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理解半胱氨酸保护基的酸不稳定性。

Understanding acid lability of cysteine protecting groups.

机构信息

Institute for Research in Biomedicine-IRB Barcelona, Baldiri Reixac 10, 08028-Barcelona, Spain.

出版信息

Molecules. 2013 May 6;18(5):5155-62. doi: 10.3390/molecules18055155.

Abstract

Cys-disulfide bonds contribute to the stabilization of peptide and protein structures. The synthesis of these molecules requires a proper protection of Cys residues, which is crucial to prevent side-reactions and also to achieve the correct Cys connectivity. Here we undertook a mechanistic study of a set of well-known acid-labile Cys protecting groups, as well other new promising groups, in order to better understand the nature of their acid-lability. The stability of the carbocation generated during the acid treatment was found to have a direct impact on the removal of the protective groups from the corresponding protected Cys-containing peptides. Hence a combination of steric and conjugative effects determines the stability of the carbocations generated. Here we propose diphenylmethyl (Dpm) as a promising protecting group on the basis of its intermediate relative carbocation stability. All the optimized geometries and energies presented in this study were determined using a B3LYP/6-31G(d,p) calculation. The results discussed herein may be of broader applicability for the development of new protecting groups.

摘要

二硫键有助于稳定肽和蛋白质结构。这些分子的合成需要对半胱氨酸残基进行适当的保护,这对于防止副反应和实现正确的半胱氨酸连接性至关重要。在这里,我们对一组众所周知的酸不稳定半胱氨酸保护基以及其他一些有前途的新保护基进行了机理研究,以便更好地了解它们的酸不稳定性。在酸处理过程中生成的碳正离子的稳定性对从相应的保护的含半胱氨酸肽中去除保护基有直接影响。因此,空间位阻和共轭效应的组合决定了生成的碳正离子的稳定性。在这里,我们基于其中等相对碳正离子稳定性,提出了二苯甲基(Dpm)作为一种有前途的保护基。本研究中提出的所有优化的几何形状和能量都是使用 B3LYP/6-31G(d,p)计算确定的。本文讨论的结果可能更广泛地适用于新保护基的开发。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8651/6270164/34b7ad85f2a1/molecules-18-05155-g001.jpg

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