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痉挛性截瘫蛋白spastin的秀丽隐杆线虫同源物可拆解微管。

The C. elegans homologue of the spastic paraplegia protein, spastin, disassembles microtubules.

作者信息

Matsushita-Ishiodori Yuka, Yamanaka Kunitoshi, Ogura Teru

机构信息

Division of Molecular Cell Biology, Institute of Molecular Embryology and Genetics, Kumamoto University, 2-2-1 Honjo, Kumamoto 860-0811, Japan.

出版信息

Biochem Biophys Res Commun. 2007 Jul 20;359(1):157-62. doi: 10.1016/j.bbrc.2007.05.086. Epub 2007 May 22.

Abstract

Mutations in human spastin (SPG4) cause an autosomal dominant form of hereditary spastic paraplegia. Sequence analysis revealed that spastin contains the AAA (ATPases associated with diverse cellular activities) domain in the C-terminal region. Recently, it was reported that spastin interacts dynamically with microtubules and displays microtubule-severing activity. A plausible Caenorhabditis elegans homologue of spastin (SPAS-1) has been identified by homology search and phylogenetic analyses. To understand the function of the spastin homologue, we characterized the spas-1 deletion mutant and analyzed spas-1 expression regulation in C. elegans. SPAS-1 was localized with cytoskeletons at the perinuclear region. We found that microtubules were intensely stained at the centrosomal region in the deletion mutant. Furthermore, overexpression of SPAS-1 caused disassembly of microtubule network in cultured cells, while ATPase-deficient SPAS-1 did not. These results indicate that C. elegans SPAS-1 plays an important role in microtubule dynamics. We also found that two kinds of products were generated from spas-1 by alternative splicing in a developmental stage-dependent manner.

摘要

人类痉挛素(SPG4)的突变会导致常染色体显性遗传性痉挛性截瘫。序列分析显示,痉挛素在其C端区域含有AAA(与多种细胞活动相关的ATP酶)结构域。最近,有报道称痉挛素能与微管发生动态相互作用,并表现出微管切断活性。通过同源性搜索和系统发育分析,已经鉴定出一种可能的线虫痉挛素同源物(SPAS-1)。为了了解痉挛素同源物的功能,我们对spas-1缺失突变体进行了表征,并分析了秀丽隐杆线虫中spas-1的表达调控。SPAS-1定位于细胞核周围区域的细胞骨架上。我们发现在缺失突变体中,微管在中心体区域被强烈染色。此外,SPAS-1的过表达导致培养细胞中的微管网络解体,而ATP酶缺陷型的SPAS-1则不会。这些结果表明,线虫SPAS-1在微管动态变化中发挥着重要作用。我们还发现,通过可变剪接,spas-1以发育阶段依赖的方式产生两种产物。

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