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On the Role of Astroglial Syncytia in Self-Repairing Spiking Neural Networks

机译:星形胶质合胞在自修复尖刺神经网络中的作用

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It has been shown that brain-like self-repair can arise from the interactions between neurons and astrocytes where endocannabinoids are synthesized and released from active neurons. This retrograde messenger feeds back to local synapses directly and indirectly to distant synapses via astrocytes. This direct/indirect feedback of the endocannabinoid retrograde messenger results in the modulation of the probability of release (PR) at synaptic sites. When synapses fail, there is a corresponding falloff in the firing activity of the associated neurons, and hence the strength of the direct feedback messenger diminishes. This triggers an increase in PR of healthy synapses, due to the indirect messenger from other active neurons, which is the catalyst for the repair process. In this paper, the repair process is implemented by developing a new learning rule that captures the spike-timing-dependent plasticity and Bienenstock, Cooper, and Munro learning rules. The rule is activated by the increase in PR and results in a potentiation of the weight values, which reestablishes the firing activity of neurons. In addition, this self-repairing mechanism is extended to network-level repair where astrocyte to astrocyte communications are implemented using a linear gap junction model. This facilitates the implementation of an astroglial syncytium involving multiple astrocytes, which relays the indirect feedback messenger to distant neurons: each astrocyte is bidirectionally coupled to neurons. A detailed and comprehensive set of results with analysis is presented demonstrating repair at both cellular and network levels.
机译:研究表明,神经元与星形胶质细胞之间的相互作用可产生类似大脑的自我修复作用,其中合成了大麻素并从活性神经元中释放出来。这种逆行信使通过星形胶质细胞直接或间接地反馈到远处的突触。内源性大麻素逆行信使的这种直接/间接反馈导致突触部位释放概率(PR)的调节。当突触失败时,相关神经元的发射活动就会相应减少,因此直接反馈信使的强度会降低。由于其他活跃神经元的间接信使,这会触发健康突触的PR增加,而后者是修复过程的催化剂。在本文中,修复过程是通过开发新的学习规则来实现的,该学习规则捕获了依赖于峰值定时的可塑性以及Bienenstock,Cooper和Munro的学习规则。 PR的增加激活了该规则,并导致重量值增强,从而重新建立了神经元的放电活动。此外,这种自我修复机制扩展到网络级修复,其中使用线性间隙连接模型实现星形胶质细胞与星形胶质细胞的通讯。这促进了涉及多个星形胶质细胞的星形胶质合胞体的实施,它将间接反馈信使传递给遥远的神经元:每个星形胶质细胞都与神经元双向耦合。提出了详细而全面的分析结果,展示了蜂窝和网络级别的修复。

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