Department of Chemical and Biological Physics, Weizmann Institute of Science, Rehovot 761001, Israel.
Department of Chemical Research Support, Weizmann Institute of Science, Rehovot 761001, Israel.
Proc Natl Acad Sci U S A. 2018 Mar 27;115(13):3243-3248. doi: 10.1073/pnas.1720448115. Epub 2018 Mar 12.
The functional cycle of many proteins involves large-scale motions of domains and subunits. The relation between conformational dynamics and the chemical steps of enzymes remains under debate. Here we show that in the presence of substrates, domain motions of an enzyme can take place on the microsecond time scale, yet exert influence on the much-slower chemical step. We study the domain closure reaction of the enzyme adenylate kinase from while in action (i.e., under turnover conditions), using single-molecule FRET spectroscopy. We find that substrate binding increases dramatically domain closing and opening times, making them as short as ∼15 and ∼45 µs, respectively. These large-scale conformational dynamics are likely the fastest measured to date, and are ∼100-200 times faster than the enzymatic turnover rate. Some active-site mutants are shown to fully or partially prevent the substrate-induced increase in domain closure times, while at the same time they also reduce enzymatic activity, establishing a clear connection between the two phenomena, despite their disparate time scales. Based on these surprising observations, we propose a paradigm for the mode of action of enzymes, in which numerous cycles of conformational rearrangement are required to find a mutual orientation of substrates that is optimal for the chemical reaction.
许多蛋白质的功能循环涉及结构域和亚基的大规模运动。构象动力学与酶的化学步骤之间的关系仍存在争议。在这里,我们展示了在存在底物的情况下,酶的结构域运动可以在微秒时间尺度上发生,但其对较慢的化学步骤有影响。我们使用单分子 FRET 光谱法研究了酶腺苷酸激酶的结构域关闭反应,而酶处于活跃状态(即在周转条件下)。我们发现,底物结合大大增加了结构域关闭和打开的时间,分别使它们缩短至约 15 和 45µs。这些大规模构象动力学是迄今为止测量到的最快的动力学,比酶的周转速率快 100-200 倍。一些活性位点突变体被证明可以完全或部分阻止底物诱导的结构域关闭时间增加,同时它们也降低了酶活性,尽管它们的时间尺度不同,但它们之间建立了明确的联系。基于这些令人惊讶的观察结果,我们提出了一种酶作用模式的范例,其中需要进行多次构象重排循环,以找到对化学反应最佳的底物相互取向。