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2D IR 交叉峰显示具有单个残基特异性的氢氘交换。

2D IR cross peaks reveal hydrogen-deuterium exchange with single residue specificity.

机构信息

Department of Chemistry, University of Wisconsin-Madison , Madison, Wisconsin 53706-1396, United States.

出版信息

J Phys Chem B. 2013 Dec 12;117(49):15297-305. doi: 10.1021/jp402942s. Epub 2013 May 23.

Abstract

A form of chemical exchange, hydrogen-deuterium exchange (HDX), has long been used as a method for studying the secondary and tertiary structure of peptides and proteins using mass spectrometry and NMR spectroscopy. Using two-dimensional infrared (2D IR) spectroscopy, we resolve cross peaks between the amide II band and a (13)C(18)O isotope-labeled amide I band, which we show measures HDX with site-specific resolution. By rapidly scanning 2D IR spectra using mid-IR pulse shaping, we monitor the kinetics of HDX exchange on-the-fly. For the antimicrobial peptide ovispirin bound to membrane bilayers, we find that the amide II peak decays with a biexponential with rate constants of 0.54 ± 0.02 and 0.12 ± 0.01 min(-1), which is a measure of the overall HDX in the peptide. The cross peaks between Ile-10-labeled ovispirin and the amide II mode, which specifically monitor HDX kinetics at Ile-10, decay with a single rate constant of 0.36 ± 0.1 min(-1). Comparing this exchange rate to theoretically determined exchange rates of Ile-10 for ovispirin in a solution random coil configuration, the exchange rate at Ile-10 is at least 100 times slower, consistent with the known α-helix structure of ovispirin in bilayers. Because backbone isotope labels produce only a very small shift of the amide II band, site-specific HDX cannot be measured with FTIR spectroscopy, which is why 2D IR spectroscopy is needed for these measurements.

摘要

一种形式的化学交换,氘氢交换(HDX),长期以来一直被用作使用质谱和 NMR 光谱研究肽和蛋白质的二级和三级结构的方法。我们使用二维红外(2D IR)光谱,解析酰胺 II 带和(13)C(18)O 同位素标记的酰胺 I 带之间的交叉峰,我们证明这可以测量具有特定位置分辨率的 HDX。通过使用中红外脉冲整形快速扫描 2D IR 光谱,我们实时监测 HDX 交换的动力学。对于与膜双层结合的抗菌肽ovisprin,我们发现酰胺 II 峰的衰减具有双指数特征,速率常数分别为 0.54±0.02 和 0.12±0.01 min(-1),这是肽中整体 HDX 的量度。Ile-10 标记的 ovispirin 与酰胺 II 模式之间的交叉峰,专门监测 Ile-10 处的 HDX 动力学,衰减具有单个速率常数 0.36±0.1 min(-1)。将此交换速率与 ovispirin 在溶液无规卷曲构象中的理论确定的 Ile-10 交换速率进行比较,Ile-10 处的交换速率至少慢 100 倍,与 ovispirin 在双层中的已知α-螺旋结构一致。由于骨架同位素标记仅使酰胺 II 带发生非常小的位移,因此 FTIR 光谱无法测量特定位置的 HDX,这就是为什么需要 2D IR 光谱进行这些测量的原因。

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