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Restricting the ψ Torsion Angle Has Stereoelectronic Consequences on a Scissile Bond: An Electronic Structure Analysis

机译:限制ψ扭转角对易裂键具有立体电子效应:电子结构分析

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摘要

Protein motion is intimately linked to enzymatic catalysis, yet the stereoelectronic changes that accompany different conformational states of a substrate are poorly defined. Here we investigate the relationship between conformation and stereoelectronic effects of a scissile amide bond. Structural studies have revealed that the C-terminal glycine of ubiquitin and ubiquitin-like proteins adopts a syn (ψ ~ 0°) or gauche (ψ ~ ±60°) conformation upon interacting with deubiquitinases/ubiquitin-like proteases. We used hybrid density functional theory and natural bond orbital analysis to understand how the stereoelectronic effects of the scissile bond change as a function of φ and ψ torsion angles. This led to the discovery that when ψ is between 30° and −30° the scissile bond becomes geometrically and electronically deformed. Geometric distortion occurs through pyramidalization of the carbonyl carbon and amide nitrogen. Electronic distortion is manifested by a decrease in the strength of the donor–acceptor interaction between the amide nitrogen and antibonding orbital (π*) of the carbonyl. Concomitant with the reduction in nN → π* delocalization energy, the sp2 hybrid orbital of the carbonyl carbon becomes richer in p-character, suggesting the syn configuration causes the carbonyl carbon hybrid orbitals to adopt a geometry reminiscent of a tetrahedral-like intermediate. Our work reveals important insights into the role of substrate conformation in activating the reactive carbonyl of a scissile bond. These findings have implications for designing potent active site inhibitors based on the concept of transition state analogues.
机译:蛋白质运动与酶催化密切相关,但是与底物不同构象状态相伴的立体电子变化却定义不清。在这里,我们研究了可构型酰胺键的构象与立体电子效应之间的关系。结构研究表明,遍在蛋白和遍在蛋白样蛋白的C末端甘氨酸与去泛素化酶/遍在蛋白样蛋白酶相互作用时具有syn(ψ〜0°)或gauche(ψ〜±60°)构象。我们使用混合密度泛函理论和自然键轨道分析来了解可裂键的立体电子效应如何随φ和ψ扭转角而变化。这导致发现,当ψ在30°和-30°之间时,易裂键发生几何变形和电子变形。几何变形是通过羰基碳和酰胺氮的锥体反应发生的。电子畸变表现为酰胺氮与羰基的抗键轨道(π*)之间的供体-受体相互作用强度降低。伴随着nN→π*离域能的降低,羰基碳的sp 2 杂化轨道的p字符变得更丰富,这表明顺式构型使羰基碳杂化轨道的几何形状让人联想到四面体状中间体。我们的工作揭示了对底物构象在激活可裂解键的反应性羰基中的作用的重要见解。这些发现对根据过渡态类似物的概念设计有效的活性位点抑制剂具有重要意义。

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  • 期刊名称 other
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  • 年(卷),期 -1(54),37
  • 年度 -1
  • 页码 5748–5756
  • 总页数 21
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