Department of Astrocyte Biology & Neurodegeneration, Netherlands Institute for Neuroscience, Institute of the Royal Netherlands Academy of Arts and Sciences, Amsterdam, The Netherlands.
Prog Neurobiol. 2011 Mar;93(3):421-43. doi: 10.1016/j.pneurobio.2011.01.005. Epub 2011 Jan 8.
Glial fibrillary acidic protein (GFAP) is the main intermediate filament protein in mature astrocytes, but also an important component of the cytoskeleton in astrocytes during development. Major recent developments in astrocyte biology and the discovery of novel intermediate filament functions enticed the interest in the function of GFAP. The discovery of various GFAP splice variants gave an additional boost to explore this protein in more detail. The structural role of GFAP in astrocytes has been widely accepted for a long time, but over the years, GFAP has been shown to be involved in astrocyte functions, which are important during regeneration, synaptic plasticity and reactive gliosis. Moreover, different subpopulations of astrocytes have been identified, which are likely to have distinctive tasks in brain physiology and pathology, and which are not only classified by their spatial and temporal appearance, but also by their specific expression of intermediate filaments, including distinct GFAP isoforms. The presence of these isoforms enhances the complexity of the astrocyte cytoskeleton and is likely to underlie subtype specific functions. In this review we discuss the versatility of the GFAP cytoskeletal network from gene to function with a focus on astrocytes during human brain development, aging and disease.
胶质纤维酸性蛋白(GFAP)是成熟星形胶质细胞中的主要中间丝蛋白,但也是发育过程中星形胶质细胞细胞骨架的重要组成部分。星形胶质细胞生物学的主要最新进展和新型中间丝功能的发现激发了人们对 GFAP 功能的兴趣。GFAP 各种剪接变体的发现为更详细地研究该蛋白提供了额外的动力。GFAP 在星形胶质细胞中的结构作用长期以来已被广泛接受,但多年来,GFAP 已被证明参与星形胶质细胞的功能,这些功能在再生、突触可塑性和反应性神经胶质增生过程中很重要。此外,已经鉴定出不同的星形胶质细胞亚群,这些亚群可能在大脑生理学和病理学中具有独特的任务,它们不仅通过其空间和时间出现来分类,而且还通过其中间丝的特定表达,包括不同的 GFAP 同工型来分类。这些同工型的存在增加了星形胶质细胞细胞骨架的复杂性,并可能为特定亚型的功能提供基础。在这篇综述中,我们讨论了从基因到功能的 GFAP 细胞骨架网络的多功能性,重点是人类大脑发育、衰老和疾病期间的星形胶质细胞。