Reverse turns in blocked dipeptides are intrinsically unstable in water.

Reverse turns in blocked dipeptides are intrinsically unstable in water.
复制标题

封闭二肽的反转在水中本质上不稳定。

DOI:
10.1016/0022-2836(90)90399-7
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发表时间:
1990
影响因子:
5.6
通讯作者:
Brooks3rd,CL
Brooks3rd,CL
中科院分区:
生物学2区
文献类型:
--
作者:
Tobias,DJ;Sneddon,SF;Brooks3rd,CL

文献摘要

被引文献

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我们用分子动力学模拟方法研究了两种封闭二肽Ac-Ala-Ala-NHMe和trans-Ac-Pro-Ala-NHMe在水中的构象平衡(Ac为氨基端封闭基团COCH_3; NHMe为羧基端封闭基团NHCH_3)。使用专门的采样技术,我们计算的自由能表面的构象坐标的函数,对应于氢键的反转在小值和扩展构象在大值。氢键反向翻转构象和伸展构象之间的自由能差,由反向翻转解折叠的平衡常数确定,对于Ac-Ala-Ala-NHMe约为−5 kcal/mole,对于Ac-Pro-Ala-NHMe约为−10 kcal/mole。这些结果表明,封闭的二肽中的反转在水中本质上是不稳定的。也就是说,在不存在涉及侧链和/或带电末端基团的强稳定序列特异性残基间相互作用的情况下,小肽的延伸构象在溶液中是高度有利的。通过对自由能差异的解析,我们发现肽-水熵是两种肽的扩展构象异常稳定的主要原因,并且两种肽之间的差异主要是由于肽-水相互作用的差异。此外,我们评估了“脯氨酸效应”的构象平衡,通过比较两个肽的反转和扩展构象之间的构型熵的差异。正如预期的那样,丙氨酸前肽的延伸构象被降低的构型熵破坏,但在封闭的二肽中这种影响可以忽略不计。最后,我们将我们的结果与其他几项实验研究的结果进行了比较,以确定一些可能负责稳定溶液中小肽反向转弯的特定相互作用。
We have carried out molecular dynamics simulations to study the conformational equilibria of two blocked dipeptides, Ac-Ala-Ala-NHMe andtrans-Ac-Pro-Ala-NHMe, in water (Ac, amino-terminal blocking group COCH3; NHMe, carboxy-terminal blocking group NHCH3). Using specialized sampling techniques we computed free-energy surfaces as functions of a conformation co-ordinate that corresponds to hydrogen-bonded reverse turns at small values and to extended conformations at large values. The free-energy difference between hydrogen-bonded reverse turn conformations and extended conformations, determined from the equilibrium constants for reverse turn unfolding, is approximately −5 kcal/mole for Ac-Ala-Ala-NHMe, and −10 kcal/mole for Ac-Pro-Ala-NHMe. These results demonstrate that reverse turns in blocked dipeptides are intrinsically unstable in water. That is, in the absence of strongly stabilizing sequence-specific inter-residue interactions involving side-chains and/or charged terminal groups, the extended conformations of small peptides are highly favored in solution. By thermodynamically decomposing the free-energy differences, we found that the peptide-water entropy is the primary reason for the exceptional stability of the extended conformations of both peptides, and that the differences between the two peptides are primarily due to differences in the peptide-water interactions. In addition, we assessed the “proline effect” on the conformational equilibria by comparing the differences in configurational entropies between the reverse turn and extended conformations of the two peptides. As expected, the extended conformation of the Pro-Ala peptide is destabilized by reduced configurational entropy, but the effect is negligible in the blocked dipeptides. Finally, we compared our results with the results of several other experimental studies to identify some of the specific interactions that may be responsible for stabilizing reverse turns in small peptides in solution.