Literature DB >> 18697837

Homeostasis established by coordination of subcellular compartment plasticity improves spike encoding.

Na Chen1, Xin Chen, Jin-Hui Wang.   

Abstract

Homeostasis in cells maintains their survival and functions. The plasticity at neurons and synapses may destabilize their signal encoding. The rapid recovery of cellular homeostasis is needed to secure the precise and reliable encoding of neural signals necessary for well-organized behaviors. We report a homeostatic process that is rapidly established through Ca(2+)-induced coordination of functional plasticity among subcellular compartments. An elevation of cytoplasmic Ca(2+) levels raises the threshold potentials and refractory periods of somatic spikes, and strengthens the signal transmission at glutamatergic and GABAergic synapses, in which synaptic potentiation shortens refractory periods and lowers threshold potentials. Ca(2+) signals also induce an inverse change of membrane excitability at the soma versus the axon. The integrative effect of Ca(2+)-induced plasticity among the subcellular compartments is homeostatic in nature, because it stabilizes neuronal activities and improves spike timing precision. Our study of neuronal homeostasis that is fulfilled by rapidly coordinating subcellular compartments to improve neuronal encoding sheds light on exploring homeostatic mechanisms in other cell types.

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Year:  2008        PMID: 18697837     DOI: 10.1242/jcs.022368

Source DB:  PubMed          Journal:  J Cell Sci        ISSN: 0021-9533            Impact factor:   5.285


  38 in total

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4.  A sequential impairment of cortical astrocytes and GABAergic neurons during ischemia is improved by mGluR₁,₅ activation.

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6.  Barrel cortical neurons and astrocytes coordinately respond to an increased whisker stimulus frequency.

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7.  mGluR₁,5 activation improves network asynchrony and GABAergic synapse attenuation in the amygdala: implication for anxiety-like behavior in DBA/2 mice.

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8.  Anthelmintic resistance and homeostatic plasticity (Brugia malayi).

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9.  The functional upregulation of piriform cortex is associated with cross-modal plasticity in loss of whisker tactile inputs.

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10.  Upregulation of transmitter release probability improves a conversion of synaptic analogue signals into neuronal digital spikes.

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Journal:  Mol Brain       Date:  2012-08-01       Impact factor: 4.041

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