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通过偶联交联和质谱法研究藻胆体亚基相互作用界面

Investigation of phycobilisome subunit interaction interfaces by coupled cross-linking and mass spectrometry.

作者信息

Tal Ofir, Trabelcy Beny, Gerchman Yoram, Adir Noam

机构信息

From the Schulich Faculty of Chemistry, Technion-Israel Institute of Technology, Haifa, 32000, Israel and.

the Department of Biology, Faculty of Natural Sciences, University of Haifa at Oranim, 36006 Tivon, Israel.

出版信息

J Biol Chem. 2014 Nov 28;289(48):33084-97. doi: 10.1074/jbc.M114.595942. Epub 2014 Oct 8.

DOI:10.1074/jbc.M114.595942
PMID:25296757
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4246069/
Abstract

The phycobilisome (PBS) is an extremely large light-harvesting complex, common in cyanobacteria and red algae, composed of rods and core substructures. These substructures are assembled from chromophore-bearing phycocyanin and allophycocyanin subunits, nonpigmented linker proteins and in some cases additional subunits. To date, despite the determination of crystal structures of isolated PBS components, critical questions regarding the interaction and energy flow between rods and core are still unresolved. Additionally, the arrangement of minor PBS components located inside the core cylinders is unknown. Different models of the general architecture of the PBS have been proposed, based on low resolution images from electron microscopy or high resolution crystal structures of isolated components. This work presents a model of the assembly of the rods onto the core arrangement and for the positions of inner core components, based on cross-linking and mass spectrometry analysis of isolated, functional intact Thermosynechococcus vulcanus PBS, as well as functional cross-linked adducts. The experimental results were utilized to predict potential docking interactions of different protein pairs. Combining modeling and cross-linking results, we identify specific interactions within the PBS subcomponents that enable us to suggest possible functional interactions between the chromophores of the rods and the core and improve our understanding of the assembly, structure, and function of PBS.

摘要

藻胆体(PBS)是一种极其庞大的捕光复合体,常见于蓝细菌和红藻中,由棒状体和核心亚结构组成。这些亚结构由含发色团的藻蓝蛋白和别藻蓝蛋白亚基、无色素连接蛋白以及某些情况下的其他亚基组装而成。迄今为止,尽管已确定了分离的PBS组分的晶体结构,但关于棒状体和核心之间的相互作用及能量流动的关键问题仍未解决。此外,位于核心圆柱体内部的次要PBS组分的排列情况也未知。基于电子显微镜的低分辨率图像或分离组分的高分辨率晶体结构,已提出了PBS总体结构的不同模型。这项工作基于对分离的、功能完整的嗜热栖热菌PBS以及功能性交联加合物的交联和质谱分析,提出了棒状体在核心排列上的组装模型以及核心内部组分的位置模型。实验结果被用于预测不同蛋白质对的潜在对接相互作用。结合建模和交联结果,我们确定了PBS亚组分内的特定相互作用,这使我们能够提出棒状体和核心发色团之间可能的功能相互作用,并增进我们对PBS组装、结构和功能的理解。

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本文引用的文献

1
Structural studies show energy transfer within stabilized phycobilisomes independent of the mode of rod-core assembly.结构研究表明,在稳定的藻胆体中存在能量转移,且与棒状核心组装模式无关。
Biochim Biophys Acta. 2014 Mar;1837(3):385-95. doi: 10.1016/j.bbabio.2013.12.014. Epub 2014 Jan 6.
2
Molecular mechanism of photoactivation and structural location of the cyanobacterial orange carotenoid protein.蓝藻橙色类胡萝卜素蛋白的光激活分子机制和结构定位。
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Phycobilisomes supply excitations to both photosystems in a megacomplex in cyanobacteria.藻胆体在蓝细菌的一个超大复合物中将激发能供给两个光系统。
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Phycobilisome: architecture of a light-harvesting supercomplex.藻胆体:一个捕光超复合体的结构。
Photosynth Res. 2013 Oct;116(2-3):265-76. doi: 10.1007/s11120-013-9905-3. Epub 2013 Oct 1.
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Light-harvesting in photosystem I.光在光系统 I 的捕获。
Photosynth Res. 2013 Oct;116(2-3):153-66. doi: 10.1007/s11120-013-9838-x. Epub 2013 May 4.
6
Light harvesting in photosystem II.光在光系统 II 中的捕获。
Photosynth Res. 2013 Oct;116(2-3):251-63. doi: 10.1007/s11120-013-9824-3. Epub 2013 Apr 18.
7
Understanding the electronic energy transfer pathways in the trimeric and hexameric aggregation state of cyanobacteria phycocyanin within the framework of Förster theory.在福斯特理论的框架下理解藻蓝蛋白三聚体和六聚体聚集态中的电子能量转移途径。
J Comput Chem. 2013 May 5;34(12):1005-12. doi: 10.1002/jcc.23221. Epub 2013 Jan 8.
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Allophycocyanin and phycocyanin crystal structures reveal facets of phycobilisome assembly.别藻蓝蛋白和藻蓝蛋白晶体结构揭示了藻胆体组装的各个方面。
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