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Conformational Changes In An Ultrafast Light-driven Enzyme Determine Catalytic Activity

机译:超快光驱动酶的构象变化决定催化活性

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The role of conformational changes in explaining the huge catalytic power of enzymes is currently one of the most challenging questions in biology. Although it is now widely regarded that enzymes modulate reaction rates by means of short- and long-range protein motions, it is almost impossible to distinguish between conformational changes and catalysis. We have solved this problem using the chlorophyll biosynthetic enzyme NADPH:protochlorophyllide (Pchlide) oxidoreductase, which catalyses a unique light-driven reaction involving hydride and proton transfers. Here we report that prior excitation of the enzyme-substrate complex with a laser pulse induces a more favourable conformation of the active site, enabling the coupled hydride and proton transfer reactions to occur. This effect, which is triggered during the Pchlide excited-state lifetime and persists on a long timescale, switches the enzyme into an active state characterized by a high rate and quantum yield of formation of a catalytic intermediate. The corresponding spectral changes in the mid-infrared following the absorption of one photon reveal significant conformational changes in the enzyme, illustrating the importance of flexibility and dynamics in the structure of enzymes for their function.
机译:构象变化在解释酶的巨大催化能力中的作用目前是生物学中最具挑战性的问题之一。尽管现在人们普遍认为酶通过蛋白质的短程和长程运动来调节反应速率,但是几乎不可能区分构象变化和催化作用。我们已经使用叶绿素生物合成酶NADPH:原生叶绿素(Pchlide)氧化还原酶解决了这个问题,该酶催化涉及氢化物和质子转移的独特光驱动反应。在这里我们报告说,激光脉冲对酶-底物复合物的先前激发会诱导活性位点的更有利构象,从而使偶联的氢化物和质子转移反应发生。在Pchlide激发态寿命期间触发并持续很长时间的这种效应将酶切换为活性态,其特征是形成催化中间体的速率和量子产率很高。吸收一个光子后,中红外的相应光谱变化揭示了酶的显着构象变化,说明了酶结构的灵活性和动力学对其功能的重要性。

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