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GTP结合蛋白在微生物机械化学运动中的作用及其形成丝状结构的潜力。

The role of GTP-binding proteins in mechanochemical movements of microorganisms and their potential to form filamentous structures.

作者信息

Mikulík K

机构信息

Institute of Microbiology, Academy of Sciences of the Czech Republic, Prague, Czech Republic.

出版信息

Folia Microbiol (Praha). 1998;43(4):339-52. doi: 10.1007/BF02818572.

Abstract

Prokaryotic cells contain proteins which form extended chains or multimers that oscillate between monomers and oligomers of varying length. Hydrolysis of nucleoside triphosphates combined with site-specific disposition of substrates and products to monomers and multimers is the driving force of dynamic instability of these molecules. Polymeric structures are connected in some manner to a variety of signaling systems that adhere to the polymeric matrix, including the GTP-binding protein(s), protein kinases and phosphatases, and other proteins or systems that communicate between the cytoplasmic membrane and the cytosol. Flexible organization allowing regulated dynamic movement is one of the key elements in all living cells. In eukaryotic cells actin and tubulin are the two main components of dynamically controlled spatial system. These proteins are noteworthy for their ability to polymerize, reversibly, into filaments or microtubules in association with hydrolysis of ATP or GTP, respectively. As such, they regulate most of the mechanics of cell movement including cell division, cell differentiation, phagocytosis and other dynamic phenomena. Recent evidence revealed that microbial cells create functional domains at specific sites of the cells and can form cytoplasmic tubules and fibers.

摘要

原核细胞含有能形成延伸链或多聚体的蛋白质,这些蛋白质在不同长度的单体和寡聚体之间振荡。核苷三磷酸的水解,以及底物和产物在单体和多聚体上的位点特异性分布,是这些分子动态不稳定性的驱动力。聚合结构以某种方式与多种附着于聚合基质的信号系统相连,这些信号系统包括GTP结合蛋白、蛋白激酶和磷酸酶,以及其他在细胞质膜和细胞质之间传递信息的蛋白质或系统。允许调节动态运动的灵活组织是所有活细胞的关键要素之一。在真核细胞中,肌动蛋白和微管蛋白是动态控制空间系统的两个主要组成部分。这些蛋白质因其能够分别与ATP或GTP水解相关联,可逆地聚合成细丝或微管的能力而值得关注。因此,它们调节细胞运动的大部分力学过程,包括细胞分裂、细胞分化、吞噬作用和其他动态现象。最近的证据表明,微生物细胞在细胞的特定部位形成功能域,并能形成细胞质小管和纤维。

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