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驱动蛋白Kif5A在轴突中线粒体定位中的独特功能。

Unique function of Kinesin Kif5A in localization of mitochondria in axons.

作者信息

Campbell Philip D, Shen Kimberle, Sapio Matthew R, Glenn Thomas D, Talbot William S, Marlow Florence L

机构信息

Departments of Developmental and Molecular Biology, and.

Department of Developmental Biology, Stanford University School of Medicine, Stanford, California 94305.

出版信息

J Neurosci. 2014 Oct 29;34(44):14717-32. doi: 10.1523/JNEUROSCI.2770-14.2014.

Abstract

Mutations in Kinesin proteins (Kifs) are linked to various neurological diseases, but the specific and redundant functions of the vertebrate Kifs are incompletely understood. For example, Kif5A, but not other Kinesin-1 heavy-chain family members, is implicated in Charcot-Marie-Tooth disease (CMT) and Hereditary Spastic Paraplegia (HSP), but the mechanism of its involvement in the progressive axonal degeneration characteristic of these diseases is not well understood. We report that zebrafish kif5Aa mutants exhibit hyperexcitability, peripheral polyneuropathy, and axonal degeneration reminiscent of CMT and HSP. Strikingly, although kif5 genes are thought to act largely redundantly in other contexts, and zebrafish peripheral neurons express five kif5 genes, kif5Aa mutant peripheral sensory axons lack mitochondria and degenerate. We show that this Kif5Aa-specific function is cell autonomous and is mediated by its C-terminal tail, as only Kif5Aa and chimeric motors containing the Kif5Aa C-tail can rescue deficits. Finally, concurrent loss of the kinesin-3, kif1b, or its adaptor kbp, exacerbates axonal degeneration via a nonmitochondrial cargo common to Kif5Aa. Our results shed light on Kinesin complexity and reveal determinants of specific Kif5A functions in mitochondrial transport, adaptor binding, and axonal maintenance.

摘要

驱动蛋白(Kifs)的突变与多种神经疾病相关,但脊椎动物Kifs的具体功能和冗余功能尚未完全明确。例如,Kif5A而非其他驱动蛋白-1重链家族成员与夏科-马里-图斯病(CMT)和遗传性痉挛性截瘫(HSP)有关,但其参与这些疾病特征性进行性轴突变性的机制尚不清楚。我们报道斑马鱼kif5Aa突变体表现出过度兴奋、周围性多发性神经病和轴突变性,类似于CMT和HSP。令人惊讶的是,尽管kif5基因在其他情况下被认为主要发挥冗余作用,且斑马鱼周围神经元表达五个kif5基因,但kif5Aa突变体的周围感觉轴突缺乏线粒体并发生退化。我们表明,这种Kif5Aa特异性功能是细胞自主的,由其C末端尾巴介导,因为只有Kif5Aa和含有Kif5Aa C末端尾巴的嵌合马达才能挽救缺陷。最后,驱动蛋白-3、kif1b或其衔接蛋白kbp的同时缺失,通过Kif5Aa共有的非线粒体货物加剧轴突变性。我们的结果揭示了驱动蛋白的复杂性,并揭示了Kif5A在线粒体运输、衔接蛋白结合和轴突维持中特定功能的决定因素。

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