Structural insights into NDH-1 mediated cyclic electron transfer

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作者
Chunli Zhang
Jin Shuai
Zhaoxing Ran
Jiaohong Zhao
Zhenfang Wu
Rijing Liao
Jian Wu
Weimin Ma
Ming Lei
机构
[1] Shanghai Jiao Tong University School of Medicine,Ninth People’s Hospital
[2] Shanghai Institute of Precision Medicine,State Key Laboratory of Molecular Biology, CAS Center for Excellence in Molecular Cell Science, Shanghai Institute of Biochemistry and Cell Biology
[3] Phil River Technology,College of Life Sciences
[4] Chinese Academy of Sciences (CAS),Shanghai Key laboratory of Plant Molecular Sciences, College of Life Sciences
[5] University of Chinese Academy of Sciences,Key laboratory of Cell Differentiation and Apoptosis of Chinese Ministry of Education
[6] CAS,undefined
[7] Shanghai Normal University,undefined
[8] Shanghai Key Laboratory of Translational Medicine on Ear and Nose diseases,undefined
[9] Shanghai Normal University,undefined
[10] Shanghai Jiao Tong University School of Medicine,undefined
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摘要
NDH-1 is a key component of the cyclic-electron-transfer around photosystem I (PSI CET) pathway, an important antioxidant mechanism for efficient photosynthesis. Here, we report a 3.2-Å-resolution cryo-EM structure of the ferredoxin (Fd)-NDH-1L complex from the cyanobacterium Thermosynechococcus elongatus. The structure reveals three β-carotene and fifteen lipid molecules in the membrane arm of NDH-1L. Regulatory oxygenic photosynthesis-specific (OPS) subunits NdhV, NdhS and NdhO are close to the Fd-binding site whilst NdhL is adjacent to the plastoquinone (PQ) cavity, and they play different roles in PSI CET under high-light stress. NdhV assists in the binding of Fd to NDH-1L and accelerates PSI CET in response to short-term high-light exposure. In contrast, prolonged high-light irradiation switches on the expression and assembly of the NDH-1MS complex, which likely contains no NdhO to further accelerate PSI CET and reduce ROS production. We propose that this hierarchical mechanism is necessary for the survival of cyanobacteria in an aerobic environment.
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