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Enantiopure propargylic amines are highly valuable synthetic building blocks. Much effort has been devoted to develop methods for their preparation. The arguably most important strategy is the 1,2-addition of alkynes to imines. Despite remarkable progress, the known methods using Zn and Cu catalysts suffer from the need for high catalyst loadings, typically ranging from 2-60 mol % for neutral aldimine substrates. Here we report a planar chiral Pd complex acting as very efficient catalyst for direct asymmetric alkyne additions to imines, requiring very low catalyst loadings. Turnover numbers of up to 8700 were accomplished. Our investigation suggests that a Pd-acetylide complex is generated as a catalytically relevant intermediate by the aid of an acac ligand acting as internal catalytic base. It is shown that the catalyst is quite stable under the reaction conditions and that product inhibition is not an issue. A total of 39 examples is shown which all yielded almost enantiopure products.
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http://dx.doi.org/10.1002/anie.202206835 | DOI Listing |
Transition-metal-catalyzed C-H alkylation of heteroaromatics with alkenes represents an atom-economical and cost-effective strategy for accessing industrially and pharmaceutically relevant compounds. However, the selective C5-H alkylation of biomass-derived furfural and its isosteric analog, thiophene-2-carboxaldehyde, highly challenging yet industrially vital substrates, has remained elusive. Herein, we disclose a Ni/NHC-catalyzed strategy for the C5-H alkylation of furan- and thiophene-2-carboxaldehydes with styrenes and norbornene, enabled by a readily installable and recyclable N-PMP (p-methoxyphenyl) imine protecting group.
View Article and Find Full Text PDFAdv Funct Mater
May 2025
Department of Materials Science & Engineering, University of Pennsylvania, Philadelphia, PA 19104, USA.
Hydrogels are routinely used as scaffolds to mimic the extracellular matrix for tissue engineering. However, common strategies to covalently crosslink hydrogels employ reaction conditions with potential off-target biological reactivity. The limited number of suitable bioorthogonal chemistries for hydrogel crosslinking restricts how many material properties can be independently addressed to control cell fate.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
September 2025
Division of Organic Chemistry, CSIR-National Chemical Laboratory, Dr. Homi Bhabha Road, Pune, 411008, India.
The amidine group and its derivatives serve as proteolytically stable bioisosteres of the peptide bond, and their selective incorporation into peptides attributes significant chemical and biological features. This study introduces an efficient synthesis of amidine-containing peptides by a copper-catalyzed, solid-phase-compatible multicomponent reaction (MCR), leveraging ketenimine intermediates that are generated in situ. Through the reaction of sulfonyl azides with terminal alkynes and a wide variety of amines, we establish the robust on-resin synthesis of δ/ε-amidine amino acids, arginine isologues, fluorescently labeled peptides, drug-peptide hybrids, and PEGylated derivatives.
View Article and Find Full Text PDFJ Org Chem
August 2025
School of Chemical Engineering and Light Industry, Guangdong University of Technology, Guangzhou, 510006, China.
A nickel-catalyzed three-component carboamination strategy has been developed for the regio- and stereoselective synthesis of tetrasubstituted enamines from internal alkynes, organoboronic acids, and anthranils. This system also enables chemodivergent access to α,β-unsaturated imines by employing propargyl alcohols as versatile substrates.
View Article and Find Full Text PDFChem Sci
August 2025
Institute of Chemical Research of Catalonia (ICIQ), The Barcelona Institute of Science and Technology (BIST) 43007 Tarragona Spain
We report the results of our investigations on the role of the octa-imine bis-calix[4]pyrrole cage 1 in mediating confined 1,3-dipolar cycloaddition reactions of a series of 4-azido(alkyl)-pyridine--oxides (alkyl = null, Me, Et; 2a-c) with 1-(2-propynyl)-4(1)-pyridinone (4). We performed H NMR binding studies of the different substrates with the octa-imine cage, evidencing the formation of thermodynamically and kinetically highly stable inclusion homo-complexes featuring 1 : 1 and 2 : 1 stoichiometry. We used simulated speciation profiles and performed ITC experiments to thermodynamically characterize the formed complexes.
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