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光依赖和氧化还原依赖力谱揭示,当一个伴侣准备好进行电子转移时,质体蓝素和植物光系统 I 之间的相互作用是有利的。

Light- and Redox-Dependent Force Spectroscopy Reveals that the Interaction between Plastocyanin and Plant Photosystem I Is Favored when One Partner Is Ready for Electron Transfer.

机构信息

Institute for Bioengineering of Catalonia (IBEC), The Barcelona Institute of Science and Technology, Baldiri Reixac 10-12, Barcelona 08028, Spain.

CIBER-BBN, ISCIII, Barcelona 08028, Spain.

出版信息

ACS Nano. 2022 Sep 27;16(9):15155-15164. doi: 10.1021/acsnano.2c06454. Epub 2022 Sep 6.

DOI:10.1021/acsnano.2c06454
PMID:36067071
Abstract

Photosynthesis is a fundamental process that converts photons into chemical energy, driven by large protein complexes at the thylakoid membranes of plants, cyanobacteria, and algae. In plants, water-soluble plastocyanin (Pc) is responsible for shuttling electrons between cytochrome complex and the photosystem I (PSI) complex in the photosynthetic electron transport chain (PETC). For an efficient turnover, a transient complex must form between PSI and Pc in the PETC, which implies a balance between specificity and binding strength. Here, we studied the binding frequency and the unbinding force between suitably oriented plant PSI and Pc under redox control using single molecule force spectroscopy (SMFS). The binding frequency (observation of binding-unbinding events) between PSI and Pc depends on their respective redox states. The interaction between PSI and Pc is independent of the redox state of PSI when Pc is reduced, and it is disfavored in the dark (reduced P700) when Pc is oxidized. The frequency of interaction between PSI and Pc is higher when at least one of the partners is in a redox state ready for electron transfer (ET), and the post-ET situation (PSI-Pc) leads to lower binding. In addition, we show that the binding of ET-ready Pc to PSI can be regulated externally by Mg ions in solution.

摘要

光合作用是一种将光子转化为化学能的基本过程,由植物、蓝藻和藻类类囊体膜上的大型蛋白质复合物驱动。在植物中,水溶性质体蓝素(Pc)负责在光合电子传递链(PETC)中在细胞色素复合物和光系统 I(PSI)复合物之间传递电子。为了实现有效的周转率,在 PETC 中必须在 PSI 和 Pc 之间形成瞬态复合物,这意味着特异性和结合强度之间需要达到平衡。在这里,我们使用单分子力谱(SMFS)研究了在氧化还原控制下适当地向植物 PSI 和 Pc 之间形成的结合频率和非结合力。PSI 和 Pc 之间的结合频率(观察结合-非结合事件)取决于它们各自的氧化还原状态。当 Pc 还原时,PSI 和 Pc 之间的相互作用独立于 PSI 的氧化还原状态,而在黑暗中(还原的 P700)当 Pc 氧化时,这种相互作用是不利的。当至少一个伙伴处于电子转移(ET)就绪的氧化还原状态时,PSI 和 Pc 之间的相互作用频率更高,而 ET 后状态(PSI-Pc)导致结合降低。此外,我们还表明,溶液中 Mg 离子可以外部调节 ET 就绪的 Pc 与 PSI 的结合。

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