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J Chem Phys. 2021 Nov 21;155(19):195101. doi: 10.1063/5.0064518.
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引用本文的文献

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Using 2D-IR Spectroscopy to Measure the Structure, Dynamics, and Intermolecular Interactions of Proteins in HO.使用二维红外光谱测量 HO 中蛋白质的结构、动态和分子间相互作用。
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2
AIM: A Mapping Program for Infrared Spectroscopy of Proteins.目的:蛋白质红外光谱映射程序。
J Chem Theory Comput. 2022 May 10;18(5):3089-3098. doi: 10.1021/acs.jctc.2c00113. Epub 2022 Apr 6.

酰胺 I 和酰胺 I'振动的独特静电频率调谐速率。

Distinct electrostatic frequency tuning rates for amide I and amide I' vibrations.

机构信息

Department of Chemistry, Purdue University, West Lafayette, Indiana 47907, USA.

出版信息

J Chem Phys. 2021 Nov 21;155(19):195101. doi: 10.1063/5.0064518.

DOI:10.1063/5.0064518
PMID:34800962
Abstract

Amide I spectroscopy probes the backbone C=O stretch vibrations of peptides and proteins. Amide I spectra are often collected in deuterated water (DO) since this provides a cleaner background in the amide I frequency range; such data are often referred to as amide I' spectra since deuteration induces changes in the mode structure, including a roughly ∼10 cm redshift. For biological samples, however, deuteration is often not possible. As amide I frequency maps are increasingly applied to quantitative protein structural analysis, this raises the interesting challenge of drawing direct connections between amide I and amide I' data. We here analyze amide I and amide I' peak frequencies for a series of dipeptides and related compounds. Changes in protonation state induce large electrostatic shifts in the peak frequencies, allowing us to amass a sizable library of data points for direct amide I/amide I' comparison. While we find an excellent linear correlation between amide I and amide I' peak frequencies, the deuteration-induced shift is smaller for more red-shifted vibrations, indicating different electrostatic tuning rates in the two solvents. HO/DO shifts were negligible for proline-containing dipeptides that lack exchangeable amide hydrogens, indicating that the intrinsic properties of the solvent do not strongly influence the H/D shift. These findings indicate that the distinct tuning rates observed for the two vibrations arise from modifications to the intrinsic properties of the amide bond and provide (at least for solvated dipeptides) a simple, linear "map" for translating between amide I and amide I' frequencies.

摘要

酰胺 I 光谱探测肽和蛋白质的骨架 C=O 伸缩振动。由于酰胺 I 频率范围内的背景更干净,酰胺 I 光谱通常在氘化水中(DO)收集;由于氘化诱导模式结构的变化,包括大约 10cm 的红移,这种数据通常被称为酰胺 I'光谱。然而,对于生物样品,氘化通常是不可能的。随着酰胺 I 频率图谱越来越多地应用于定量蛋白质结构分析,这就提出了一个有趣的挑战,即如何在酰胺 I 和酰胺 I'数据之间建立直接联系。我们在这里分析了一系列二肽和相关化合物的酰胺 I 和酰胺 I'峰频率。质子化状态的变化会引起峰频率的大的静电位移,使我们能够为直接的酰胺 I/酰胺 I'比较积累大量的数据点。虽然我们发现酰胺 I 和酰胺 I'峰频率之间存在极好的线性相关性,但对于更红移的振动,氘化诱导的位移较小,这表明在两种溶剂中静电调谐速率不同。对于缺乏可交换酰胺氢的脯氨酸二肽,HO/DO 位移可以忽略不计,这表明溶剂的固有性质不会强烈影响 H/D 位移。这些发现表明,两种振动观察到的不同调谐速率是由酰胺键的固有性质的改变引起的,并为(至少对于溶剂化的二肽)提供了一个简单的、线性的“图谱”,用于在酰胺 I 和酰胺 I'频率之间进行转换。