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ConspectusCyclic structures are common in natural products and pharmaceuticals, but pose major synthetic challenges. Transition metal-catalyzed cycloadditions provide a direct and efficient route to complex ring systems in a single step. The demand for new transition metal-catalyzed cycloadditions remains high, as these methods enable access to diverse ring systems with unique substituents and stereochemistries that are often unattainable through existing cycloaddition techniques. Vinylcyclopropanes (VCPs) are widely recognized as versatile five-carbon (C) synthons in various transition metal-catalyzed cycloadditions, including [5 + 1], [5 + 2], and [5 + 2 + 1] reactions. In these reactions, VCP uses its vinyl group to facilitate C-C bond cleavage in the strained cyclopropane, aided by transition metals. In contrast, isolated cyclopropanes typically lack this reactivity. Building on these advantages, we discovered that by altering the connectivity between VCPs and other synthons, such as alkenes, alkynes, allenes, or dienes, VCPs can act as novel three-carbon (C) synthons, enabling previously unknown cycloadditions. This account outlines these discoveries.By connecting two-carbon (C) synthons to VCPs at positions 1, 2, or α, we created various substrates, including 2--ene/allene-VCPs, 1-ene/yne/allene-VCPs, and α-ene-VCPs. These substrates undergo [3 + 2] cycloadditions to construct fused bicyclic structures. Notably, 1-ene/yne/allene-VCPs enable the construction of 5/5 fused rings with bridgehead quaternary centers, representing a remarkable synthetic advancement. This reaction has also been extended to its asymmetric variant, marking the first asymmetric [3 + 2] reaction of its kind. Furthermore, 1-ene/yne-VCPs have been adapted for [3 + 2 + 1] cycloadditions, allowing the synthesis of 5/6 and 6/6 fused ring systems with bridged quaternary centers. The utility of this method is demonstrated through its application in the synthesis of several natural products. The success of the [3 + 2 + 1] cycloaddition further inspired the development of a novel [4 + 2] reaction using yne-vinylcyclobutanones (yne-VCBOs). While VCBO has traditionally been used as a six-carbon (C) synthon, we discovered that it functions as a four-carbon (C) synthon when alkynes are connected at the 1-position of VCBOs. This [4 + 2] reaction cocatalyzed by Rh and Zn yields 5/6 or 6/6 fused rings with bridgehead quaternary centers, which is the same motif formed via the [3 + 2 + 1] reaction of 1-yne-VCPs and CO.The synthesis of seven-membered rings remains a challenging endeavor. By connecting a diene to the 1-position of VCPs, we developed a Rh-catalyzed [4 + 3] cycloaddition, yielding 5/7 fused ring structures. Additionally, introducing CO into the reaction enabled a [4 + 3]/[4 + 1] cycloaddition, generating 5/7/5 triangular ring scaffolds. Both [4 + 3] and [4 + 3]/[4 + 1] reactions feature an unprecedented -oxidative cyclometalation mode, which could be utilized in future cycloaddition design. Further developments may include expanding reaction scopes, applying these methods to natural product synthesis and medicinal chemistry, realizing asymmetric variants, understanding reaction mechanisms, and inventing new synthons and cycloaddition reactions.
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http://dx.doi.org/10.1021/acs.accounts.4c00779 | DOI Listing |
Angew Chem Int Ed Engl
September 2025
Shenzhen Grubbs Institute, Department of Chemistry, Guangming Advanced Research Institute, and Shenzhen Key Laboratory of Cross-Coupling Reactions, Southern University of Science and Technology, Shenzhen, 518055, China.
Despite the widespread utility of transition metal-catalyzed cross-couplings in organic synthesis, the coupling of unactivated alkyl electrophiles remains challenging due to sluggish oxidative addition and competing side reactions. Here, we describe a general and practical copper-catalyzed radical deoxyalkynylation of α-unfunctionalized alcohols through a synergistic combination of Barton-McCombie deoxygenation and copper-catalyzed radical cross-coupling. Key to the success of this method lies in not only the development of rigid anionic multiple N,N,N-ligand to exert remarkable selectivity of highly reactive unactivated alkyl radicals, but also the selection of one suitable oxidant to suppress Glaser homocoupling and other side products.
View Article and Find Full Text PDFJ Am Chem Soc
September 2025
Department of Chemistry, University of Chicago, Chicago, Illinois 60637, United States.
Transition metal-catalyzed "cut-and-sew" reactions offer an efficient approach to construct bridged and fused scaffolds; however, the substrates have been primarily restricted to cyclic ketones and activated cyclopropanes. Here we report the first cut-and-sew transformation between β-lactams and alkenes/alkynes via C-C bond activation. Diverse bridged and fused nitrogen-heterocycles are prepared using this method with good functional group tolerance.
View Article and Find Full Text PDFOrg Lett
September 2025
Department of Chemistry, Indian Institute of Technology Bombay, Powai, Mumbai 400076, India.
Allenes have gained prominence in transition metal-catalyzed C-H activation reactions due to their versatile reactivity. While C(sp)-H functionalization with allenes has been well explored, the functionalization of more challenging C(sp)-H bonds with allenes remains largely underexplored. Herein, we present a scalable Rh(III)-catalyzed strategy for the site-selective C(sp)-H dienylation of biologically relevant 8-methylquinolines employing allenyl carbinol acetates for accessing structurally diverse 1,3-dienes.
View Article and Find Full Text PDFChem Asian J
August 2025
Department of Applied Chemistry, Faculty of Engineering, Osaka University, Suita, Osaka, 565-0871, Japan.
The oxidative addition of C-halogen bonds of aryl halides or alkyl halides is a critical step in a wide variety of transition-metal-catalyzed C─C and C-heteroatom bond formation reactions. In contrast, the oxidative addition of Si-halogen bonds of halosilanes has not been used in the development of transition metal-catalyzed reactions, although halosilanes are known to be highly reactive in many organic reactions with oxygen-containing compounds. However, recent progress in transition metal-catalyzed reactions using halosilanes has resulted in several synthetically useful and revolutionary methodologies concerning organosilicon synthesis through the oxidative addition of Si-halogen bonds, even less reactive Si─Cl bonds.
View Article and Find Full Text PDFRSC Adv
August 2025
State Key Laboratory of Green Pesticides, Key Laboratory of Green Pesticide and Agricultural Bioengineering, Ministry of Education, Center for R&D of Fine Chemicals of Guizhou University Guiyang 550025 China
Antimicrobial resistance (AMR) has emerged as a critical global health challenge, necessitating urgent development of novel antimicrobial agents. Pyrrolo[2,3-]pyrimidine derivatives have garnered substantial research interest in pharmaceutical chemistry owing to their structural diversity, synthetic accessibility, and broad-spectrum bioactivity. This comprehensive review presents and discusses recent advancements in pyrrolo[2,3-]pyrimidine research, focusing on methodological innovations in scaffold construction.
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