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微管动力学与神经元兴奋性:细胞骨架成分与癫痫现象相关的研究进展。

Microtubule Dynamics and Neuronal Excitability: Advances on Cytoskeletal Components Implicated in Epileptic Phenomena.

机构信息

Department of Experimental Biomedicine, Neuroscience and Advanced Diagnostics (Bi.N.D.), Sezione Di Fisiologia Umana G. Pagano, University of Palermo, Corso Tukory 129, Palermo, Italy.

出版信息

Cell Mol Neurobiol. 2022 Apr;42(3):533-543. doi: 10.1007/s10571-020-00963-7. Epub 2020 Sep 14.

Abstract

Extensive researches have deepened knowledge on the role of synaptic components in epileptogenesis, but limited attention has been devoted to the potential implication of the cytoskeleton. The study of the development of epilepsy and hyperexcitability states involves molecular, synaptic, and structural alterations of neuronal bioelectric activity. In this paper we aim to explore the neurobiological targets involved in microtubule functioning and cytoskeletal transport, i.e. how dynamic scaffolding of microtubules can influence neuronal morphology and excitability, in order to suggest a potential role for microtubule dynamics in the processes turning a normal neuronal network in a hyperexcited one. Pathophysiological alterations of microtubule dynamics inducing neurodegeneration, network remodeling and relative impairment on synaptic transmission were overviewed. Recent researches were reported on the phosphorylation state of microtubule-associated proteins such as tau in neurodegenerative diseases and epileptic states, but also on the effect of microtubule-active agents influencing cytoskeleton destabilization in epilepsy models. The manipulation of microtubule polymerization was found effective in the modulation of hyperexcitability. In addition, it was considered the importance of microtubules and related neurotrophic factors during neural development since they are essential for the formation of a properly functional neuronal network. Otherwise, this can lead to cognitive deficits, hyperexcitability phenomena and neurodevelopmental disorders. Lastly, we evaluated the role of microtubule dynamics on neuronal efficiency considering their importance in the transport of mitochondria, cellular elements fulfilling energy requirements for neuronal activity, and a putative influence on cannabinoid-mediated neuroprotection. This review provides novel perspectives for the implication of microtubule dynamics in the development of epileptic phenomena.

摘要

大量研究加深了人们对突触成分在癫痫发生中的作用的认识,但对细胞骨架的潜在影响关注有限。癫痫和过度兴奋状态的研究涉及神经元生物电活动的分子、突触和结构改变。本文旨在探讨涉及微管功能和细胞骨架运输的神经生物学靶点,即微管动态支架如何影响神经元形态和兴奋性,以提示微管动力学在将正常神经元网络转变为过度兴奋网络的过程中可能发挥作用。综述了微管动力学改变导致神经退行性变、网络重塑和突触传递相对损伤的病理生理改变。报道了微管相关蛋白如 tau 在神经退行性疾病和癫痫状态中的磷酸化状态的最新研究,以及影响癫痫模型中细胞骨架不稳定的微管活性药物的作用。微管聚合的操纵被发现对过度兴奋有调节作用。此外,还考虑了微管和相关神经营养因子在神经发育过程中的重要性,因为它们对于形成适当功能的神经元网络是必不可少的。否则,这可能导致认知缺陷、过度兴奋现象和神经发育障碍。最后,我们评估了微管动力学对神经元效率的作用,考虑到它们在运输线粒体、满足神经元活动能量需求的细胞成分以及对大麻素介导的神经保护的潜在影响方面的重要性。本综述为微管动力学在癫痫现象发展中的作用提供了新的视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6af6/11441243/50bb864d716b/10571_2020_963_Fig1_HTML.jpg

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