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Asymmetric functionalization of inert C-H bonds is undoubtedly a synthetically significant yet challenging bond-forming process, allowing for the preparation of densely functionalized molecules from abundantly available feedstocks. In the past decade, our group and others have found that trivalent phosphorus ligands are capable of facilitating Pd-catalyzed allylic C-H functionalization of α-alkenes upon using -quinone as an oxidant. In these reactions, a 16-electron Pd(0) complex bearing a monodentate phosphorus ligand, a -quinone, and an α-alkene has been identified as a key intermediate. Through a concerted proton and two-electron transfer process, electrophilic π-allylpalladium is subsequently generated and can be leveraged to forge versatile chemical bonds with a wide range of nucleophiles. This Account focuses on describing the origin, evolution, and synthetic applications of Pd-catalyzed asymmetric allylic C-H functionalization reactions, with an emphasis on the fundamental mechanism of the concerted proton and two-electron transfer process in allylic C-H activation.Enabled by the cooperative catalysis of the palladium complex of triarylphosphine, a primary amine, and a chiral phosphoric acid, an enantioselective α-allylation of aldehydes with α-alkenes is established. The combination of chiral phosphoric acid and a palladium complex of a chiral phosphoramidite ligand allows the allylic C-H alkylation of α-alkenes with pyrazol-5-ones to give excellent enantioselectivities, wherein the chiral ligand and chiral phosphoric acid synergistically control the stereoselectivity. Notably, the palladium-phosphoramidite complexes are also efficient catalysts for allylic C-H alkylation, with a wide scope of nucleophiles. In the case of 1,4-dienes, the geometry and coordination pattern of the nucleophile are able to vary the transition states of bond-forming events and thereby determine the /-, regio-, and stereoselectivities.These enantioselective allylic C-H functionalization reactions are tolerant of a wide range of nucleophiles and α-alkenes, providing a large library of optically active building blocks. Based on enantioselective intramolecular allylic C-H oxidation, the formal synthesis of (+)-diversonol is accomplished, and enantioselective intramolecular allylic C-H amination can enable concise access to letermovir. In particular, the asymmetric allylic C-H alkylation of 1,4-dienes with azlactones offers highly enantioenriched α,α-disubstituted α-amino acid derivatives that are capable of serving as key building blocks for the enantioselective synthesis of lepadiformine alkaloids. In addition, a tachykinin receptor antagonist and (-)-tanikolide are also synthesized with chiral molecules generated from the corresponding allylic C-H alkylation reactions.
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http://dx.doi.org/10.1021/acs.accounts.0c00477 | DOI Listing |
J Org Chem
August 2025
Graduate School of Pharmaceutical Sciences, Kyoto University, Kyoto 606-8501, Japan.
Transformation of allylic C-H bonds into C-C bonds in a regioselective manner represents a powerful approach to generating complex molecules from simple starting materials. Herein, we report a protocol for net δ-C-H alkylation of allyl alcohols involving a sequential azo-ene reaction and an attendant Ni-catalyzed allylic substitution with Grignard reagents. This two-step strategy enables the regioselective alkylation of distal C-H bonds, a transformation that remains challenging via direct approaches under transition-metal catalysis.
View Article and Find Full Text PDFJ Am Chem Soc
August 2025
Roger Adams Laboratory, Department of Chemistry, University of Illinois Urbana-Champaign, Urbana, Illinois 61801, United States.
-alkyl arylamines are important structural motifs in pharmaceuticals, yet traditional alkylating methods rely on the nucleophilicity of the amine and make access to such compounds with valuable bioproperties challenging. While metal-mediated reactions may alleviate these limitations, they often encounter amine-metal interactions that can hinder catalysis or lead to deleterious pathways. Herein, we report a palladium(II) [Pd(II)]/sulfoxide-oxazoline(SOX)/phosphoric acid-mediated C(sp)H/N(sp) cross-coupling of 53 arylamine nucleophiles and 39 terminal olefins to furnish >80 diverse tertiary (3°) arylamines in excellent yields (average 82%) and selectivities (>20:1 /, >20:1 linear/branched).
View Article and Find Full Text PDFJ Am Chem Soc
August 2025
Key Laboratory of Chemical Biology of Fujian Province, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, China.
Bipolarolides A and B are members of the ophiobolin family of sesterterpenes, characterized by their intricate cage-like structures. Herein we report a concise asymmetric total synthesis of bipolarolides A and B enabled by the type-II Diels-Alder reaction. The synthesis features a sequence of key transformations: an iridium-catalyzed enantioselective allylation to establish the first stereocenter, type-II Diels-Alder reaction to rapidly assemble the bicyclo[3.
View Article and Find Full Text PDFChem Commun (Camb)
August 2025
School of Chemistry and Chemical Engineering, Guangxi University, Nanning 530004, P. R. China.
We report a cobalt-catalyzed C-H functionalization strategy for the modular alkylation and allylation of 2-arylthiazoles using maleimides or allyl acetates as coupling partners. This protocol enables efficient, -selective C-H bond transformations in a single step, providing a broad range of functionalized thiazole derivatives. The developed methodology offers a novel and versatile platform for the direct C-H alkylation and allylation of 2-arylthiazole scaffolds, characterized by operational simplicity, a wide substrate scope, and high tolerance toward diverse functional groups.
View Article and Find Full Text PDFNatl Sci Rev
August 2025
Center of Basic Molecular Science, Department of Chemistry, Tsinghua University, Beijing 100084, China.
Achieving sustainable catalytic transformations requires synergistic optimization of solvent systems, catalytic motifs and energy inputs. Herein, we report a synergistic Pd/hydroquinone catalytic system that enables aerobic allylic C-H functions under ambient conditions (room temperature to 50°C, air) with high turnover frequency (TOF), using ethanol/water as a green medium. This strategy achieves unparalleled synthetic efficiency and demonstrates remarkable versatility across two pivotal transformations (alkylation and amination) involving over 90 products (up to 96% yield).
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