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两个新的羧酶体五聚体蛋白的高分辨率晶体结构揭示了远缘蓝藻物种中 CcmL 同源物的高度结构保守性。

Two new high-resolution crystal structures of carboxysome pentamer proteins reveal high structural conservation of CcmL orthologs among distantly related cyanobacterial species.

机构信息

United States Department of Energy - Joint Genome Institute, Walnut Creek, CA, 94598, USA.

出版信息

Photosynth Res. 2013 Nov;118(1-2):9-16. doi: 10.1007/s11120-013-9909-z. Epub 2013 Aug 15.

DOI:10.1007/s11120-013-9909-z
PMID:23949415
Abstract

Cyanobacteria have evolved a unique carbon fixation organelle known as the carboxysome that compartmentalizes the enzymes RuBisCO and carbonic anhydrase. This effectively increases the local CO2 concentration at the active site of RuBisCO and decreases its relatively unproductive side reaction with oxygen. Carboxysomes consist of a protein shell composed of hexameric and pentameric proteins arranged in icosahedral symmetry. Facets composed of hexameric proteins are connected at the vertices by pentameric proteins. Structurally homologous pentamers and hexamers are also found in heterotrophic bacteria where they form architecturally related microcompartments such as the Eut and Pdu organelles for the metabolism of ethanolamine and propanediol, respectively. Here we describe two new high-resolution structures of the pentameric shell protein CcmL from the cyanobacteria Thermosynechococcus elongatus and Gloeobacter violaceus and provide detailed analysis of their characteristics and comparison with related shell proteins.

摘要

蓝细菌已经进化出一种独特的碳固定细胞器,称为羧基体,它将 RuBisCO 和碳酸酐酶等酶分隔开来。这有效地增加了 RuBisCO 活性位点的局部 CO2 浓度,并减少了其与氧气的相对非生产性副反应。羧基体由一个由六聚体和五聚体蛋白组成的蛋白壳组成,这些蛋白以二十面体对称排列。由六聚体蛋白组成的面在顶点处由五聚体蛋白连接。结构同源的五聚体和六聚体也存在于异养细菌中,在那里它们形成结构相关的微区室,如用于乙醇胺和丙二醇代谢的 Eut 和 Pdu 细胞器。在这里,我们描述了来自嗜热盐杆菌和紫色硫细菌的蓝细菌 elongatus 的五聚体壳蛋白 CcmL 的两个新的高分辨率结构,并对它们的特征进行了详细分析,并与相关的壳蛋白进行了比较。

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本文引用的文献

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