College of Chemical and Molecular Engineering, Peking University, Beijing, China.
J Mol Biol. 2010 Sep 24;402(3):595-609. doi: 10.1016/j.jmb.2010.08.037. Epub 2010 Sep 8.
Key elements of β-structure folding include hydrophobic core collapse, turn formation, and assembly of backbone hydrogen bonds. In the present folding simulations of several β-hairpins and β-sheets (peptide 1, protein G B1 domain peptide, TRPZIP2, TRPZIP4, 20mer, and 20mer(D)P6D), the folding free-energy landscape as a function of several reaction coordinates corresponding to the three key elements indicates apparent dependence on turn stability and side-chain hydrophobicity, which demonstrates different folding mechanisms of similar β-structures of varied sequences. Turn stability is found to be the key factor in determining the formation order of the three structural elements in the folding of β-structures. Moreover, turn stability and side-chain hydrophobicity both affect the stability of backbone hydrogen bonds. The three-stranded β-sheets fold through a three-state transition in which the formation of one hairpin always takes precedence over the other. The different stabilities of two anti-parallel hairpins in each three-stranded β-sheet are shown to correlate well with the different levels of their hydrophobic interactions.
β-结构折叠的关键要素包括疏水性核心崩溃、转角形成和骨架氢键的组装。在对几个β发夹和β折叠(肽 1、蛋白 G B1 结构域肽、TRPZIP2、TRPZIP4、20mer 和 20mer(D)P6D)的折叠自由能景观的模拟中,作为三个关键要素的函数的几个反应坐标显示出对转角稳定性和侧链疏水性的明显依赖性,这证明了不同序列相似β结构的不同折叠机制。转角稳定性被发现是决定β结构折叠中三个结构要素形成顺序的关键因素。此外,转角稳定性和侧链疏水性都影响骨架氢键的稳定性。三股β-折叠通过一个三态跃迁折叠,其中一个发夹的形成总是优先于另一个。每个三股β-折叠中两个反平行发夹的不同稳定性与它们疏水性相互作用的不同水平很好地相关。