Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, Indiana, USA.
Department of Chemistry and Chemical Biology, Rutgers University, Piscataway, New Jersey, USA.
J Biol Chem. 2020 Dec 4;295(49):16585-16603. doi: 10.1074/jbc.RA120.015849. Epub 2020 Sep 22.
The functional mechanisms of multidomain proteins often exploit interdomain interactions, or "cross-talk." An example is human Pin1, an essential mitotic regulator consisting of a Trp-Trp (WW) domain flexibly tethered to a peptidyl-prolyl isomerase (PPIase) domain, resulting in interdomain interactions important for Pin1 function. Substrate binding to the WW domain alters its transient contacts with the PPIase domain via means that are only partially understood. Accordingly, we have investigated Pin1 interdomain interactions using NMR paramagnetic relaxation enhancement (PRE) and molecular dynamics (MD) simulations. The PREs show that apo-Pin1 samples interdomain contacts beyond the range suggested by previous structural studies. They further show that substrate binding to the WW domain simultaneously alters interdomain separation and the internal conformation of the WW domain. A 4.5-μs all-atom MD simulation of apo-Pin1 suggests that the fluctuations of interdomain distances are correlated with fluctuations of WW domain interresidue contacts involved in substrate binding. Thus, the interdomain/WW domain conformations sampled by apo-Pin1 may already include a range of conformations appropriate for binding Pin1's numerous substrates. The proposed coupling between intra-/interdomain conformational fluctuations is a consequence of the dynamic modular architecture of Pin1. Such modular architecture is common among cell-cycle proteins; thus, the WW-PPIase domain cross-talk mechanisms of Pin1 may be relevant for their mechanisms as well.
多结构域蛋白的功能机制通常利用结构域间相互作用,或“串扰”。人类 Pin1 就是一个典型例子,它是一种必需的有丝分裂调节剂,由一个灵活连接在肽基脯氨酰顺反异构酶(PPIase)结构域上的色氨酸-色氨酸(WW)结构域组成,导致结构域间相互作用对 Pin1 功能很重要。底物结合到 WW 结构域会通过部分未知的机制改变其与 PPIase 结构域的瞬时接触。因此,我们使用 NMR 顺磁弛豫增强(PRE)和分子动力学(MD)模拟研究了 Pin1 结构域间相互作用。PRE 表明,apo-Pin1 样本的结构域间接触超出了以前结构研究建议的范围。它们进一步表明,底物结合到 WW 结构域会同时改变结构域间的分离和 WW 结构域的内部构象。apo-Pin1 的 4.5 μs 全原子 MD 模拟表明,结构域间距离的波动与涉及底物结合的 WW 结构域间残基接触的波动相关。因此,apo-Pin1 采样的结构域/WW 结构域构象可能已经包含了适合结合 Pin1 众多底物的一系列构象。结构域内/间构象波动之间的这种耦合是 Pin1 动态模块化结构的结果。这种模块化结构在细胞周期蛋白中很常见;因此,Pin1 的 WW-PPIase 结构域串扰机制可能与其机制也有关。