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溶剂对肽构象的调控:离子淌度质谱法测定水中、甲醇、乙醇和 1-丙醇中的聚脯氨酸结构。

Solvent Mediation of Peptide Conformations: Polyproline Structures in Water, Methanol, Ethanol, and 1-Propanol as Determined by Ion Mobility Spectrometry-Mass Spectrometry.

机构信息

Department of Chemistry, Indiana University, 800 Kirkwood Avenue, Bloomington, IN, 47401, USA.

Department of Chemistry, Hendrix College, Conway, AR, 72032, USA.

出版信息

J Am Soc Mass Spectrom. 2019 Jan;30(1):77-84. doi: 10.1007/s13361-018-2034-7. Epub 2018 Aug 1.

DOI:10.1007/s13361-018-2034-7
PMID:30069641
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6503664/
Abstract

Ion mobility spectrometry and circular dichroism spectroscopy are used to examine the populations of the small model peptide, polyproline-13 in water, methanol, ethanol, and 1-propanol over a range of solution temperatures (from 288 to 318 K). At low temperatures, the less-polar solvents (1-propanol and ethanol) favor the all-cis polyproline I helix (PPI); as the temperature is increased, the trans-configured polyproline II helix (PPII) is formed. In polar solvents (methanol and water), PPII is favored at all temperatures. From the experimental data, we determine the relative stabilities of the eight structures in methanol, ethanol, and 1-propanol, as well as four in water, all with respect to PPII. Although these conformers show relatively small differences in free energies, substantial variability is observed in the enthalpies and entropies across the structures and solvents. This requires that enthalpies and entropies be highly correlated: in 1-propanol, cis-configured PPI conformations are energetically favorable but entropically disfavored. In more polar solvents, PPI is enthalpically less favorable and entropy favors trans-configured forms. While either ΔH or ΔS can favor different structures, no conformation in any solvent is simultaneously energetically and entropically stabilized. These data present a rare opportunity to examine the origin of conformational stability. Graphical Abstract ᅟ.

摘要

离子淌度光谱和圆二色光谱被用于研究在一系列溶液温度(288 至 318 K)下,小模型肽聚脯氨酸-13 在水中、甲醇、乙醇和 1-丙醇中的构象分布。在低温下,非极性溶剂(1-丙醇和乙醇)有利于全顺式聚脯氨酸 I 螺旋(PPI);随着温度的升高,反式构象的聚脯氨酸 II 螺旋(PPII)形成。在极性溶剂(甲醇和水)中,所有温度下都有利于 PPII。从实验数据中,我们确定了在甲醇、乙醇和 1-丙醇中八种结构的相对稳定性,以及在水中的四种结构的相对稳定性,所有这些结构均相对于 PPII 进行了比较。尽管这些构象在自由能上差异相对较小,但在结构和溶剂中观察到焓和熵存在显著的可变性。这要求焓和熵高度相关:在 1-丙醇中,顺式 PPI 构象在能量上是有利的,但在熵上是不利的。在更极性的溶剂中,PPI 在焓上的不利程度更大,而熵则有利于反式构象的形式。虽然 ΔH 或 ΔS 都可以有利于不同的构象,但在任何溶剂中都没有一种构象在能量和熵上同时得到稳定。这些数据提供了一个难得的机会来研究构象稳定性的起源。

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