952 resultados para Excitatory Synapses


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L’encéphalopathie hypoxique-­‐ischémique cause des milliers de victimes à travers le monde chaque année. Les enfants survivants à un épisode hypoxique-­‐ischémique sont à risque de développer des problèmes neurologiques incapacitants comme une paralysie cérébrale, un retard mental, une épilepsie ou des troubles d’ordre comportemental. Les modèles animaux ont amélioré nos connaissances sur les mécanismes sous-­‐jacents aux dommages cérébraux, mais elles sont encore trop incomplètes pour être capables de prévenir les problèmes neurologiques. Ce projet vise à comprendre l’impact d’un épisode asphyxique périnatale associé à des convulsions ainsi que l’activation de l’adenosine monophosphate-­‐activated protein kinase (AMPK) sur les circuits GABAergiques inhibiteurs en développement chez la souris. Dans le but d’investiguer le sort des neurones inhibiteurs, appelés interneurones, suite à un épisode asphyxique périnatal associé à des convulsions avec des animaux transgéniques, nous avons pris avantage d’un nouveau modèle d’hypoxie permettant d’induire des convulsions chez la souris. Deux populations d’interneurones représentant ensemble environ 60% de tous les interneurones corticaux ont été étudiées, soit les cellules exprimant la parvalbumine (PV) et les cellules exprimant la somatostatine (SOM). L’étude stéréologique n’a montré aucune mort neuronale de ces deux populations d’interneurones dans l’hippocampe chez les souris hypoxique d’âge adulte. Par contre, le cortex des souris hypoxiques présentait des zones complètement ou fortement dépourvues de cellules PV alors que les cellules SOM n’étaient pas affectées. L’utilisation d’une lignée de souris transgénique exprimant une protéine verte fluorescente (GFP) dans les cellules PV nous a permis de comprendre que les trous PV sont le reflet de deux choses : 1) une diminution des cellules PV et 2) une immaturité des cellules PV restantes. Puisque les cellules PV sont spécifiquement affectées dans la première partie de notre étude, nous avons voulu étudier les mécanismes moléculaires sous-­‐jacents à cette vulnérabilité. L’AMPK est un senseur d’énergie qui orchestre le rétablissement des i niveaux d’énergie cellulaire dans le cas d’une déplétion énergétique en modulant des voies de signalisation impliquant la synthèse de protéines et l’excitabilité membranaire. Il est possible que l’activation d’AMPK suite à un épisode asphyxique périnatal associé à des convulsions soit néfaste à long-­‐terme pour le circuit GABAergique en développement et modifie l’établissement de l’innervation périsomatique d’une cellule PV sur les cellules pyramidales. Nous avons étudié cette hypothèse dans un modèle de culture organotypique en surexprimant la forme wild-­‐type (WT) de la sous-­‐unité α2 d’AMPK, ainsi qu’une forme mutée dominante négative (DN), dans des cellules PV individuelles. Nous avons montré que pendant la phase de formation synaptique (jours post-­‐natals équivalents EP 10-­‐18), la surexpression de la forme WT désorganise la stabilisation des synapses. De plus, l’abolition de l’activité d’AMPK semble augmenter le nombre de synapses périsomatiques faits par la cellule PV sur les cellules pyramidales pendant la phase de formation et semble avoir l’effet inverse pendant la phase de maturation (EP 16-­‐24). La neurotransmission GABAergique joue plusieurs rôles dans le cerveau, depuis la naissance jusqu’à l’âge adulte des interneurones, et une dysfonction des interneurones a été associée à plusieurs troubles neurologiques, comme la schizophrénie, l’autisme et l’épilepsie. La maturation des circuits GABAergiques se fait majoritairement pendant la période post-­‐natale et est hautement dépendante de l’activité neuronale et de l’expérience sensorielle. Nos résultats révèlent que le lourd fardeau en demande énergétique d’un épisode asphyxique périnatal peut causer une mort neuronale sélective des cellules PV et compromettre l’intégrité de leur maturation. Un des mécanismes sous-­‐ jacents possible à cette immaturité des cellules PV suite à l’épisode hypoxique est l’activation d’AMPK, en désorganisant leur profil d’innervation sur les cellules pyramidales. Nous pensons que ces changements dans le réseau GABAergique pourrait contribuer aux problèmes neurologiques associés à une insulte hypoxique.

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A fundamental goal in neurobiology is to understand the development and organization of neural circuits that drive behavior. In the embryonic spinal cord, the first motor activity is a slow coiling of the trunk that is sensory-independent and therefore appears to be centrally driven. Embryos later become responsive to sensory stimuli and eventually locomote, behaviors that are shaped by the integration of central patterns and sensory feedback. In this thesis I used a simple vertebrate model, the zebrafish, to investigate in three manners how developing spinal networks control these earliest locomotor behaviors. For the first part of this thesis, I characterized the rapid transition of the spinal cord from a purely electrical circuit to a hybrid network that relies on both chemical and electrical synapses. Using genetics, lesions and pharmacology we identified a transient embryonic behavior preceding swimming, termed double coiling. I used electrophysiology to reveal that spinal motoneurons had glutamate-dependent activity patterns that correlated with double coiling as did a population of descending ipsilateral glutamatergic interneurons that also innervated motoneurons at this time. This work (Knogler et al., Journal of Neuroscience, 2014) suggests that double coiling is a discrete step in the transition of the motor network from an electrically coupled circuit that can only produce simple coils to a spinal network driven by descending chemical neurotransmission that can generate more complex behaviors. In the second part of my thesis, I studied how spinal networks filter sensory information during self-generated movement. In the zebrafish embryo, mechanosensitive sensory neurons fire in response to light touch and excite downstream commissural glutamatergic interneurons to produce a flexion response, but spontaneous coiling does not trigger this reflex. I performed electrophysiological recordings to show that these interneurons received glycinergic inputs during spontaneous fictive coiling that prevented them from firing action potentials. Glycinergic inhibition specifically of these interneurons and not other spinal neurons was due to the expression of a unique glycine receptor subtype that enhanced the inhibitory current. This work (Knogler & Drapeau, Frontiers in Neural Circuits, 2014) suggests that glycinergic signaling onto sensory interneurons acts as a corollary discharge signal for reflex inhibition during movement. v In the final part of my thesis I describe work begun during my masters and completed during my doctoral degree studying how homeostatic plasticity is expressed in vivo at central synapses following chronic changes in network activity. I performed whole-cell recordings from spinal motoneurons to show that excitatory synaptic strength scaled up in response to decreased network activity, in accordance with previous in vitro studies. At the network level, I showed that homeostatic plasticity mechanisms were not necessary to maintain the timing of spinal circuits driving behavior, which appeared to be hardwired in the developing zebrafish. This study (Knogler et al., Journal of Neuroscience, 2010) provided for the first time important in vivo results showing that synaptic patterning is less plastic than synaptic strength during development in the intact animal. In conclusion, the findings presented in this thesis contribute widely to our understanding of the neural circuits underlying simple motor behaviors in the vertebrate spinal cord.

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Dans le cortex visuel des mammifères, une cellule à panier (BC) qui représente un sous-type majoritaire d’interneurones GABAergiques, innerve une centaine de neurones par une multitude de synapses localisées sur le soma et sur les dendrites proximales de chacune de ses cibles. De plus, ces cellules sont importantes pour la génération des rythmes gammas, qui régulent de nombreuses fonctions cognitives, et pour la régulation de la plasticité corticale. Bien que la fonction des BC au sein des réseaux corticaux est à l'étude, les mécanismes qui contrôlent le développement de leur arborisation complexe ainsi que de leurs nombreux contacts synaptiques n’ont pas été entièrement déterminés. En utilisant les récepteurs allatostatines couplés aux protéines G de la drosophile (AlstR), nous démontrons in vitro que la réduction de l'excitation ainsi que la réduction de la libération des neurotransmetteurs par les BCs corticales individuelles des souris, diminuent le nombre de cellules innervées sans modifier le patron d'innervation périsomatique, durant et après la phase de prolifération des synapses périsomatiques. Inversement, lors de la suppression complète de la libération des neurotransmetteurs par les BCs individuelles avec l’utilisation de la chaîne légère de la toxine tétanus, nous observons des effets contraires selon le stade de développement. Les BCs exprimant TeNT-Lc pendant la phase de prolifération sont caractérisées par des arborisations axonales plus denses et un nombre accru de petits boutons homogènes autour des somas innervés. Toutefois, les cellules transfectées avec TeNT-Lc après la phase de la prolifération forment une innervation périsomatique avec moins de branchements terminaux d’axones et un nombre réduit de boutons avec une taille irrégulière autour des somas innervés. Nos résultats révèlent le rôle spécifique des niveaux de l’activité neuronale et de la neurotransmission dans l'établissement du territoire synaptique des cellules GABAergiques corticaux. Le facteur neurotrophique dérivé du cerveau (BDNF) est un modulateur puissant de la maturation activité-dépendante des synapses GABAergiques. Grâce à l'activation et à la signalisation de son récepteur tyrosine kinase B (TrkB), la liaison de mBDNF module fortement la prolifération des synapses périsomatiques GABAergiques formés par les BCs. Par contre, le rôle du récepteur neurotrophique de faible affinité, p75NTR, dans le développement du territoire synaptique des cellules reste encore inconnu. Dans ce projet, nous démontrons que la suppression de p75NTR au niveau des BCs individuelles in vitro provenant de souris p75NTRlox induit la formation d'une innervation périsomatique exubérante. BDNF est synthétisé sous une forme précurseur, proBDNF, qui est par la suite clivée par des enzymes, y compris la plasmine activée par tPA, pour produire une forme mature de BDNF (m)BDNF. mBDNF et proBDNF se lient avec une forte affinité à TrkB et p75NTR, respectivement. Nos résultats démontrent qu’un traitement des cultures organotypiques avec la forme résistante au clivage de proBDNF (mut-proBDNF) réduit fortement le territoire synaptique des BCs. Les cultures traitées avec le peptide PPACK, qui inactive tPA, ou avec tPA altèrent et favorisent respectivement la maturation de l’innervation synaptique des BCs. Nous démontrons aussi que l’innervation exubérante formée par les BCs p75NTR-/- n’est pas affectée par un traitement avec mut-proBDNF. L’ensemble de ces résultats suggère que l'activation de p75NTR via proBDNF régule négativement le territoire synaptique des BCs corticaux. Nous avons ensuite examiné si mut-proBDNF affecte l’innervation périsomatique formée par les BCs in vivo, chez la souris adulte. Nous avons constaté que les boutons GABAergiques périsomatiques sont significativement diminués dans le cortex infusé avec mut-proBDNF par rapport à l’hémisphère non-infusé ou traité avec de la saline. En outre, la plasticité de la dominance oculaire (OD) est rétablie par ce traitement chez la souris adulte. Enfin, en utilisant des souris qui ne possèdent pas le récepteur p75NTR dans leurs BCs spécifiquement, nous avons démontré que l'activation de p75NTR via proBDNF est nécessaire pour induire la plasticité de la OD chez les souris adultes. L’ensemble de ces résultats démontre un rôle critique de l'activation de p75NTR dans la régulation et le maintien de la connectivité des circuits GABAergiques, qui commencent lors du développement postnatal précoce jusqu’à l'âge adulte. De plus, nous suggérons que l'activation contrôlée de p75NTR pourrait être un outil utile pour restaurer la plasticité dans le cortex adulte.

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The piriform cortex (PC) is highly prone to epileptogenesis, particularly in immature animals, where decreased muscarinic modulation of PC intrinsic fibre excitatory neurotransmission is implicated as a likely cause. However, whether higher levels of acetylcholine (ACh) release occur in immature vs. adult PC remains unclear. We investigated this using in vitro extracellular electrophysiological recording techniques. Intrinsic fibre-evoked extracellular field potentials (EFPs) were recorded from layers II to III in PC brain slices prepared from immature (P14-18) and adult (P>40) rats. Adult and immature PC EFPs were suppressed by eserine (1muM) or neostigmine (1muM) application, with a greater suppression in immature ( approximately 40%) than adult ( approximately 30%) slices. Subsequent application of atropine (1muM) reversed EFP suppression, producing supranormal ( approximately 12%) recovery in adult slices, suggesting that suppression was solely muscarinic ACh receptor-mediated and that some 'basal' cholinergic 'tone' was present. Conversely, atropine only partially reversed anticholinesterase effects in immature slices, suggesting the presence of additional non-muscarinic modulation. Accordingly, nicotine (50muM) caused immature field suppression ( approximately 30%) that was further enhanced by neostigmine, whereas it had no effect on adult EFPs. Unlike atropine, nicotinic antagonists, mecamylamine and methyllycaconitine, induced immature supranormal field recovery ( approximately 20%) following anticholinesterase-induced suppression (with no effect on adult slices), confirming that basal cholinergic 'tone' was also present. We suggest that nicotinic inhibitory cholinergic modulation occurs in the immature rat PC intrinsic excitatory fibre system, possibly to complement the existing, weak muscarinic modulation, and could be another important developmentally regulated system governing immature PC susceptibility towards epileptogenesis.

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Suppression of depolarizing postsynaptic potentials and isolated GABA-A receptor-mediated fast inhibitory postsynaptic potentials by the muscarinic acetylcholine receptor agonist, oxotremorine-M (10 microM), was investigated in adult and immature (P14-P30) rat piriform cortical (PC) slices using intracellular recording. Depolarizing postsynaptic potentials evoked by layers II-III stimulation underwent concentration-dependent inhibition in oxotremorine-M that was most likely presynaptic and M2 muscarinic acetylcholine receptor-mediated in immature, but M1-mediated in adult (P40-P80) slices; percentage inhibition was smaller in immature than in adult piriform cortex. In contrast, compared with adults, layer Ia-evoked depolarizing postsynaptic potentials in immature piriform cortex slices in oxotremorine-M, showed a prolonged multiphasic depolarization with superimposed fast transients and spikes, and an increased 'all-or-nothing' character. Isolated N-methyl-d-aspartate receptor-mediated layer Ia depolarizing postsynaptic potentials (although significantly larger in immature slices) were however, unaffected by oxotremorine-M, but blocked by dl-2-amino-5-phosphonovaleric acid. Fast inhibitory postsynaptic potentials evoked by layer Ib or layers II-III-fiber stimulation in immature slices were significantly smaller than in adults, despite similar estimated mean reversal potentials ( approximately -69 and -70 mV respectively). In oxotremorine-M, only layer Ib-fast inhibitory postsynaptic potentials were suppressed; suppression was again most likely presynaptic M2-mediated in immature slices, but M1-mediated in adults. The degree of fast inhibitory postsynaptic potential suppression was however, greater in immature than in adult piriform cortex. Our results demonstrate some important physiological and pharmacological differences between excitatory and inhibitory synaptic systems in adult and immature piriform cortex that could contribute toward the increased susceptibility of this region to muscarinic agonist-induced epileptiform activity in immature brain slices.

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Cannabis is a potential treatment for epilepsy, although the few human studies supporting this use have proved inconclusive. Previously, we showed that a standardized cannabis extract (SCE), isolated Delta(9)-tetrahydrocannabinol (Delta(9)-THC), and even Delta(9)-THC-free SCE inhibited muscarinic agonist-induced epileptiform bursting in rat olfactory cortical brain slices, acting via CB1 receptors. The present work demonstrates that although Delta(9)-THC (1microM) significantly depressed evoked depolarizing postsynaptic potentials (PSPs) in rat olfactory cortex neurones, both SCE and Delta(9)-THC-free SCE significantly potentiated evoked PSPs (all results were fully reversed by the CB1 receptor antagonist SR141716A, 1microM); interestingly, the potentiation by Delta(9)-THC-free SCE was greater than that produced by SCE. On comparing the effects of Delta(9)-THC-free SCE upon evoked PSPs and artificial PSPs (aPSPs; evoked electrotonically following brief intracellular current injection), PSPs were enhanced, whereas aPSPs were unaffected, suggesting that the effect was not due to changes in background input resistance. Similar recordings made using CB1 receptor-deficient knockout mice (CB1(-/-)) and wild-type littermate controls revealed cannabinoid or extract-induced changes in membrane resistance, cell excitability and synaptic transmission in wild-type mice that were similar to those seen in rat neurones, but no effect on these properties were seen in CB1(-/-) cells. It appears that the unknown extract constituent(s) effects over-rode the suppressive effects of Delta(9)-THC on excitatory neurotransmitter release, which may explain some patients' preference for herbal cannabis rather than isolated Delta(9)-THC (due to attenuation of some of the central Delta(9)-THC side effects) and possibly account for the rare incidence of seizures in some individuals taking cannabis recreationally

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The L-glutamate transporter GLT-1 is an abundant CNS membrane protein of the excitatory amino acid transporter (EAAT) family which controls extracellular L-glutamate levels and is important in limiting excitotoxic neuronal death. Using RT-PCR, we have determined that four mRNAs encoding GLT-1 exist in mouse brain, with the potential to encode four GLT-1 isoforms that differ in their N- and C-termini. We expressed all four isoforms (termed MAST-KREK, MPK-KREK, MAST-DIETCI and MPK-DIETCI according to amino acid sequence) in a range of cell lines and primary astrocytes and show that each isoform can reach the cell surface. In transfected HEK-293 or COS-7 cells, all four isoforms support high-affinity sodium-dependent L-glutamate uptake with identical pharmacological and kinetic properties. Inserting a viral epitope (V5, HA or FLAG) into the second extracellular domain of each isoform allowed co-immunoprecipitation and tr-FRET studies using transfected HEK-293 cells. Here we show for the first time that each of the four isoforms are able to combine to form homomeric and heteromeric assemblies, each of which are expressed at the cell surface of primary astrocytes. After activation of protein kinase C by phorbol ester, V5-tagged GLT-1 is rapidly removed from the cell surface of HEK-293 cells and degraded. This study provides direct biochemical evidence for oligomeric assembly of GLT-1 and reports the development of novel tools to provide insight into the trafficking of GLT-1.

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Sensory afferent signals from neck muscles have been postulated to influence central cardiorespiratory control as components of postural reflexes, but neuronal pathways for this action have not been identified. The intermedius nucleus of the medulla (InM) is a target of neck muscle spindle afferents and is ideally located to influence such reflexes but is poorly investigated. To aid identification of the nucleus, we initially produced three-dimensional reconstructions of the InM in both mouse and rat. Neurochemical analysis including transgenic reporter mice expressing green fluorescent protein in GABA-synthesizing neurons, immunohistochemistry, and in situ hybridization revealed that the InM is neurochemically diverse, containing GABAegric and glutamatergic neurons with some degree of colocalization with parvalbumin, neuronal nitric oxide synthase, and calretinin. Projections from the InM to the nucleus tractus solitarius (NTS) were studied electrophysiologically in rat brainstem slices. Electrical stimulation of the NTS resulted in antidromically activated action potentials within InM neurons. In addition, electrical stimulation of the InM resulted in EPSPs that were mediated by excitatory amino acids and IPSPs mediated solely by GABA(A) receptors or by GABA(A) and glycine receptors. Chemical stimulation of the InM resulted in (1) a depolarization of NTS neurons that were blocked by NBQX (2,3-dioxo-6-nitro-1,2,3,4-tetrahydrobenzo[f]quinoxaline-7-sulfonoamide) or kynurenic acid and (2) a hyperpolarization of NTS neurons that were blocked by bicuculline. Thus, the InM contains neurochemically diverse neurons and sends both excitatory and inhibitory projections to the NTS. These data provide a novel pathway that may underlie possible reflex changes in autonomic variables after neck muscle spindle afferent activation.

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Synaptic vesicle glycoprotein (SV)2A is a transmembrane protein found in secretory vesicles and is critical for Ca2+-dependent exocytosis in central neurons, although its mechanism of action remains uncertain. Previous studies have proposed, variously, a role of SV2 in the maintenance and formation of the readily releasable pool (RRP) or in the regulation of Ca2+ responsiveness of primed vesicles. Such previous studies have typically used genetic approaches to ablate SV2 levels; here, we used a strategy involving small interference RNA (siRNA) injection to knockdown solely presynaptic SV2A levels in rat superior cervical ganglion (SCG) neuron synapses. Moreover, we investigated the effects of SV2A knockdown on voltage-dependent Ca2+ channel (VDCC) function in SCG neurons. Thus, we extended the studies of SV2A mechanisms by investigating the effects on vesicular transmitter release and VDCC function in peripheral sympathetic neurons. We first demonstrated an siRNA-mediated SV2A knockdown. We showed that this SV2A knockdown markedly affected presynaptic function, causing an attenuated RRP size, increased paired-pulse depression and delayed RRP recovery after stimulus-dependent depletion. We further demonstrated that the SV2A–siRNA-mediated effects on vesicular release were accompanied by a reduction in VDCC current density in isolated SCG neurons. Together, our data showed that SV2A is required for correct transmitter release at sympathetic neurons. Mechanistically, we demonstrated that presynaptic SV2A: (i) acted to direct normal synaptic transmission by maintaining RRP size, (ii) had a facilitatory role in recovery from synaptic depression, and that (iii) SV2A deficits were associated with aberrant Ca2+ current density, which may contribute to the secretory phenotype in sympathetic peripheral neurons.

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Anticipation is an emerging concept that can provide a bridge between the deepest philosophical theories about the nature of life and cognition on one hand and the empirical biological sciences steeped in reductionist and Newtonian conception of causality. Three conceptions of anticipation have been emerging from the literature that may be operationalised in a way leading to a viable empirical programme. The discussion of the research into a novel dynamical concept of anticipating synchronisation lends credence to such a possibility and suggests further links between the three anticipation paradigms. A careful progress mindful to the deep philosophical concerns but also respecting empirical evidence will ultimately lead towards unifying theoretical and empirical biological sciences and may offer progress where reductionist science have been so far faltering.

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In the present study, we evaluated the role of glutamatergic mechanisms in the retrotrapezoid nucleus (RTN) in changes of splanchnic sympathetic nerve discharge (sSND) and phrenic nerve discharge (PND) elicited by central and peripheral chemoreceptor activation. Mean arterial pressure (MAP), sSND and PND were recorded in urethane-anaesthetized, vagotomized, sino-aortic denervated and artificially ventilated male Wistar rats. Hypercapnia (10% CO(2)) increased MAP by 32 +/- 4 mmHg, sSND by 104 +/- 4% and PND amplitude by 101 +/- 5%. Responses to hypercapnia were reduced after bilateral injection of the NMDA receptor antagonist D,L-2-amino-5-phosphonovalerate (AP-5; 100mm in 50 nl) in the RTN (MAP increased by 16 +/- 3 mmHg, sSNDby 82 +/- 3% and PND amplitudeby 63 +/- 7%). Bilateral injection of the non-NMDA receptor antagonist 6,7-dinitro-quinoxaline-2,3-dione(DNQX; 100 mm in 50 nl) and the metabotropic receptor antagonist (+/-)-alpha-methyl-4-carboxyphenylglycine (MCPG; 100mm in 50 nl) in the RTN did not affect sympathoexcitatory responses induced by hypercapnia. Injection of DNQX reduced hypercapnia-induced phrenic activation, whereas MCPG did not. In animals with intact carotid chemoreceptors, bilateral injections of AP-5 and DNQX in the RTN reduced increases in MAP, sSND and PND amplitude produced by intravenous injection of NaCN (50 mu g kg(-1)). Injection of MCPG in the RTN did not change responses produced by NaCN. These data indicate that RTN ionotropic glutamatergic receptors are involved in the sympathetic and respiratory responses produced by central and peripheral chemoreceptor activation.

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The effects of alpha-pompilidotoxin (alpha-PMTX), a new neurotoxin isolated from the venom of a solitary wasp, were studied on the neuromuscular synapses in lobster walking leg and the rat trigeminal ganglion (TG) neurons. Paired intracellular recordings from the presynaptic axon terminals and the innervating lobster leg muscles revealed that alpha-PMTX induced long bursts of action potentials in the presynaptic axon, which resulted in facilitated excitatory and inhibitory synaptic transmission. The action or alpha-PMTX was distinct from that of other known facilitatory presynaptic toxins, including sea anemone toxins and alpha-scorpion toxins, which modify the fast inactivation of Na+ current. We further characterized the action of alpha-PMTX on Na+ channels by whole-cell recordings from rat trigeminal neurons. We found that alpha-PMTX stowed the Na+ channels inactivation process without changing the peak current-voltage relationship or the activation time course of tetrodotoxin (TTX)-sensitive Na+ currents, and that alpha-PMTX had voltage-dependent effects on the rate of recovery from Na+ current inactivation and deactivating tail currents. The results suggest that alpha-PMTX slows or blocks conformational changes required for fast inactivation of the Na+ channels on the extracellular surface. The simple structure of alpha-PMTX, consisting of 13 amino acids, would be advantageous for understanding the functional architecture of Na+ channel protein.

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Kainoid amino acids are agonists of the AMPA/kainate receptors and exhibit highly potent neuroexcitatory activity. From the results of extensive structure-activity relationship studies, we previously postulated that the C4-substituent of the kainoid amino acids interacts with an allosteric site of the glutamate receptor with electron-donating character. In order to investigate the mode of action in more detail, molecular orbital calculation for model compounds of the kainoid were performed. The results indicated that the HOMO energy level of the C4-substituent is involved in the potent neuroexcitatory activity, thus supporting our hypothesis. (C) 2002 Elsevier B.V. Ltd. All rights reserved.