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沿着酶促反应轨迹的内禀运动。

Intrinsic motions along an enzymatic reaction trajectory.

作者信息

Henzler-Wildman Katherine A, Thai Vu, Lei Ming, Ott Maria, Wolf-Watz Magnus, Fenn Tim, Pozharski Ed, Wilson Mark A, Petsko Gregory A, Karplus Martin, Hübner Christian G, Kern Dorothee

机构信息

Department of Biochemistry and Howard Hughes Medical Institute, Brandeis University, Waltham, Massachusetts 02454, USA.

出版信息

Nature. 2007 Dec 6;450(7171):838-44. doi: 10.1038/nature06410. Epub 2007 Nov 18.

DOI:10.1038/nature06410
PMID:18026086
Abstract

The mechanisms by which enzymes achieve extraordinary rate acceleration and specificity have long been of key interest in biochemistry. It is generally recognized that substrate binding coupled to conformational changes of the substrate-enzyme complex aligns the reactive groups in an optimal environment for efficient chemistry. Although chemical mechanisms have been elucidated for many enzymes, the question of how enzymes achieve the catalytically competent state has only recently become approachable by experiment and computation. Here we show crystallographic evidence for conformational substates along the trajectory towards the catalytically competent 'closed' state in the ligand-free form of the enzyme adenylate kinase. Molecular dynamics simulations indicate that these partially closed conformations are sampled in nanoseconds, whereas nuclear magnetic resonance and single-molecule fluorescence resonance energy transfer reveal rare sampling of a fully closed conformation occurring on the microsecond-to-millisecond timescale. Thus, the larger-scale motions in substrate-free adenylate kinase are not random, but preferentially follow the pathways that create the configuration capable of proficient chemistry. Such preferred directionality, encoded in the fold, may contribute to catalysis in many enzymes.

摘要

长期以来,酶实现非凡的速率加速和特异性的机制一直是生物化学领域的关键研究兴趣点。人们普遍认为,与底物 - 酶复合物构象变化相关联的底物结合,会将反应基团排列在一个有利于高效化学反应的最佳环境中。尽管许多酶的化学机制已被阐明,但酶如何达到催化活性状态这个问题,直到最近才通过实验和计算变得可解。在这里,我们展示了结晶学证据,证明在无配体形式的腺苷酸激酶沿着通向催化活性“闭合”状态的轨迹存在构象亚态。分子动力学模拟表明,这些部分闭合构象在纳秒时间尺度内被采样,而核磁共振和单分子荧光共振能量转移则揭示了在微秒到毫秒时间尺度上发生的完全闭合构象的罕见采样。因此,无底物腺苷酸激酶中的大规模运动并非随机的,而是优先沿着能够形成高效化学反应构型的途径进行。这种编码在折叠结构中的优先方向性,可能在许多酶的催化过程中发挥作用。

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