神经丝生物物理学:从结构到生物力学

IF 3.1 3区 生物学 Q3 CELL BIOLOGY
Erika A. Ding, Sanjay Kumar
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引用次数: 0

摘要

神经丝(NFs)是一种多亚基、神经元特异性中间丝,由直径 10 纳米的丝 "核心 "和一层长的内在无序蛋白(IDP)"尾巴 "组成。NFs 被认为在发育过程中调节轴突口径,然后稳定成熟的轴突,NF 亚基的失调、突变和聚集在多种神经系统疾病中表现突出。四十多年来,生化、细胞生物学和小鼠遗传学等领域的大量研究深入揭示了 NF 的结构、力学和功能。这些研究极大地促进了我们对轴突生理学和疾病中 NF 功能的集体理解。然而,近年来,人们对 NF 亚基蛋白在两个新的方面再次产生了兴趣:作为潜在的基于血液和脑脊液的神经元损伤生物标志物,以及作为具有引人入胜特性的 IDP 模型。在此,我们回顾了 NF 结构和功能的既定原理和最新发现。在可能的情况下,我们将这些发现置于 NF 组装、相互作用和轴突力学贡献的生物物理学背景中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Neurofilament Biophysics: from Structure to Biomechanics

Neurofilaments (NFs) are multi-subunit, neuron-specific intermediate filaments consisting of a 10-nm diameter filament “core” surrounded by a layer of long intrinsically disordered protein (IDP) “tails.” NFs are thought to regulate axonal caliber during development and then stabilize the mature axon, with NF subunit misregulation, mutation, and aggregation featuring prominently in multiple neurological diseases. The field's understanding of NF structure, mechanics, and function has been deeply informed by a rich variety of biochemical, cell biological, and mouse genetic studies spanning more than four decades. These studies have contributed much to our collective understanding of NF function in axonal physiology and disease. In recent years, however, there has been a resurgence of interest in NF subunit proteins in two new contexts: as potential blood- and cerebrospinal fluid-based biomarkers of neuronal damage, and as model IDPs with intriguing properties. Here we review established principles and more recent discoveries in NF structure and function. Where possible, we place these findings in the context of biophysics of NF assembly, interaction, and contributions to axonal mechanics.

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来源期刊
Molecular Biology of the Cell
Molecular Biology of the Cell 生物-细胞生物学
CiteScore
6.00
自引率
6.10%
发文量
402
审稿时长
2 months
期刊介绍: MBoC publishes research articles that present conceptual advances of broad interest and significance within all areas of cell, molecular, and developmental biology. We welcome manuscripts that describe advances with applications across topics including but not limited to: cell growth and division; nuclear and cytoskeletal processes; membrane trafficking and autophagy; organelle biology; quantitative cell biology; physical cell biology and mechanobiology; cell signaling; stem cell biology and development; cancer biology; cellular immunology and microbial pathogenesis; cellular neurobiology; prokaryotic cell biology; and cell biology of disease.
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