Yonezawa Yasushige, Nakata Kazuto, Sakakura Kota, Takada Toshikazu, Nakamura Haruki
Institute for Protein Research, Osaka University, 3-2 Yamada-oka, Suita, Osaka 565-0871, Japan.
J Am Chem Soc. 2009 Apr 1;131(12):4535-40. doi: 10.1021/ja807814x.
The cis-trans isomerization of the peptide bond preceding a proline plays important roles in protein folding and biological function. Although many experimental and theoretical studies have been done, the mechanism has not yet been clearly elucidated. We studied the cis-trans isomerization of the proline dipeptide (Ace-Pro-NMe) in explicit water by molecular dynamics simulations using a combined potential derived from ab initio quantum mechanics and empirical molecular mechanics. We obtained the free energy landscape during the isomerization by using the umbrella sampling method. The free energy landscape is in good accordance with previous experimental and theoretical values. We observed that in the middle of the isomerization, the prolyl nitrogen transiently takes pyramidal conformations in two polarized directions and that, simultaneously, the prolyl C-N bond extends. We show that these geometrical changes cooperatively transform the prolyl nitrogen from a sp(2)-hybridized electronic state into a sp(3)-hybridized one, and thus realize a transition state that reduces the rotational barriers separating the cis- and trans-states. We also found that the hydration of the prolyl nitrogen stabilizes the negative pyramidal conformation, while an intramolecular interaction mainly stabilizes the positive one. Fluctuations in the polarity and magnitude of the pyramidal conformation during the isomerization are interpreted as a competition between the hydrogen-bonding partners for the prolyl nitrogen between different sides of the pyrrolidine ring.
脯氨酸之前的肽键的顺反异构化在蛋白质折叠和生物学功能中起着重要作用。尽管已经进行了许多实验和理论研究,但其机制尚未得到明确阐明。我们使用从头算量子力学和经验分子力学相结合的势,通过分子动力学模拟研究了在明确水环境中脯氨酸二肽(Ace-Pro-NMe)的顺反异构化。我们使用伞形抽样方法获得了异构化过程中的自由能景观。该自由能景观与先前的实验和理论值高度吻合。我们观察到,在异构化过程中,脯氨酰氮会在两个极化方向上短暂地采取金字塔形构象,同时,脯氨酰C-N键会伸长。我们表明,这些几何变化协同作用,将脯氨酰氮从sp(2)杂化电子态转变为sp(3)杂化电子态,从而实现一个降低顺式和反式状态之间旋转势垒的过渡态。我们还发现,脯氨酰氮的水合作用稳定了负金字塔形构象,而分子内相互作用主要稳定了正金字塔形构象。异构化过程中金字塔形构象的极性和大小的波动被解释为脯氨酰氮在吡咯烷环不同侧的氢键伙伴之间的竞争。