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Local signaling with molecular diffusion as a decoder of Ca2+ signals in synaptic plasticity

机译:分子扩散作为突触可塑性中Ca2 +信号的解码器的局部信号传导

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摘要

Synaptic plasticity is induced by the influx of calcium ions (Ca2+) through N-methyl-D-aspartate receptors (NMDARs), and the direction and strength of the response depend on the frequency of the synaptic inputs. Recent studies have shown that the direction of synaptic plasticity is also governed by two distinct NMDAR subtypes (NR1/NR2A, NR1/NR2B). How are the different types of regulation (frequency-dependent and receptor-specific) processed simultaneously? To clarify the molecular basis of this dual dependence of synaptic plasticity, we have developed a mathematical model of spatial Ca2+ signaling in a dendritic spine. Our simulations revealed that calmodulin (CaM) activation in the vicinity of NMDARs is strongly affected by the diffusion coefficient of CaM itself, and that this ‘local CaM diffusion system' works as a dual decoder of both the frequency of Ca2+ influxes and their postsynaptic current shapes, generated by two NMDAR subtypes, implying that spatial factors may underlie the complicated regulation scheme of synaptic plasticity.
机译:钙离子(Ca 2 + )通过N-甲基-D-天冬氨酸受体(NMDARs)的流入诱导突触可塑性,并且反应的方向和强度取决于突触的频率输入。最近的研究表明,突触可塑性的方向也受两种不同的NMDAR亚型(NR1 / NR2A,NR1 / NR2B)控制。如何同时处理不同类型的调节(取决于频率和特定于受体)?为了阐明突触可塑性这种双重依赖性的分子基础,我们建立了树突棘中空间Ca 2 + 信号传导的数学模型。我们的模拟显示,NMDAR附近的钙调蛋白(CaM)激活受CaM本身的扩散系数的强烈影响,并且此“局部CaM扩散系统”可作为Ca 2+频率的双重解码器由两种NMDAR亚型产生的涌入及其突触后电流形态,表明空间因素可能是复杂的突触可塑性调节机制的基础。

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