对称化
对映选择合成
药效团
化学
酰化
有机催化
动力学分辨率
催化作用
金鸡纳生物碱
组合化学
金鸡纳
有机化学
计算化学
立体化学
作者
Brittany C. Haas,Ngiap‐Kie Lim,Janis Jermaks,Eden Gaster,Melody C. Guo,Thomas C. Malig,Jacob Werth,Haiming Zhang,F. Dean Toste,Francis Gosselin,Scott J. Miller,Matthew S. Sigman
标识
DOI:10.26434/chemrxiv-2024-qm8jp
摘要
Methods to access chiral sulfur (VI) pharmacophores are of interest in medicinal and synthetic chemistry. We report the desymmetrization of unprotected sulfonimidamides via asymmetric acylation with a cinchona-phosphinate catalyst. The desired products are formed in excellent yield and enantioselectivity with no observed bis-acylation. A data science-driven approach to substrate scope evaluation was coupled to high throughput experimentation (HTE) to facilitate statistical modeling in order to inform mechanistic studies. Reaction kinetics, catalyst structural studies, and density functional theory (DFT) transition state analysis elucidated the turnover-limiting step to be the collapse of the tetrahedral intermediate and provided key insights into the catalyst-substrate structure-activity relationships responsible for the origin of enantioselectivity. This study offers a reliable method for accessing enantioenriched sulfonimidamides to propel their application as pharmacophores and serves as an example of the mechanistic insight that can be gleaned from integrating data science and traditional physical organic techniques.
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