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Synergy Between Short-Term and Long-Term Plasticity Explains Direction-Selectivity in Visual Cortex

机译:短期和长期可塑性之间的协同作用解释了视觉皮层中的方向选择性

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In this study, we examine whether short-term plasticity (STP) mediates learning rules governing long-term synaptic plasticity (LTSP). More specifically, we examine how the initial vesicle release probability can mediate long-term changes in synaptic strength. Given the importance of calcium-dependent modulation of synaptic transmission, as well as the temporal information to cortical computation, we examine whether STP can set the initial condition in modulating network connectivity strength and stability via spike-timing-dependent plasticity (STDP). Taking as a starting point the well-established Tsodyks-Markram (TM) rule for STP, we implement a model of two interconnected units receiving a train of incoming spikes first mediated by a mechanism of presynaptic STP. Extending the TM model, we then implement a mechanism of postsynaptic LTSP. By treating the two mechanisms synergistically, we manipulate the initial vesicle release probability of presynaptic STP and find that this process modulates long-term depression-mediated weight convergence, thus mediating the activity of postsynaptic responses. Furthermore, we show that an interaction between STP and LTSP jointly mediate neocortical synapses in explaining direction selectivity. Overall, results suggest that calcium-dependent modulation of synaptic strength mediates important consequences of neocortical response properties.
机译:在这项研究中,我们研究了短期可塑性(STP)介导学习规则治疗长期突触可塑性(LTSP)。更具体地,我们研究了初始囊泡释放概率如何介导突触强度的长期变化。鉴于突触传输的钙依赖性调制的重要性,以及对皮质计算的时间信息,我们检查STP是否可以通过峰值定时依赖性可塑性(STDP)调制网络连接强度和稳定性的初始条件。作为一个起点,STP的完善的TSODYKS-MARKRAM(TM)规则,我们实现了一种接收一系列校正尖峰的两个互连单元的模型,首先由突触前STP机制介导。扩展TM模型,然后我们实施突触后LTSP的机制。通过协同作用地处理两种机制,我们操纵突触前STP的初始囊泡释放概率,并发现该方法调节长期抑郁介导的重量会聚,从而介导突触后反应的活性。此外,我们表明,STP和LTSP之间的相互作用在解释方向选择性方面共同介导新皮质突触。总体而言,结果表明突触强度的钙依赖性调节介导新奇响应性能的重要后果。

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