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Reactivity Profiling for High-Yielding Ynamine-Tagged Oligonucleotide Click Chemistry Bioconjugations. | LitMetric

Reactivity Profiling for High-Yielding Ynamine-Tagged Oligonucleotide Click Chemistry Bioconjugations.

Bioconjug Chem

Department of Pure and Applied Chemistry, University of Strathclyde, Thomas Graham Building, 295 Cathedral Street, Glasgow G1 1XL, U.K.

Published: November 2024

AI Article Synopsis

  • The CuAAC reaction is essential for creating bioconjugates but can cause oxidative damage due to the use of copper catalysts.
  • Ynamines are shown to be more effective in these reactions, allowing for lower copper usage and faster formation of 1,4-triazole products.
  • This study identifies optimal conditions for synthesizing oligodeoxyribonucleotide bioconjugates, demonstrating that ynamine-based reactions outperform traditional CuAAC methods and enhancing the efficiency of bioconjugate preparation.

Article Abstract

The Cu-catalyzed azide-alkyne cycloaddition (CuAAC) reaction is a key ligation tool used to prepare bioconjugates. Despite the widespread utility of CuAAC to produce discrete 1,4-triazole products, the requirement of a Cu catalyst can result in oxidative damage to these products. Ynamines are superior reactive groups in CuAAC reactions and require lower Cu loadings to produce 1,4-triazole products. This study discloses a strategy to identify optimal reaction conditions for the formation of oligodeoxyribonucleotide (ODN) bioconjugates. First, the surveying of reaction conditions identified that the ratio of Cu to the choice of reductant (i.e., either sodium ascorbate or glutathione) influences the reaction kinetics and the rate of degradation of bioconjugate products. Second, optimized conditions were used to prepare a variety of ODN-tagged products and ODN-protein conjugates and compared to conventional CuAAC and Cu-free azide-alkyne (3 + 2)cycloadditions (SPAAC), with ynamine-based examples being faster in all cases. The reaction optimization platform established in this study provides the basis for its wider utility to prepare CuAAC-based bioconjugates with lower Cu loadings while maintaining fast reaction kinetics.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11583209PMC
http://dx.doi.org/10.1021/acs.bioconjchem.4c00353DOI Listing

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