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Regio-divergent propargylic substitution to generate functionally diverse products from identical starting materials remains a formidable challenge, probably due to the unpredictable regiochemical complexity. In practically, the synthesis of α-quaternary propargylic-substituted products is still much less developed, and preprepared nucleophiles are generally applied in this type of reaction with propargylic substrates, which limits the reaction efficiency and diversity of the obtained products. Herein, we disclose unprecedented three-component propargylic substitution of α-diazo esters with amines and propargylic carbonates under dirhodium/palladium dual catalysis. The key to the success of this multicomponent propargylic substitution is to avoid two-component side reactions through a tandem process of dirhodium(II)-catalyzed carbene insertion and palladium-catalyzed regiodivergent propargylic substitution. The judicious selection of a diphosphine (dppf) or monophosphine (BuBrettphos) as the ligand is crucial for the reaction to generate different products in a switchable way, α-quaternary 1,3-dienyl or propargylated products, with high regio- and chemoselectivities.
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http://dx.doi.org/10.1021/jacsau.3c00415 | DOI Listing |
Org Biomol Chem
September 2025
A.N. Nesmeyanov Institute of Organoelement Compounds, Russian Academy of Sciences, 28, bld. 1 Vavilova St, 119334 Moscow, Russian Federation.
4,4-Difluoro-4-bora-3,4-diaza--indacene systems (BODIPY) are widely investigated fluorophores. The BODIPY core allows for introducing substituents at different positions. Taking advantage of the versatile properties of carborane cages for the modification of photoactive compounds, we developed the synthesis of carborane-substituted BODIPYs.
View Article and Find Full Text PDFMethods Mol Biol
August 2025
Department of Cell and Chemical Biology, Leiden University Medical Centre, Leiden, The Netherlands.
Adenosine diphosphate ribose (ADPr) can be linked to proteins by ADPr-transferases, which use β-NAD as a substrate to form an α-glycosidic bond while displacing nicotinamide. To study the localization and interactions of ADP-ribosylated proteins within cells, or to conduct pulldown-enrichment experiments from cell lysates to identify interacting proteins, it is important to stabilize this cleavable bond to protect it from degradation by cellular enzymes. Here, we describe the synthesis of a stable, non-hydrolysable triazole linkage via copper(I) catalyzed azide-alkyne cycloaddition (CuAAC) between 1″-α-azido-ADPribose and N-terminally biotinylated SUMO2 bearing a propargyl glycine substitution on the His17 position.
View Article and Find Full Text PDFInt J Biol Macromol
August 2025
Water Pollution Research Department, National Research Centre, 33 El Buhouth St, Dokki 12622 Giza, Egypt. Electronic address:
Wastewater containing dyes and bacteria poses significant environmental and public health risks. This study presents a novel, bio-based dual-function material with efficient dye removal capabilities and potent antibacterial activity against pathogenic bacteria. Microcrystalline cellulose (MCC) was first functionalized with propargyl groups, then underwent a click reaction with 4,4'-diazido-1,1'-biphenyl, yielding propargylated-MCC-biphenyl triazole.
View Article and Find Full Text PDFOrg Lett
September 2025
Department of Chemistry and Biomolecular Sciences, Centre for Catalysis Research and Innovation (CCRI), University of Ottawa, Ottawa, Ontario K1N 6N5, Canada.
Pyrrolinones are frequently found in biologically active natural products and pharmaceuticals. As such, their synthesis has been the focus of several methodological studies. Described herein is a synthetic method for the direct conversion of terminal or arylated propargyl amines to 3-pyrrolin-2-ones utilizing a malonyl chloride and an amine base at a low temperature.
View Article and Find Full Text PDFAdv Mater
August 2025
Department of Chemistry, National University of Singapore, Singapore, 117543, Singapore.
Rational design of proximal coordination microenvironments surrounding catalytic sites to achieve optimal reaction kinetics represents a paramount pursuit in single-atom catalysts (SACs), yet continues to pose substantial synthetic challenges. Developing innovative strategies that simultaneously stabilize low-coordinated single-metal species on solid supports, while ensuring atomic precision and high activity, remains imperative. Herein, a de-saturation strategy for SACs is demonstrated (denoted as De-sat SACs) using a top-down approach based on a KOH-mediated Joule thermal shock to obtain under-coordinated and asymmetric SACs for efficient organic synthesis.
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