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Probing the Electronic Structure of Peptide Bonds Using Methyl Groups

机译:使用甲基探测肽键的电子结构

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摘要

The observed V_3 torsional barriers measured by microwave spectroscopy for nine methyl groups attached a to peptide bond linkages in five gas-phase biomimetics have been found to differ considerably from one molecule to the next and even depend on the position of substitution,being sensitive to structural changes at the other end of the peptide bond.In the search for an explanation for these results,ab initio calculations have been performed at the HF/6-311++G(d,p)level of theory and interpreted in terms of the natural bond orbitals and resonance structures of the peptide bond.These calculations reveal that resonance derealization in peptide bonds is influenced by methyl conformation through the coupling of vicinal sigma to sigma* orbital interactions with the n to pi*.Thus,CN double-bond character increases(and CO double-bond character decreases)as the methyl group is rotated from the syn to the anti position.A quasilinear correlation exists between the barriers to internal rotation of attached methyl groups and the relative importance of the two principal resonance structures that contribute to the peptide bond.
机译:通过微波光谱法对五个气相仿生物中通过九个甲基连接到肽键上的九个甲基进行了观察到的V_3扭转势垒,发现一个分子与另一个分子之间存在很大差异,甚至取决于取代位置,对结构敏感在寻找这些结果的解释时,从头计算是在HF / 6-311 ++ G(d,p)理论水平上进行的,并根据这些计算表明,通过邻位sigma至sigma *轨道相互作用以及n与pi *的耦合,甲基键构象影响了肽键中的共振脱位,从而使CN具有双键特征。当甲基从syn旋转到反位时增加(CO双键性降低)。内部旋转的壁垒之间存在准线性相关f连接的甲基基团和构成肽键的两个主要共振结构的相对重要性。

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