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密度泛函研究仲酰胺:立体因素在顺/反异构化中的作用。

Density Functional Studies on Secondary Amides: Role of Steric Factors in Cis/Trans Isomerization.

机构信息

Department of Chemistry, UiT The Arctic University of Norway, N-9037 Tromsø, Norway.

出版信息

Molecules. 2018 Sep 25;23(10):2455. doi: 10.3390/molecules23102455.

Abstract

Cis/trans isomerization of amide bonds is a key step in a wide range of biological and synthetic processes. Occurring through C-N amide bond rotation, it also coincides with the activation of amides in enzymatic hydrolysis. In recently described QM studies of cis/trans isomerization in secondary amides using density functional methods, we highlighted that a peptidic prototype, such as glycylglycine methyl ester, can suitably represent the isomerization and complexities arising out of a larger molecular backbone, and can serve as the primary scaffold for model structures with different substitution patterns in order to assess and compare the steric effect of the substitution patterns. Here, we describe our theoretical assessment of such steric effects using -butyl as a representative bulky substitution. We analyze the geometries and relative stabilities of both trans and cis isomers, and effects on the cis/trans isomerization barrier. We also use the additivity principle to calculate absolute steric effects with a gradual increase in bulk. The study establishes that bulky substitutions significantly destabilize cis isomers and also increases the isomerization barrier, thereby synergistically hindering the cis/trans isomerization of secondary amides. These results provide a basis for the rationalization of kinetic and thermodynamic properties of peptides with potential applications in synthetic and medicinal chemistry.

摘要

酰胺键的顺反异构化是广泛的生物和合成过程中的关键步骤。它通过 C-N 酰胺键的旋转发生,也与酶促水解中酰胺的活化相吻合。在最近使用密度泛函方法描述的关于仲酰胺顺反异构化的 QM 研究中,我们强调了肽原型物,如甘氨酰甘氨酸甲酯,可以很好地代表更大分子骨架中出现的异构化和复杂性,并可以作为具有不同取代模式的模型结构的主要支架,以评估和比较取代模式的空间效应。在这里,我们使用 - 丁基作为代表性的大取代基来描述我们对这种空间效应的理论评估。我们分析了顺式和反式异构体的几何形状和相对稳定性,以及对顺反异构化势垒的影响。我们还使用加和性原理,通过逐渐增加体积来计算绝对空间效应。该研究表明,大取代基显著降低了顺式异构体的稳定性,也增加了异构化势垒,从而协同阻碍仲酰胺的顺反异构化。这些结果为具有潜在应用于合成和药物化学的肽的动力学和热力学性质的合理化提供了依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/82c7/6222500/ae4d2932266b/molecules-23-02455-g001.jpg

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