The human brain contains approximate to 86 billion neurons, which are precisely organized in specific brain regions and nuclei. High fidelity synaptic communication between subsets of neurons in specific circuits is required for most human behaviors, and is often disrupted in neuropsychiatric disorders. The presynaptic axon terminals of one neuron release neurotransmitters that activate receptors on multiple postsynaptic neuron targets to induce electrical and chemical responses. Typically, postsynaptic neurons integrate signals from multiple presynaptic neurons at thousands of synaptic inputs to control downstream communication to the next neuron in the circuit. Importantly, the strength (or efficiency) of signal transmission at each synapse can be modulated on time scales ranging up to the lifetime of the organism. This synaptic plasticity leads to changes in overall neuronal circuit activity, resulting in behavioral modifications. This series of minireviews will focus on recent advances in our understanding of the molecular and cellular mechanisms that control synaptic plasticity.
机构:
Wright State Univ, Sch Med, Dept Biochem & Mol Biol, Dayton, OH 45435 USAWright State Univ, Sch Med, Dept Biochem & Mol Biol, Dayton, OH 45435 USA
Gomez-Cambronero, Julian
Carman, George M.
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Rutgers State Univ, Rutgers Ctr Lipid Res, Dept Food Sci, New Brunswick, NJ 08901 USA
Rutgers State Univ, New Jersey Inst Food Nutr & Hlth, New Brunswick, NJ 08901 USAWright State Univ, Sch Med, Dept Biochem & Mol Biol, Dayton, OH 45435 USA
机构:
Stowers Inst Med Res, Kansas City, MO 64110 USA
Univ Kansas, Med Ctr, Dept Microbiol Mol Genet & Immunol, Kansas City, KS 66160 USAStowers Inst Med Res, Kansas City, MO 64110 USA
Mushegian, Arcady
Conaway, Joan W.
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Stowers Inst Med Res, Kansas City, MO 64110 USA
Univ Kansas, Med Ctr, Dept Biochem & Mol Biol, Kansas City, KS 66160 USAStowers Inst Med Res, Kansas City, MO 64110 USA