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Plasticity of Neuron-Glial Transmission: Equipping Glia for Long-Term Integration of Network Activity

机译:神经胶质细胞传输的可塑性:胶质细胞的网络活动的长期整合。

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摘要

The capacity of synaptic networks to express activity-dependent changes in strength and connectivity is essential for learning and memory processes. In recent years, glial cells (most notably astrocytes) have been recognized as active participants in the modulation of synaptic transmission and synaptic plasticity, implicating these electrically nonexcitable cells in information processing in the brain. While the concept of bidirectional communication between neurons and glia and the mechanisms by which gliotransmission can modulate neuronal function are well established, less attention has been focussed on the computational potential of neuron-glial transmission itself. In particular, whether neuron-glial transmission is itself subject to activity-dependent plasticity and what the computational properties of such plasticity might be has not been explored in detail. In this review, we summarize current examples of plasticity in neuron-glial transmission, in many brain regions and neurotransmitter pathways. We argue that induction of glial plasticity typically requires repetitive neuronal firing over long time periods (minutes-hours) rather than the short-lived, stereotyped trigger typical of canonical long-term potentiation. We speculate that this equips glia with a mechanism for monitoring average firing rates in the synaptic network, which is suited to the longer term roles proposed for astrocytes in neurophysiology.
机译:突触网络表达强度和连接性活动相关变化的能力对于学习和记忆过程至关重要。近年来,神经胶质细胞(最显着的是星形胶质细胞)被认为是调节突触传递和突触可塑性的积极参与者,这牵涉到这些非电兴奋性细胞参与了大脑的信息处理。虽然已经很好地建立了神经元与神经胶质之间双向通讯的概念以及神经胶质传递可调节神经元功能的机制,但人们对神经胶质传递本身的计算潜力的关注较少。尤其是,神经胶质细胞传递本身是否受活动依赖的可塑性影响,以及这种可塑性的计算特性可能尚未得到详细探讨。在这篇综述中,我们总结了神经胶质传输,许多大脑区域和神经递质途径中可塑性的最新实例。我们认为,诱导神经胶质可塑性通常需要长时间(分钟-小时)重复性神经元放电,而不是典型的长期长时程增强的短暂,定型触发。我们推测这为神经胶质细胞配备了一种机制,用于监测突触网络中的平均放电速率,该机制适合于星形胶质细胞在神经生理学中提出的长期作用。

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