首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Calcium-based plasticity model explains sensitivity of synaptic changes to spike pattern, rate, and dendritic location
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Calcium-based plasticity model explains sensitivity of synaptic changes to spike pattern, rate, and dendritic location

机译:钙基可塑性模型解释了突触变化对刺突模式,速率和树突位置的敏感性

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摘要

Multiple stimulation protocols have; been found to be effective in changing synaptic efficacy by inducing long-term potentiation or depression. In many of those protocols, increases in postsynaptic calcium concentration have been shown to play a crucial role. However, it is still unclear whether and how the dynamics of the postsynaptic calcium alone determine the outcome of synaptic plasticity. Here, we propose a calcium-based model of a synapse in which potentiation and depression are activated above calcium thresholds. We show that this model gives rise to a large diversity of spike timing-dependent plasticity curves, most of which have been observed experimentally in different systems. It accounts quantitatively for plasticity outcomes evoked by protocols involving patterns with variable spike timing and firing rate in hippocampus and neocortex. Furthermore, it allows us to predict that differences in plasticity outcomes in different studies are due to differences in parameters defining the calcium dynamics. The model provides a mechanistic understanding of how various stimulation protocols provoke specific synaptic changes through the dynamics of calcium concentration and thresholds implementing in simplified fashion protein signaling cascades, leading to long-term potentiation and long-term depression. The combination of biophysical realism and analytical tractability makes it the ideal candidate to study plasticity at the synapse, neuron, and network levels.
机译:有多种刺激方案;已发现通过诱导长期增强或抑制可有效改变突触效力。在许多这样的方案中,已显示出突触后钙浓度的增加起关键作用。然而,目前尚不清楚单独的突触后钙是否以及如何决定突触可塑性的结果。在这里,我们提出了一个基于钙的突触模型,其中在钙阈值以上激活了增强和抑制作用。我们表明,该模型引起了与峰值时间相关的可塑性曲线的多样性,其中大多数已在不同系统中通过实验观察到。它定量地量化了协议所引起的可塑性结果,该协议涉及海马和新皮层中具有可变尖峰时间和放电速率的模式。此外,它允许我们预测不同研究中可塑性结果的差异是由于定义钙动力学的参数差异所致。该模型提供了对各种刺激方案如何通过钙浓度动态变化和阈值以简化方式的蛋白质信号传导级联实现的机制的机械理解,从而导致长期增强和长期抑制。生物物理真实性和分析可处理性的结合使其成为研究突触,神经元和网络水平的可塑性的理想人选。

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