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Ultrafast solvation dynamics at binding and active sites of photolyases

机译:超快速溶剂化动力学在光裂解酶的结合和活性位点

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摘要

Dynamic solvation at binding and active sites is critical to protein recognition and enzyme catalysis. We report here the complete characterization of ultrafast solvation dynamics at the recognition site of photoantenna molecule and at the active site of cofactor/substrate in enzyme photolyase by examining femtosecond-resolved fluorescence dynamics and the entire emission spectra. With direct use of intrinsic antenna and cofactor chromophores, we observed the local environment relaxation on the time scales from a few picoseconds to nearly a nanosecond. Unlike conventional solvation where the Stokes shift is apparent, we observed obvious spectral shape changes with the minor, small, and large spectral shifts in three function sites. These emission profile changes directly reflect the modulation of chromophore’s excited states by locally constrained protein and trapped-water collective motions. Such heterogeneous dynamics continuously tune local configurations to optimize photolyase’s function through resonance energy transfer from the antenna to the cofactor for energy efficiency and then electron transfer between the cofactor and the substrate for repair of damaged DNA. Such unusual solvation and synergetic dynamics should be general in function sites of proteins.
机译:结合位点和活性位点的动态溶剂化对于蛋白质识别和酶催化至关重要。我们在这里报告通过检查飞秒分辨的荧光动力学和整个发射光谱在光天线分子的识别位点和辅酶/底物的活性位点在酶光裂解酶中超快溶剂化动力学的完整特征。通过直接使用固有天线和辅因子生色团,我们观察到了从几皮秒到近十亿分之一秒的时间尺度上的局部环境松弛。与传统的溶剂化方法不同,在传统的溶剂化方法中,斯托克斯频移明显,我们观察到在三个功能位点中,随着较小,较小和较大的光谱偏移,光谱形状发生了明显变化。这些发射曲线的变化直接反映了局部受约束的蛋白质和积水共同运动对发色团激发态的调节。这种异质动力学通过从天线到辅因子的共振能量转移以提高能量效率,然后在辅因子和底物之间进行电子转移以修复受损的DNA来连续调整局部结构,以优化光裂解酶的功能。这种异常的溶剂化和协同动力学应该在蛋白质的功能部位普遍存在。

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