Department of Chemistry , Yale University , New Haven , Connecticut 06511 , United States.
Department of Chemistry , Washington College , Chestertpwm , Maryland 21620 , United States.
J Am Chem Soc. 2019 Aug 14;141(32):12634-12647. doi: 10.1021/jacs.9b04470. Epub 2019 Aug 5.
Active-site loops are integral to the function of numerous enzymes. They enable substrate and product binding and release, sequester reaction intermediates, and recruit catalytic groups. Here, we examine the catalytic loop in the enzyme protein tyrosine phosphatase 1B (PTP1B). PTP1B has a mobile so-called WPD loop (named for its three N-terminal residues) that initiates the dephosphorylation of phosphor-tyrosine substrates upon loop closure. We have combined X-ray crystallography, solution NMR, and pre-steady-state kinetics experiments on wild-type and five WPD loop mutants to identify the relationships between the loop structure, dynamics, and function. The motions of the WPD loop are modulated by the formation of weak molecular interactions, where perturbations of these interactions modulate the conformational equilibrium landscape. The point mutants in the WPD loop alter the loop equilibrium position from a predominantly open state (P185A) to 50:50 (F182A), 35:65 (P188A), and predominantly closed states (T177A and P188A). Surprisingly, there is no correlation between the observed catalytic rates in the loop mutants and changes to the WPD loop equilibrium position. Rather, we observe a strong correlation between the rate of dephosphorylation of the phosphocysteine enzyme intermediate and uniform millisecond motions, not only within the loop but also in the adjacent α-helical domain of PTP1B. Thus, the control of loop motion and thereby catalytic activity is dispersed and resides within not only the loop sequence but also the surrounding protein architecture. This has broad implications for the general mechanistic understanding of enzyme reactions and the role that flexible loops play in the catalytic cycle.
活性位点环是许多酶功能的组成部分。它们能够使底物和产物结合与释放、隔离反应中间产物,并募集催化基团。在这里,我们研究了酶蛋白酪氨酸磷酸酶 1B(PTP1B)中的催化环。PTP1B 具有一个可移动的所谓 WPD 环(因其三个 N 端残基而得名),当环关闭时,它会启动对磷酸酪氨酸底物的去磷酸化作用。我们结合 X 射线晶体学、溶液 NMR 和野生型和五个 WPD 环突变体的准稳态动力学实验,确定了环结构、动力学和功能之间的关系。WPD 环的运动受到弱分子相互作用的调节,这些相互作用的干扰会调节构象平衡景观。WPD 环中的点突变改变了环平衡位置,从主要开放状态(P185A)变为 50:50(F182A)、35:65(P188A)和主要关闭状态(T177A 和 P188A)。令人惊讶的是,观察到的环突变体中的催化速率与 WPD 环平衡位置的变化之间没有相关性。相反,我们观察到磷酸半胱氨酸酶中间物的去磷酸化速率与毫秒级均匀运动之间存在很强的相关性,不仅在环内,而且在 PTP1B 的相邻α-螺旋域内也是如此。因此,环运动的控制,从而催化活性不仅分散在环序列中,而且还分散在周围的蛋白质结构中。这对酶反应的一般机制理解以及柔性环在催化循环中的作用具有广泛的影响。