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40. The Mitsunobu Reaction for the Gentle Covalent Attachment of Biomolecules to Graphene Oxide

M. E. Wolf, W. M. Vickery, W. Swift-Ramirez, A. M. Arnold, J. D. Orlando, S. J. Schmidt, Y. Liu, J. Er, R. Schusterbauer, R. Ahmed, P. Nickl, J. Radnik, I. S. Donskyi, S. A. Sydlik – 2025

Graphene oxide (GO) has emerged as a promising biomaterial as it is easily and cheaply synthesized, strong, cytocompatible, osteoinductive, and has a wellcharacterized aqueous degradation pathway. It is also a great substrate for functionalization with biomolecules such as proteins, peptides, and small molecules that can enhance or add bioactivity. Covalent chemical linkages as opposed to typical noncovalent association methods are preferable so that the biomolecules do not quickly diffuse away or face replacement by other proteins, which is critical in long time scale applications like bone regeneration. However, covalent chemistry tends to carry a drawback of harsh reaction conditions that can damage the structure, conformation, and therefore function of a delicate biomolecule like a protein. Here, the Mitsunobu reaction is introduced as a novel method of covalently attaching proteins to graphene oxide. It features gentle reaction conditions and has the added benefit of utilizing the plentiful basal plane alcohol functionalities on graphene oxide, allowing for high yield protein functionalization. The amino acid Glycine (G), the protein bovine serum albumin (BSA), and the small molecule SVAK-12 are utilized to create the three Mitsunobu Graphene (MG) materials G-MG, BSA-MG, and SVAK-MG that demonstrate the wide applicability of this functionalization method.

Title
40. The Mitsunobu Reaction for the Gentle Covalent Attachment of Biomolecules to Graphene Oxide
Author
M. E. Wolf, W. M. Vickery, W. Swift-Ramirez, A. M. Arnold, J. D. Orlando, S. J. Schmidt, Y. Liu, J. Er, R. Schusterbauer, R. Ahmed, P. Nickl, J. Radnik, I. S. Donskyi, S. A. Sydlik
Date
2025
Identifier
DOI: 10.1016/j.carbon.2025.120221
Source(s)
Citation
Carbon 2025, 238, 120221
Type
Text