Department of Organic Chemistry, Indian Institute of Science, Bangalore, Karnataka 560012, India.
J Org Chem. 2022 Jun 17;87(12):7919-7933. doi: 10.1021/acs.joc.2c00573. Epub 2022 Jun 2.
C-H functionalization of indoles via Fe carbenoids presents an attractive strategy to obtain biologically important structural motifs. However, obtaining good stereoselectivity with Fe has been a significant challenge. It is unclear whether the low selectivity is due to a radical pathway or an ionic mechanism involving metal-free species. We therefore present a density functional theory (DFT) study of indole alkylation with diazoacetates catalyzed by Fe(ClO)TMEDA/spirobisoxazoline and myoglobin. We explore three mechanistic pathways: nucleophilic, radical, and oxocarbenium routes. The nucleophilic pathway is the most feasible with the formation of an enol species that tautomerizes to furnish the alkylated indole. While this mechanism is routinely proposed, the stereochemical model has been conspicuously absent until now. We show that the conventionally invoked enol pathway is not responsible for the low enantiomeric excess. The enol intermediate can stay coordinated to the catalyst via different binding sites placing the enol in proximity to the chiral environment and affecting the stereoselective proton transfer. Both the binding strength and the chiral environment are crucial for obtaining high selectivity. Our study provides the much needed insights for the modest-low selectivities of Fe systems and could help in expediting the discovery of an efficient catalytic system. These mechanistic underpinnings could also be applicable to other metal (Rh, Pd, Cu, .)-catalyzed X-H insertion reactions.
通过铁卡宾对吲哚进行 C-H 官能化是获得具有重要生物学结构的一种很有吸引力的策略。然而,用铁获得良好的对映选择性一直是一个重大挑战。目前还不清楚低选择性是由于自由基途径还是涉及无金属物种的离子机制。因此,我们提出了密度泛函理论(DFT)研究,研究了 Fe(ClO)TMEDA/螺二恶唑啉和肌红蛋白催化下重氮乙酸酯与吲哚的烷基化反应。我们探索了三种机理途径:亲核、自由基和氧杂卡宾途径。形成烯醇物种的亲核途径是最可行的,该烯醇物种通过互变异构化提供烷基化吲哚。虽然这种机制通常被提出,但立体化学模型直到现在才明显缺失。我们表明,常规推断的烯醇途径不是导致对映体过量值低的原因。烯醇中间体可以通过不同的结合位点与催化剂配位,使烯醇靠近手性环境并影响立体选择性质子转移。结合强度和手性环境对于获得高选择性都是至关重要的。我们的研究为铁体系的适度低选择性提供了急需的见解,并可能有助于加快发现高效催化体系。这些机理基础也可能适用于其他金属(Rh、Pd、Cu、.)催化的 X-H 插入反应。