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Self-repair in a bidirectionally coupled astrocyte-neuron (AN) system based on retrograde signaling

机译:基于逆向信号的双向耦合星形胶质细胞-神经元(AN)系统中的自我修复

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摘要

In this paper we demonstrate that retrograde signaling via astrocytes may underpin self-repair in the brain. Faults manifest themselves in silent or near silent neurons caused by low transmission probability (PR) synapses; the enhancement of the transmission PR of a healthy neighboring synapse by retrograde signaling can enhance the transmission PR of the “faulty” synapse (repair). Our model of self-repair is based on recent research showing that retrograde signaling via astrocytes can increase the PR of neurotransmitter release at damaged or low transmission PR synapses. The model demonstrates that astrocytes are capable of bidirectional communication with neurons which leads to modulation of synaptic activity, and that indirect signaling through retrograde messengers such as endocannabinoids leads to modulation of synaptic transmission PR. Although our model operates at the level of cells, it provides a new research direction on brain-like self-repair which can be extended to networks of astrocytes and neurons. It also provides a biologically inspired basis for developing highly adaptive, distributed computing systems that can, at fine levels of granularity, fault detect, diagnose and self-repair autonomously, without the traditional constraint of a central fault detect/repair unit.
机译:在本文中,我们证明了通过星形胶质细胞的逆行信号传导可能会增强大脑的自我修复能力。断层表现为低传导概率突触引起的沉默或接近沉默的神经元。通过逆行信号增强健康的邻近突触的传输PR可以增强“故障”突触(修复)的传输PR。我们的自我修复模型基于最近的研究,表明通过星形胶质细胞的逆行信号传导可以增加受损或低传导PR突触时神经递质释放的PR。该模型表明,星形胶质细胞能够与神经元进行双向通讯,从而导致突触活性的调节,而通过逆向信使(例如内源性大麻素)的间接信号传导会导致突触传递PR的调节。尽管我们的模型在细胞水平上运行,但它为脑样自我修复提供了新的研究方向,可以将其扩展到星形胶质细胞和神经元网络。它还为开发高度自适应的分布式计算系统提供了生物学启发的基础,该系统可以以精细的粒度自动进行故障检测,诊断和自我修复,而无需中央故障检测/修复单元的传统约束。

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