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Intrinsic dynamics of an enzyme underlies catalysis

机译:酶的内在动力学是催化的基础

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A unique feature of chemical catalysis mediated by enzymes is that the catalytically reactive atoms are embedded within a folded protein. Although current understanding of enzyme function has been focused on the chemical reactions and static three-dimensional structures, the dynamic nature of proteins has been proposed to have a function in catalysis. The concept of conformational substates has been described; however, the challenge is to unravel the intimate linkage between protein flexibility and enzymatic function. Here we show that the intrinsic plasticity of the protein is a key characteristic of catalysis. The dynamics of the prolyl cis-trans isomerase cyclophilin A (CypA) in its substrate-free state and during catalysis were characterized with NMR relaxation experiments. The characteristic enzyme motions detected during catalysis are already present in the free enzyme with frequencies corresponding to the catalytic turnover rates. This correlation suggests that the protein motions necessary for catalysis are an intrinsic properly of the enzyme and may even limit the overall turnover rate. Motion is localized not only to the active site but also to a wider dynamic network. Whereas coupled networks in proteins have been proposed previously, we experimentally measured the collective nature of motions with the use of mutant forms of CypA. We propose that the pre-existence of collective dynamics in enzymes before catalysis is a common feature of biocatalysts and that proteins have evolved under synergistic pressure between structure and dynamics.
机译:酶介导的化学催化的独特特征是催化活性原子嵌入折叠的蛋白质中。尽管目前对酶功能的理解已集中在化学反应和静态三维结构上,但已提出蛋白质的动态性质在催化中具有功能。已经描述了构象子状态的概念。然而,挑战在于揭示蛋白质柔韧性和酶功能之间的紧密联系。在这里,我们表明蛋白质的固有可塑性是催化的关键特征。脯氨酰顺反异构酶亲环蛋白A(CypA)的动力学在无底物状态和催化过程中通过NMR弛豫实验进行了表征。在催化过程中检测到的特征性酶运动已经存在于游离酶中,其频率对应于催化转化率。这种相关性表明,催化必需的蛋白质运动是酶的固有固有功能,甚至可能会限制总周转率。运动不仅本地化到活动站点,还本地化到更广泛的动态网络。尽管以前已经提出了蛋白质中的偶联网络,但我们使用突变形式的CypA实验性地测量了运动的集体性质。我们提出,催化之前酶中集体动力学的预先存在是生物催化剂的共同特征,蛋白质是在结构和动力学之间的协同压力下进化的。

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