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Mechanism and Origin of Chemical Selectivity in Oxaziridine-Based Methionine Modification: A Computational Study

机译:基于恶唑基甲氨酸修饰的化学选择性机制及起源:计算研究

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摘要

Oxaziridine-based redox sulfur imidation provides a breakthrough strategy for selective modification at methionine in proteins. The chemoselectivity of imidization (N-transfer) over oxidation (O-transfer) of the thioether functionality of methionine, and the modification selectivity of methionine over other amino acids, are the key features of this strategy. To elucidate the detailed reaction mechanism and the origin of the reported chemoselectivity, a theoretical investigation on the oxaziridine-based methionine modification reaction is reported. It is found that both the N-transfer and O-transfer pathways occur in a concerted mechanism. Distortion/interaction activation strain model analysis indicates that the N-transfer chemoselectivity is mainly controlled by the interaction energy. Orbital and charge analysis further supports that the interaction energy resulting from the orbital interaction favors the N-transfer pathway at the early stage of the reaction. The calculated reactivity of eight potential amino acid competitors with the oxaziridine shows excellent selectivity for methionine modification, consistent with the experimental observations. The scarcity of active species in neutral aqueous solution leads to the weak reactivity of tyrosine, lysine, and arginine. The stronger charge-transfer interactions between methionine and the oxaziridine compared with that for the other amino acids also play vital roles in the modification selectivity.
机译:基于恶唑的氧化还原硫酰亚胺化提供了蛋白质中蛋氨酸选择性改性的突破性策略。甲硫氨酸硫醚醚官能团的氧化(O-转移)的酰亚胺化(N-转移)的化学选择性,以及蛋氨酸在其它氨基酸上的改性选择性,是该策略的关键特征。为了阐明详细的反应机制和报告的化学选择性的来源,报道了对恶唑基甲硫氨酸改性反应的理论研究。发现N-转移和O-转移途径都发生在齐齐齐理的机制中。失真/相互作用激活应变模型分析表明N-转移化学选择性主要由相互作用能量控制。轨道和电荷分析进一步支持由轨道相互作用引起的相互作用能量在反应的早期阶段的N转移途径得到了态度。八个潜在的氨基酸竞争机的计算的反应性具有恶唑啶显示器对甲硫氨酸改性的优异选择性,与实验观察一致。中性水溶液中活性物种的稀缺导致酪氨酸,赖氨酸和精氨酸的弱反应性。与其他氨基酸之间的蛋氨酸和恶唑之间的较强的电荷转移相互作用也在修饰选择性中起到重要作用。

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  • 来源
    《The Journal of Organic Chemistry》 |2017年第18期|共8页
  • 作者单位

    Shaoxing Univ Zhejiang Key Lab Alternat Technol Fine Chem Proc Shaoxing 312000 Peoples R China;

    Qufu Normal Univ Sch Chem &

    Chem Engn Qufu 273165 Peoples R China;

    Shaoxing Univ Zhejiang Key Lab Alternat Technol Fine Chem Proc Shaoxing 312000 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 有机化学;
  • 关键词

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