Re-evaluating the actin-dependence of spectraplakin functions during axon growth and maintenance

IF 2.7 4区 医学 Q2 DEVELOPMENTAL BIOLOGY Developmental Neurobiology Pub Date : 2022-03-25 DOI:10.1002/dneu.22873
Yue Qu, Juliana Alves-Silva, Kriti Gupta, Ines Hahn, Jill Parkin, Natalia Sánchez-Soriano, Andreas Prokop
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引用次数: 2

Abstract

Axons are the long and slender processes of neurons constituting the biological cables that wire the nervous system. The growth and maintenance of axons require loose microtubule bundles that extend through their entire length. Understanding microtubule regulation is therefore an essential aspect of axon biology. Key regulators of neuronal microtubules are the spectraplakins, a well-conserved family of cytoskeletal cross-linkers that underlie neuropathies in mouse and humans. Spectraplakin deficiency in mouse or Drosophila causes severe decay of microtubule bundles and reduced axon growth. The underlying mechanisms are best understood for Drosophila’s spectraplakin Short stop (Shot) and believed to involve cytoskeletal cross-linkage: Shot's binding to microtubules and Eb1 via its C-terminus has been thoroughly investigated, whereas its F-actin interaction via N-terminal calponin homology (CH) domains is little understood. Here, we have gained new understanding by showing that the F-actin interaction must be finely balanced: altering the properties of F-actin networks or deleting/exchanging Shot's CH domains induces changes in Shot function—with a Lifeact-containing Shot variant causing remarkable remodeling of neuronal microtubules. In addition to actin-microtubule (MT) cross-linkage, we find strong indications that Shot executes redundant MT bundle-promoting roles that are F-actin-independent. We argue that these likely involve the neuronal Shot-PH isoform, which is characterized by a large, unexplored central plakin repeat region (PRR) similarly existing also in mammalian spectraplakins.

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重新评估轴突生长和维持过程中谱板功能的动作依赖性
轴突是神经元的细长突起,构成了连接神经系统的生物电缆。轴突的生长和维持需要贯穿其整个长度的松散微管束。因此,理解微管调控是轴突生物学的一个重要方面。神经微管的关键调节因子是谱蛋白,这是一个保守的细胞骨架交联剂家族,是小鼠和人类神经病变的基础。在小鼠或果蝇中,谱斑蛋白缺乏会导致微管束的严重衰退和轴突生长的减少。我们对果蝇的谱蛋白短停(Shot)的潜在机制了解得最好,并认为它与细胞骨架交联有关:Shot通过其c端与微管和Eb1的结合已被彻底研究,而其通过n端钙钙蛋白同源结构域(CH)与f -肌动蛋白的相互作用却知之甚少。在这里,我们通过表明f -肌动蛋白相互作用必须精细平衡而获得了新的理解:改变f -肌动蛋白网络的特性或删除/交换Shot的CH结构域会引起Shot功能的变化,其中含有lifeact的Shot变体会引起神经元微管的显著重塑。除了肌动蛋白-微管(MT)交叉连锁外,我们还发现了强有力的迹象表明,Shot执行了与f -肌动蛋白无关的冗余MT束促进作用。我们认为这些可能涉及神经元的Shot-PH亚型,其特征是一个大的,未探索的中央斑块重复区域(PRR),类似于哺乳动物光谱斑块蛋白。
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来源期刊
Developmental Neurobiology
Developmental Neurobiology 生物-发育生物学
CiteScore
6.50
自引率
0.00%
发文量
45
审稿时长
4-8 weeks
期刊介绍: Developmental Neurobiology (previously the Journal of Neurobiology ) publishes original research articles on development, regeneration, repair and plasticity of the nervous system and on the ontogeny of behavior. High quality contributions in these areas are solicited, with an emphasis on experimental as opposed to purely descriptive work. The Journal also will consider manuscripts reporting novel approaches and techniques for the study of the development of the nervous system as well as occasional special issues on topics of significant current interest. We welcome suggestions on possible topics from our readers.
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