Di Martino Giovanni Paolo, Masetti Matteo, Cavalli Andrea, Recanatini Maurizio
Department of Pharmacy and Biotechnology, Alma Mater Studiorum-Università di Bologna, Via Belmeloro 6, 40126, Bologna, Italy.
Proteins. 2014 Nov;82(11):2943-56. doi: 10.1002/prot.24650. Epub 2014 Aug 11.
The peptidyl-proyl isomerase Pin1 plays a key role in the regulation of phospho(p)-Ser/Thr-Pro proteins, acting as a molecular timer of the cell cycle. After recognition of these motifs, Pin1 catalyzes the rapid cis-trans isomerization of proline amide bonds of substrates, contributing to maintain the equilibrium between the two conformations. Although a great interest has arisen on this enzyme, its catalytic mechanism has long been debated. Here, the cis-trans isomerization of a model peptide system was investigated by means of umbrella sampling simulations in the Pin1-bound and unbound states. We obtained free energy barriers consistent with experimental data, and identified several enzymatic features directly linked to the acceleration of the prolyl bond isomerization. In particular, an enhanced autocatalysis, the stabilization of perturbed ground state conformations, and the substrate binding in a procatalytic conformation were found as main contributions to explain the lowering of the isomerization free energy barrier.
肽基脯氨酰异构酶Pin1在磷酸化(p)-丝氨酸/苏氨酸-脯氨酸蛋白的调控中起关键作用,充当细胞周期的分子定时器。识别这些基序后,Pin1催化底物脯氨酸酰胺键的快速顺反异构化,有助于维持两种构象之间的平衡。尽管人们对这种酶产生了浓厚兴趣,但其催化机制长期以来一直存在争议。在此,通过伞形采样模拟研究了Pin1结合态和未结合态下模型肽系统的顺反异构化。我们获得了与实验数据一致的自由能垒,并确定了几个与脯氨酰键异构化加速直接相关的酶学特征。特别是,发现增强的自催化作用、受扰基态构象的稳定以及底物以催化前构象结合是解释异构化自由能垒降低的主要因素。