Center for Ultrafast Science and Technology, School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.
Department of Physics, Department of Chemistry and Biochemistry, Programs of Biophysics, Chemical Physics, and Biochemistry, The Ohio State University, Columbus, Ohio 43210, United States.
J Phys Chem Lett. 2022 Apr 14;13(14):3202-3208. doi: 10.1021/acs.jpclett.2c00057. Epub 2022 Apr 4.
Short-range protein electron transfer (ET) is crucially important in light-induced biological processes such as in photoenzymes and photoreceptors and often occurs on time scales similar to those of environment fluctuations, leading to a coupled dynamic process. Herein, we use semiquinone flavodoxin to characterize the ultrafast photoinduced redox cycle of the wild type and seven mutants by ultrafast spectroscopy. We have found that the forward and backward ET dynamics show stretched behaviors in a few picoseconds (1-5 ps), indicating a coupling with the local protein fluctuations. By comparison with the results from semiquinone flavodoxin, we find that the electronic coupling is crucial to the ET rates. With our new nonergodic model, we obtain smaller values of the outer reorganization energy (λ) of environment fluctuations and the reaction free energy force (Δ), a signature of nonequilibrium ET dynamics.
短程蛋白质电子转移(ET)在光诱导的生物过程中至关重要,例如在光酶和光受体中,并且通常发生在与环境波动相似的时间尺度上,导致耦合的动态过程。在此,我们使用半醌黄素蛋白来通过超快光谱法表征野生型和七种突变体的超快光诱导氧化还原循环。我们发现,向前和向后 ET 动力学在几皮秒(1-5 ps)内表现出拉伸行为,表明与局部蛋白质波动耦合。通过与半醌黄素蛋白的结果进行比较,我们发现电子耦合对 ET 速率至关重要。通过我们的新非遍历模型,我们得到了较小的环境波动的外部重组能(λ)和反应自由能力(Δ)值,这是非平衡 ET 动力学的特征。