Institute for Bioengineering of Catalonia (IBEC), The Barcelona Institute for Science and Technology (BIST), Barcelona, Spain.
CIBER-BBN, ISCIII, Barcelona, Spain.
Nat Commun. 2022 Nov 19;13(1):7100. doi: 10.1038/s41467-022-34809-1.
It has been recently shown that electron transfer between mitochondrial cytochrome c and the cytochrome c subunit of the cytochrome bc can proceed at long-distance through the aqueous solution. Cytochrome c is thought to adjust its activity by changing the affinity for its partners via Tyr48 phosphorylation, but it is unknown how it impacts the nanoscopic environment, interaction forces, and long-range electron transfer. Here, we constrain the orientation and separation between cytochrome c and cytochrome c or the phosphomimetic Y48pCMF cytochrome c, and deploy an array of single-molecule, bulk, and computational methods to investigate the molecular mechanism of electron transfer regulation by cytochrome c phosphorylation. We demonstrate that phosphorylation impairs long-range electron transfer, shortens the long-distance charge conduit between the partners, strengthens their interaction, and departs it from equilibrium. These results unveil a nanoscopic view of the interaction between redox protein partners in electron transport chains and its mechanisms of regulation.
最近有研究表明,线粒体细胞色素 c 和细胞色素 bc 亚基的细胞色素 c 之间的电子转移可以通过水相在长距离进行。人们认为细胞色素 c 通过 Tyr48 磷酸化改变其与伴侣的亲和力来调节其活性,但尚不清楚它如何影响纳米级环境、相互作用力和长距离电子转移。在这里,我们限制细胞色素 c 和细胞色素 c 或磷酸模拟 Y48pCMF 细胞色素 c 之间的取向和分离,并部署一系列单分子、体相和计算方法来研究细胞色素 c 磷酸化调节电子转移的分子机制。我们证明磷酸化会损害长距离电子转移,缩短伙伴之间的长程电荷导管,增强它们的相互作用,并使它们偏离平衡。这些结果揭示了电子传递链中氧化还原蛋白伴侣之间相互作用的纳米视图及其调节机制。