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两种天然 α-羧化酶体中货物 Rubisco 的结构和组装。

Structure and assembly of cargo Rubisco in two native α-carboxysomes.

机构信息

Division of Structural Biology, Wellcome Centre for Human Genetics, University of Oxford, Oxford, UK.

Institute of Systems, Molecular and Integrative Biology, University of Liverpool, Liverpool, UK.

出版信息

Nat Commun. 2022 Jul 25;13(1):4299. doi: 10.1038/s41467-022-32004-w.

Abstract

Carboxysomes are a family of bacterial microcompartments in cyanobacteria and chemoautotrophs. They encapsulate Ribulose 1,5-bisphosphate carboxylase/oxygenase (Rubisco) and carbonic anhydrase catalyzing carbon fixation inside a proteinaceous shell. How Rubisco complexes pack within the carboxysomes is unknown. Using cryo-electron tomography, we determine the distinct 3D organization of Rubisco inside two distant α-carboxysomes from a marine α-cyanobacterium Cyanobium sp. PCC 7001 where Rubiscos are organized in three concentric layers, and from a chemoautotrophic bacterium Halothiobacillus neapolitanus where they form intertwining spirals. We further resolve the structures of native Rubisco as well as its higher-order assembly at near-atomic resolutions by subtomogram averaging. The structures surprisingly reveal that the authentic intrinsically disordered linker protein CsoS2 interacts with Rubiscos in native carboxysomes but functions distinctively in the two α-carboxysomes. In contrast to the uniform Rubisco-CsoS2 association in the Cyanobium α-carboxysome, CsoS2 binds only to the Rubiscos close to the shell in the Halo α-carboxysome. Our findings provide critical knowledge of the assembly principles of α-carboxysomes, which may aid in the rational design and repurposing of carboxysome structures for new functions.

摘要

羧基体是蓝藻和化能自养生物中的一类细菌微区室。它们将核酮糖 1,5-二磷酸羧化酶/加氧酶(Rubisco)和碳酸酐酶包裹在蛋白质壳内,催化碳固定。Rubisco 复合物如何在羧基体内部包装尚不清楚。我们使用冷冻电子断层扫描技术,确定了来自海洋 α-蓝藻 Cyanobium sp. PCC 7001 的两个遥远的 α-羧基体中 Rubisco 的独特 3D 组织,其中 Rubiscos 排列在三个同心层中,以及来自化能自养细菌 Halothiobacillus neapolitanus 的 Rubisco,它们形成交织的螺旋。我们进一步通过亚断层平均法解析了天然 Rubisco 及其在近原子分辨率下的高级组装结构。这些结构令人惊讶地表明,真正的内在无序连接蛋白 CsoS2 在天然羧基体中与 Rubisco 相互作用,但在两种 α-羧基体中功能明显不同。与 Cyanobium α-羧基体中均匀的 Rubisco-CsoS2 结合相反,CsoS2 仅与 Halo α-羧基体中靠近壳的 Rubiscos 结合。我们的发现提供了 α-羧基体组装原理的关键知识,这可能有助于合理设计和重新利用羧基体结构以实现新功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6888/9314367/8f369384d0b9/41467_2022_32004_Fig1_HTML.jpg

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