Wang Jing, Kawasaki Ryosuke, Uewaki Jun-Ichi, Rashid Arif U R, Tochio Naoya, Tate Shin-Ichi
Department of Mathematical and Life Sciences, School of Science, Hiroshima University, 1-3-1 Kagamiyama, Higashi-Hiroshima 739-8526, Japan.
Research Center for the Mathematics on Chromatin Live Dynamics (RcMcD), Hiroshima University, 1-3-1 Kagamiyama, Higashi-Hiroshima 739-8526, Japan.
Molecules. 2017 Jun 15;22(6):992. doi: 10.3390/molecules22060992.
Allosteric communication among domains in modular proteins consisting of flexibly linked domains with complimentary roles remains poorly understood. To understand how complementary domains communicate, we have studied human Pin1, a representative modular protein with two domains mutually tethered by a flexible linker: a WW domain for substrate recognition and a peptidyl-prolyl isomerase (PPIase) domain. Previous studies of Pin1 showed that physical contact between the domains causes dynamic allostery by reducing conformation dynamics in the catalytic domain, which compensates for the entropy costs of substrate binding to the catalytic site and thus increases catalytic activity. In this study, the S138A mutant PPIase domain, a mutation that mimics the structural impact of the interdomain contact, was demonstrated to display dynamic allostery by rigidification of the α2-α3 loop that harbors the key catalytic residue C113. The reduced dynamics of the α2-α3 loop stabilizes the C113-H59 hydrogen bond in the hydrogen-bonding network of the catalytic site. The stabilized hydrogen bond between C113 and H59 retards initiation of isomerization, which explains the reduced isomerization rate by ~20% caused by the S138A mutation. These results provide new insight into the interdomain allosteric communication of Pin1.
由具有互补作用的灵活连接结构域组成的模块化蛋白质中,结构域之间的变构通讯仍未得到充分理解。为了了解互补结构域如何通讯,我们研究了人Pin1,它是一种典型的模块化蛋白质,有两个通过柔性接头相互连接的结构域:一个用于底物识别的WW结构域和一个肽基脯氨酰异构酶(PPIase)结构域。之前对Pin1的研究表明,结构域之间的物理接触通过降低催化结构域中的构象动力学导致动态变构,这补偿了底物与催化位点结合的熵成本,从而提高了催化活性。在本研究中,S138A突变的PPIase结构域(一种模拟结构域间接触的结构影响的突变)被证明通过包含关键催化残基C113的α2-α3环的刚性化表现出动态变构。α2-α3环动力学的降低稳定了催化位点氢键网络中C113-H59氢键。C113和H59之间稳定的氢键延迟了异构化的起始,这解释了S138A突变导致异构化速率降低约20%的原因。这些结果为Pin1的结构域间变构通讯提供了新的见解。