimicking Rasmussen's encephalitis were found in two rabbits immunized with GluR3 protein. A correlation was found between the presence of Rasmussen's encephalitis and serum antibodies to GluR3 detected by protein immunoblot analysis and by immunoreactivity to transfected cells expressing GluR3. Repeated plasma exchanges in one seriously ill child transiently reduced serum titers of GluR3 antibodies, decreased seizure frequency, and improved neurologic function. Thus, GluR3 is an autoantigen in Rasmussen's encephalitis, and an autoimmune process may underlie this disease.

Animals

A physical map across chromosome 11q22-q23 containing the major locus for ataxia telangiectasia.

We have constructed a long-range physical map for 12 markers, including genes for GRIA4, IL1BC, and ACAT, across 9 Mb of chromosome 11q22-q23 in the region of the major locus for ataxia-telangiectasia (A-T). The markers fall into proximal and distal groups with respect to the centromere. We have linked the proximal and distal groups by hybridization to a 2.7-Mb NotI fragment and a 4.6-Mb MluI fragment. The following locus order was obtained: centromere-CJ52.75-J12.1C2-Y11B11R-IL1BC-+ ++hbcDNA-GRIA4-CJ52.3-Y11B29L-ACAT- CJ52.193-J12.8-Y11B06R-telomere. We show that hbcDNA/GRIA4 and CJ52.3 are very closely linked to each end, respectively, of the 2.7-Mb NotI fragment, thereby fixing the position of the complete contig. Our results indicate that the gene for A-T is flanked by the markers GRIA4 and J12.8, which are no more than 3 Mb apart, on a 4.6-Mb MluI fragment. The physical map allows rapid positioning of markers, and this will facilitate the construction of a YAC contig across the region.

Ataxia Telangiectasia

Kindling reduces sensitivity of CA3 hippocampal pyramidal cells to competitive NMDA receptor antagonists.

Kindling is a form of experimental epilepsy in which periodic electrical stimulation of a brain pathway induces a permanently hyperexcitable state. A previous study demonstrated that kindling enhances the sensitivity of hippocampal CA3 pyramidal cells to NMDA (N-methyl-D-aspartate), consistent with a greater expression of NMDA receptors. We have tested the possibility that kindling also changes the sensitivity of these neurons to competitive NMDA receptor antagonists. When depolarizing responses to NMDA were studied with a grease-gap preparation 1-5 months after the last evoked seizure, higher concentrations of competitive antagonist were required to reduce response amplitudes. Schild analysis yielded higher KD values for all three antagonists tested. This finding suggests that kindling provokes the expression by CA3 pyramidal cells of NMDA receptors with reduced affinity for competitive antagonists.

Action Potentials

Kindling induces the long-lasting expression of a novel population of NMDA receptors in hippocampal region CA3.

Kindling refers to a phenomenon in which repeated application of initially subconvulsive electrical stimulations produces limbic and clonic motor seizures of progressively increasing severity. Once established, the increased excitability is lifelong. Enhanced function of synapses using the NMDA subtype of glutamate receptor could contribute to the expression of the increased excitability. We previously found that CA3 pyramidal cells of hippocampus of kindled animals exhibit a selective and long-lasting (1 month) increased sensitivity to NMDA-evoked depolarization. The goal of this study was to develop a molecular explanation of the enhanced sensitivity to NMDA. We used radioligand binding studies of membranes isolated from microdissected regions of hippocampus including fascia dentata, CA3, and CA1. We also used quantitative in situ hybridization with subtype-specific riboprobes or oligonucleotides to determine whether increased expression of one or more of the genes encoding NMDA receptors was present in hippocampal granule and pyramidal cells of kindled animals. When studied 28 d after the last evoked seizure, we found that kindling induced a 2.8-fold increase in the number of binding sites for the competitive NMDA receptor antagonist 3-[(+/-)-2-(carboxypiperazine-4-yl)][1,2-3H-]propyl-1-phosphonic acid (3H-CPP). This increase was confined to region CA3 within the hippocampus. Similar, though much smaller, changes were detected 24 hr after the last evoked seizure. Surprisingly, no changes in the binding of another competitive NMDA receptor antagonist, cis-4-(phosphonomethyl)-2-3H-piperidinecarboxylate (3H-CGS-19755), were detected at either time point in any hippocampal region. Transcript levels of the NMDA receptor genes NMDAR1, NR2A, NR2B, NR2C, and NR2D and a glutamate-binding protein (GBP) were not altered by kindling. These findings demonstrate that kindling induces the expression of an NMDA receptor that is novel in that it is recognized by 3H-CPP but not by 3H-CGS-19755. The molecular basis of this novel NMDA receptor is not determined by differential expression of mRNA transcripts of known NMDA receptor genes. The direction, time course, and location of the kindling-induced increase in 3H-CPP binding suggest that this novel receptor may underlie the increased sensitivity of CA3 neurons to NMDA observed in kindled animals.

Animals

Chromosomal localization of human glutamate receptor genes.

The chromosomal localization of human glutamate receptor genes (GluR1-4) has been established using PCR with DNA isolated from mapping panels of Chinese hamster-human hybrid cell lines and high-resolution fluorescent in situ suppression hybridization. This was accomplished with genomic clones containing putative human homologs of rat GluR 1-4 isolated by high-stringency screening of a cosmid library with the rat cDNAs encoding GluR1-4. The locations of GluR1-4, respectively, are 5q32-33, 4q32-33, Xq25-26, and 11q22-23. Evidence implicating glutamatergic synapses in a diversity of physiologic and pathologic processes together with concordance of the chromosomal locales and results of linkage analyses establishes GluR3 and GluR4 as candidate genes for a number of nervous system disorders including the oculocerebral-renal syndrome of Lowe and a form of manic-depressive illness.

Animals

NMDA and non-NMDA receptor-mediated increase of c-fos mRNA in dentate gyrus neurons involves calcium influx via different routes.

We examined the effects of selective agonists of ionotropic excitatory amino acid (EAA) receptor subtypes on induction of the immediate early gene c-fos. We used in situ hybridization to measure c-fos mRNA and fura-2 imaging to measure intracellular calcium (Ca2+i) in individual dentate gyrus neurons maintained in vitro. Activation of either NMDA or non-NMDA receptor subtypes is sufficient to induce the rapid and dramatic increase of c-fos mRNA. Activation of either NMDA or non-NMDA receptors also induces a rapid and dramatic increase of Ca2+i, effects blocked by the removal or chelation of extracellular calcium (Ca2+e). c-fos mRNA induction by either receptor subtype is Ca2+ dependent, since chelation of Ca2+e with EGTA prevents c-fos mRNA induction by both NMDA and non-NMDA receptor agonists. The increase in Ca2+i induced by activating non-NMDA receptors is inhibited either by removal of extracellular sodium (Na+e) or by the voltage-sensitive calcium channel (VSCC) blocker nifedipine. By contrast, the increase of Ca2+i induced by activating NMDA receptors is not inhibited by removal of Na+e or nifedipine. Consistent with these effects on Ca2+i, nifedipine inhibits induction of c-fos mRNA by non-NMDA, but not by NMDA, receptor agonists. These findings indicate that Ca2+ serves as a second messenger coupling ionotropic EAA receptors with transcriptional activation of c-fos mRNA. The route of Ca2+ entry into dentate neurons, however, depends on the EAA receptor subtype stimulated. Non-NMDA receptor activation results in Ca2+ influx indirectly via VSCCs, whereas NMDA receptor activation results in Ca2+ influx directly through the NMDA channel itself.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Kindling enhances sensitivity of CA3 hippocampal pyramidal cells to NMDA.

Kindling is a form of experimental epileptogenesis in which periodic electrical stimulation of a brain pathway induces a permanently hyperexcitable state. Previous studies suggested that kindling might be explained, at least in part, by an increased sensitivity of brain neurons to NMDA receptor agonists. This possibility was investigated with the use of grease-gap preparations for assaying the depolarizing responses of CA3 and CA1 hippocampal pyramidal cells to amino acid excitants. When studied 1-2 months after the last evoked seizure, CA3 pyramidal cells from kindled rats were five- to sixfold more sensitive to NMDA than CA3 pyramidal cells from controls. A similar, though smaller, effect of stimulation was observed 1 d after the last evoked seizure. The greater potency of NMDA in kindled rats can probably be explained by enhanced expression of NMDA receptors in the presence of a receptor reserve. The stimulation protocol did not alter the ability of Mg2+ to reduce NMDA potency. It also affected neither the response of CA3 pyramidal cells to AMPA [(RS)-alpha-amino-3-hydroxy-5-methyl-4-isoxazolepropionate] nor the response of CA1 pyramidal cells to NMDA or AMPA. In area CA3, the potency of NMDA, but not of AMPA, declined 2.5-4-fold over the 1-2 month experimental period, apparently as a result of increasing age. This age-related loss of sensitivity to NMDA was completely prevented by kindling. These findings suggest that kindling prevents a loss of NMDA receptor function in CA3 pyramidal cells that normally occurs during early adulthood. Such a change could contribute to maintenance of the kindled state.

Aging

Activation of substantia nigra pars reticulata neurons: role in the initiation and behavioral expression of kindled seizures.

Numerous studies have implicated the substantia nigra pars reticulata (SNR) in the initiation and behavioral expression of kindled seizures. In immobilized, amygdala-kindled animals, SNR neurons have been shown to enter an intense burst-firing pattern during afterdischarge (AD). Taken together these findings raised the possibility that the SNR facilitates the expression of kindled seizures by directly propagating seizure activity into target structures. In this study we examined the relationship between activation of SNR neurons and the electrical (EEG) and behavioral (clonic motor) expression of kindled seizures using both immobilized and unrestrained animals. The principal findings were that: (1) in both immobilized and unrestrained animals the SNR neurons of kindled, but not control, animals were recruited into a burst-firing pattern during AD; (2) the onset of burst-firing was delayed until after the onset of AD; and (3) the onset of burst-firing was not correlated with the onset of rhythmic motor seizure activity. These findings support the idea that the development of kindling is associated with recruitment of SNR neurons into a seizure propagating network. However, these data suggest that activation of SNR neurons is not necessary for the expression of clonic motor activity and does not lower seizure threshold.

Amygdala

Antiepileptogenic effects of conventional anticonvulsants in the kindling model of epilespy.

We sought to determine whether the clinically effective anticonvulsant drug valproate exhibited antiepileptogenic properties in the kindling model (we use the term anticonvulsant to mean suppression of seizure, and antiepileptogenic to mean suppression of development of epilepsy). We compared and contrasted valproate with two other anticonvulsant drugs, phenobarbital and carbamazepine. We investigated the effects of these drugs on the development of kindling, that is, the number of stimulation-induced afterdischarges required to induce enhanced seizure susceptibility in rats. Valproate exhibited powerful antiepileptogenic effects as evident in a dose-dependent increase in the number of afterdischarges required to induce kindling. These effects were not due to retained valproate or an active metabolite merely masking the expression of kindled seizures. By contrast, carbamazepine was devoid of any antiepieptogenic effects despite exhibiting marked anticonvulsant effects. Like valproate, phenobarbital exhibited both antiepileptogenic and anticonvulsant properties, but its antiepileptogenic properties were significantly less pronounced. The antiepileptogenic effects of valproate and phenobarbital strengthen the candidacy of these agents for the clinical studies needed to investigate pharmacological prevention of the development of epilepsy in high-risk groups.

Action Potentials

Differential expression of immediate early genes in the hippocampus in the kindling model of epilepsy.

Kindling is a phenomenon in which brief afterdischarges (ADs) evoked by periodic electrical stimulation of the brain eventually result in generalized clonic motor seizures. Once present, the enhanced sensitivity to electrical stimulation is lifelong. The mechanism by which brief ADs produce this long-lasting effect may involve a change in gene expression. To begin to investigate changes in gene expression that occur during kindling, we used in situ hybridization histochemistry to examine the time course of expression of mRNAs of the immediate early genes (IEGs) c-fos, c-jun, NGFI-A, and c-myc within the dorsal hippocampus of rats following a kindling AD. Three principal findings resulted from this study. First, the expression of all mRNAs except c-myc was significantly increased (P less than 0.05) within discrete neuronal populations. Second, the time course of expression of the IEGs differed markedly within the same neuronal population. Third, for a given IEG, the time course and anatomic pattern of expression were strikingly different among different neuronal populations of the hippocampus. The prolonged and distinctly different patterns of IEG expression suggest that target genes are differentially regulated in these neuronal populations for prolonged periods following a kindling AD.

Animals