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This work presents a density functional theory (DFT) study on the mechanism and origins of enantio- and regioselectivities in dual photoredox/chiral Brønsted acid-catalyzed asymmetric Minisci-type addition of carbon-centered radicals to N-heteroarenes [, , , 419-422]. The previously proposed mechanism has been partially revised. First, photoexcited *[Ir] is reductively quenched by TRIP anion rather than the experimentally proposed neutral radical generated from the chiral Brønsted acid cycle. Second, final product formation involves a hydrogen-atom transfer (HAT) from a neutral radical intermediate to the TRIP radical, instead of single-electron transfer (SET) to *[Ir]. The TRIP catalyst has been shown to play a triple role by reductively quenching *[Ir] with its anion form, activating the substrate, and inducing asymmetry. The calculated results rationalize the experimentally observed enantio- and regioselectivities and reveal that the enantioselectivity of the reaction originates from the hydrogen-bond interaction between TRIP and the N-H group of the carbon-centered radical, and the regioselectivity arises from the electron-withdrawing inductive effect from the protonated N-atom and the intramolecular hydrogen-bond interaction between the acetylamino group and the protonated pyridine ring. We also provide explanations for the experimentally observed a dramatic decrease in enantioselectivity when changing substrate or radical precursor and rationalize the solvent-controlled switch of regioselectivity.
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http://dx.doi.org/10.1021/acs.joc.0c00597 | DOI Listing |
J Am Chem Soc
August 2025
Department of Chemistry, Duke University, Durham, North Carolina 27708, United States.
We introduce a method for the 6,5-hydrofunctionalization of 2-azatrienes with -phosphinoyl imine electrophiles under CuH catalysis to prepare 1,4-diamines bearing two stereogenic centers with excellent regio-, diastereo-, and enantiocontrol. In comparison to previously disclosed 6,3-hydrofunctionalizations of azatrienes with (Ph-BPE)CuH or (-Bu-BDPP)CuH, the use of Josiphos SL-J001-1 as the supporting ligand facilitates regiodivergent introduction of the electrophile. We identify the electronic character of each phosphine of the ligand as critical to the observed regioselectivity and the utilization of an -phosphinoyl group on the imine to be essential.
View Article and Find Full Text PDFOrg Lett
August 2025
Analytical Research and Development, Merck & Co., Inc., Rahway, New Jersey 07065, United States.
We report a modular strategy for the synthesis of trisubstituted chiral piperidines. First, a scalable, chiral-pool synthesis of an orthogonally protected piperidine tricarboxylic acid diester was developed. This synthesis involves a formal 4 + 2 cyclization between choro-homoserine and acetylene dicarboxylate, followed by a diastereoselective reduction, cyclic anhydride formation, and regioselective ring-opening process to give the final product as a single enantio- and diastereomer at >50 g scale.
View Article and Find Full Text PDFJ Am Chem Soc
July 2025
College of Chemistry, Zhengzhou University, Zhengzhou, Henan 450001, China.
Catalyst-guided divergent synthesis marks a paradigm shift in organic synthesis, offering transformative potential to access structurally diverse molecules. By leveraging symmetric enolates as programmable synthons, we established a catalyst-guided atroposelective - and -acylation for the switchable divergent synthesis of N-C and N-N axially chiral pyridones. The outstanding enantio- and regiocontrol (- vs -acylation) originated from the development of new chiral 4-pyrrolidinopyridine (PPY) derivatives and PPY--oxides as orthogonal acyl-transfer catalysts.
View Article and Find Full Text PDFJ Agric Food Chem
July 2025
Institute of Engineering and Sustainable Development, University of International Integration of Afro-Brazilian Lusofonia, Campus das Auroras, Redenção 62790-970, CE, Brazil.
The enzymatic synthesis of esterified flavors is pivotal in the food, pharmaceutical, and cosmetic industries. Among the available approaches, lipase-catalyzed reactions have gained increasing attention due to the enzymes' biodegradability, high enantio- and regioselectivity, availability, and effectiveness under mild, eco-friendly conditions, aligning well with the principles of green chemistry. This topic was selected due to the vast potential of biocatalysis in the sustainable and efficient synthesis of diverse flavor compounds.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
August 2025
Department of Chemistry, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Republic of Korea.
Asymmetric hydroarylation of unactivated alkenes provides a direct route to enantiomerically enriched C─C bonds in aryl-containing compounds, a key transformation in pharmaceutical and natural product synthesis. While recent advances have achieved high regio- and enantioselectivity with terminal alkenes, controlled hydroarylation of unactivated internal alkenes remains challenging. Here, we report a nickel-hydride-catalyzed protocol that overcomes this limitation through a mechanistic paradigm shift.
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