神经元-神经胶质:了解细胞铜稳态,其串扰及其对神经退行性疾病的贡献

IF 2.9 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Metallomics Pub Date : 2020-11-06 DOI:10.1039/D0MT00168F
Ashima Bhattacharjee, Sandeepan Ghosh, Ajanta Chatterji and Kaustav Chakraborty
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引用次数: 4

摘要

近年来,铜在各器官系统中的稳态机制越来越受到重视。这是由于铜与广泛的遗传疾病有关,其中大多数涉及神经症状。这突出了铜的重要性及其在大脑等复杂器官系统中的严格调控。这需要了解铜的获取和输送到各种细胞类型的机制,克服血脑屏障施加的限制。本文综述了在中枢神经系统两种主要细胞——神经元和星形胶质细胞中铜稳态的机制和复杂性。研究了这些细胞对铜的摄取、结合和输出的机制。此外,它还提出了神经元和神经胶质铜稳态的共同和独特的方面,包括铜基传感器的研究。胶质细胞在内皮细胞和神经元之间充当铜供应的中介。它们具有像“海绵铜”一样为神经元供血的所有条件。另一方面,神经元需要铜来完成各种基本功能,如作为酶的辅助因子、突触发生、轴突延伸、突触后兴奋毒性抑制等。最后,我们还旨在了解各种铜稳态紊乱的神经元和神经胶质病理。神经胶质病理的病因学及其对神经病理的贡献,反之亦然,是与铜代谢紊乱相关的神经病理复杂性的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Neuron-glia: understanding cellular copper homeostasis, its cross-talk and their contribution towards neurodegenerative diseases

Neuron-glia: understanding cellular copper homeostasis, its cross-talk and their contribution towards neurodegenerative diseases

Over the years, the mechanism of copper homeostasis in various organ systems has gained importance. This is owing to the involvement of copper in a wide range of genetic disorders, most of them involving neurological symptoms. This highlights the importance of copper and its tight regulation in a complex organ system like the brain. It demands understanding the mechanism of copper acquisition and delivery to various cell types overcoming the limitation imposed by the blood brain barrier. The present review aims to investigate the existing work to understand the mechanism and complexity of cellular copper homeostasis in the two major cell types of the CNS – the neurons and the astrocytes. It investigates the mechanism of copper uptake, incorporation and export by these cell types. Furthermore, it brings forth the common as well as the exclusive aspects of neuronal and glial copper homeostasis including the studies from copper-based sensors. Glia act as a mediator of copper supply between the endothelium and the neurons. They possess all the qualifications of acting as a ‘copper-sponge’ for supply to the neurons. The neurons, on the other hand, require copper for various essential functions like incorporation as a cofactor for enzymes, synaptogenesis, axonal extension, inhibition of postsynaptic excitotoxicity, etc. Lastly, we also aim to understand the neuronal and glial pathology in various copper homeostasis disorders. The etiology of glial pathology and its contribution towards neuronal pathology and vice versa underlies the complexity of the neuropathology associated with the copper metabolism disorders.

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来源期刊
Metallomics
Metallomics 生物-生化与分子生物学
CiteScore
7.00
自引率
5.90%
发文量
87
审稿时长
1 months
期刊介绍: Global approaches to metals in the biosciences
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