426 research outputs found

    Acción : diario de Teruel y su provincia: Año III Número 549 - (02/09/34)

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    In circumstances of limited water supply, the stability of grain yield in sorghum may be improved by manipulating the interaction between plant spacing and crop maturity. The plant density which maximises grain yield over environments may also be influenced by differences in compensatory capacity among hybrids of the same maturity category. Consequently, variation among 8 sorghum hybrids in the response of grain yield to plant density was examined at 5 locations.When panicle number was used as a covariate, the interaction between hybrid, density, and site was significant (

    Computational Study of Astroglial Calcium Homeostasis in a Semi-isolated Synaptic Cleft

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    On-chip communication for neuro-glia networks

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    SPANNER: A Self-Repairing Spiking Neural Network Hardware Architecture

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    A computational study of astrocytic glutamate influence on post-synaptic neuronal excitability

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    <p><b>Postsynaptic activity due to synaptic and intrinsic currents</b>, triggered by (a) synaptic glutamate [Glu]<sub>syn</sub> (b-d) simulation with [Glu]<sub>ast,eq</sub> = 1.5mM, 5mM, and 10mM respectively, synaptic currents (I<sub>syn</sub>) combined AMPA- and NMDA-mediated currents in response to synaptic glutamate, membrane potential (V<sub>m</sub>) of postsynaptic neuron resulting from combination of I<sub>syn</sub> and voltage-gated currents (Na<sup>+</sup>, K<sup>+</sup> and leak). Prolonged time course of synaptic glutamate leads to enhanced synaptic currents (I<sub>syn</sub>) and higher frequency postsynaptic firing response (V<sub>m</sub> depolarisations) as [Glu]<sub>ast,eq</sub> increases.</p

    Self-Repairing Hardware with Astrocyte-Neuron Networks

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    Scalable Networks-on-Chip Interconnected Architecture for Astrocyte-Neuron Networks

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    A Computational Study of Astrocytic GABA Release at the Glutamatergic Synapse: EAAT-2 and GAT-3 Coupled Dynamics

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    Neurotransmitter dynamics within neuronal synapses can be controlled by astrocytes and reflect key contributors to neuronal activity. In particular, Glutamate (Glu) released by activated neurons is predominantly removed from the synaptic space by perisynaptic astrocytic transporters EAAT-2 (GLT-1). In previous work, we showed that the time course of Glu transport is affected by ionic concentration gradients either side of the astrocytic membrane and has the propensity for influencing postsynaptic neuronal excitability. Experimental findings co-localize GABA transporters GAT-3 with EAAT-2 on the perisynaptic astrocytic membrane. While these transporters are unlikely to facilitate the uptake of synaptic GABA, this paper presents simulation results which demonstrate the coupling of EAAT-2 and GAT-3, giving rise to the ionic-dependent reversed transport of GAT-3. The resulting efflux of GABA from the astrocyte to the synaptic space reflects an important astrocytic mechanism for modulation of hyperexcitability. Key results also illustrate an astrocytic-mediated modulation of synaptic neuronal excitation by released GABA at the glutamatergic synapse
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