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Stores Channels Glue and Trees: Active Glial and Active Dendritic Physiology

机译:商店渠道胶水和树木:活跃的胶质细胞和活跃的树突状生理

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摘要

Glial cells and neuronal dendrites were historically assumed to be passive structures that play only supportive physiological roles, with no active contribution to information processing in the central nervous system. Research spanning the past few decades has clearly established this assumption to be far from physiological realities. Whereas the discovery of active channel conductances and their localized plasticity was the turning point for dendritic structures, the demonstration that glial cells release transmitter molecules and communicate across the neuroglia syncytium through calcium wave propagation constituted path-breaking discoveries for glial cell physiology. An additional commonality between these two structures is the ability of calcium stores within their endoplasmic reticulum (ER) to support active propagation of calcium waves, which play crucial roles in the spatiotemporal integration of information within and across cells. Although there have been several demonstrations of regulatory roles of glial cells and dendritic structures in achieving common physiological goals such as information propagation and adaptability through plasticity, studies assessing physiological interactions between these two active structures have been few and far. This lacuna is especially striking given the strong connectivity that is known to exist between these two structures through several complex and tightly intercoupled mechanisms that also recruit their respective ER structures. In this review, we present brief overviews of the parallel literatures on active dendrites and active glial physiology and make a strong case for future studies to directly assess the strong interactions between these two structures in regulating physiology and pathophysiology of the brain.
机译:历史上假定神经胶质细胞和神经元树突是被动结构,仅发挥支持性生理作用,对中枢神经系统的信息处理没有积极贡献。过去几十年的研究清楚地证明了这一假设与生理现实相去甚远。活性通道电导及其局部可塑性的发现是树突结构的转折点,而神经胶质细胞通过钙波传播释放递质分子并通过神经胶质合胞进行交流的证明,构成了神经胶质细胞生理学的突破性发现。这两个结构之间的另一个共同点是其内质网(ER)中钙存储的能力,以支持钙波的主动传播,这在细胞内和跨细胞信息的时空整合中起着至关重要的作用。尽管已经有数个神经胶质细胞和树突状结构在实现共同的生理目标(例如通过可塑性传播信息和适应性)中发挥调节作用的证明,但评估这两个活性结构之间的生理相互作用的研究却很少。考虑到已知的这两个结构之间通过多种复杂且紧密耦合的机制之间存在的强大连通性,这一缺陷尤其令人震惊,这些机制还募集了各自的ER结构。在这篇综述中,我们对活性树突和活动胶质细胞生理学的平行文献进行了简要概述,并为今后的研究提供了有力的案例,以直接评估这两种结构之间在调节大脑生理学和病理生理学方面的强相互作用。

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