Bioengineering Graduate Program, Division of Biomedical Engineering, ‡Department of Chemistry, §Center of Systems Biology and Human Health, School of Science and Institute for Advance Study, The Hong Kong University of Science and Technology , Clear Water Bay, Kowloon, Hong Kong.
J Am Chem Soc. 2013 Oct 30;135(43):16092-101. doi: 10.1021/ja403147m. Epub 2013 Oct 17.
Amyloid fibril deposits of the intrinsically disordered hIAPP peptide are found in 95% of type II diabetes patients, and the aggregation of this peptide is suggested to induce apoptotic cell-death in insulin-producing β-cells. Understanding the structure and dynamics of the hIAPP monomer in solution is thus important for understanding the nucleation of aggregation and the formation of oligomers. In this study, we identify the metastable conformational states of the hIAPP monomer and the dynamics of transitioning between them using Markov state models constructed from extensive molecular dynamics simulations. We show that the overall structure of the hIAPP peptide is random coil-like and lacks a dominant folded structure. Despite this fact, our model reveals a large number of reasonably well-populated metastable conformational states (or local free energy minima) having populations of a few percent or less. The time scales for transitioning between these states range from several microseconds to milliseconds. In contrast to folded proteins, there is no kinetic hub. More strikingly, a few states contain significant amounts of β-hairpin secondary structure and extended hydrophobic surfaces that are exposed to the solvent. We propose that these states may facilitate the nucleation of hIAPP aggregation through a significant component of the conformational selection mechanism, because they may increase their populations upon aggregation by promoting hydrophobic interactions and at the same time provide a flat geometry to seed the ordered β-strand packing of the fibrils.
淀粉样纤维沉积物的无规卷曲的 hIAPP 肽是发现在 95%的 2 型糖尿病患者,和这种肽的聚集被认为诱导胰岛素分泌的 β 细胞凋亡。因此,了解 hIAPP 单体在溶液中的结构和动力学对于理解聚集的成核和寡聚物的形成是很重要的。在这项研究中,我们使用从广泛的分子动力学模拟构建的马尔可夫状态模型来确定 hIAPP 单体的亚稳态构象状态及其之间的转变动力学。我们表明,hIAPP 肽的整体结构是无规卷曲样的,缺乏主导的折叠结构。尽管如此,我们的模型揭示了大量相当多的合理填充的亚稳态构象状态(或局部自由能极小值),其种群为百分之几或更少。这些状态之间的转变时间尺度从几微秒到几毫秒不等。与折叠蛋白不同的是,没有动力学中心。更引人注目的是,一些状态包含大量的β-发夹二级结构和暴露在溶剂中的扩展疏水表面。我们提出,这些状态可能通过构象选择机制的一个重要组成部分促进 hIAPP 聚集的成核,因为它们可能通过促进疏水相互作用而在聚集时增加其种群,同时提供一个平坦的几何形状来种子纤维的有序β-链包装。