Divergent Outcomes in Resilin-Like Peptide Cross-linking: Unexpected Photocatalytic Damage vs Enzymatic Success
Sradha M. Thomas, Che Zhang, Haixin Zhang, Yuxiang Wang, Sanaz Farajollahi, Patrick M. Dennis, Kun Wang, Marc R. Knecht, Tiffany R. WalshAbstract
Highly elastomeric materials are routinely found in nature that are generated from enzymatic cross-linking of proteins such as resilin. This process can be recreated on the benchtop using conventional photocatalytic approaches, which can be highly efficient; however, due to the large size of the elastomer generated via protein cross-linking, confirmation of the final structure remains elusive. Herein, we explore photocatalytic cross-linking of smaller resilin-like peptides (RLPs), taken from the resilin protein, which do not precipitate upon cross-linking. Using a [Ru(bpy)3]2+-based photocatalytic process, significant peptide degradation was observed, which dominated the reaction. Alternatively, enzymatic cross-linking of the peptides was observed to generate the anticipated product. Similar studies were conducted on a larger peptide construct where both the photocatalytic and enzymatic cross-linking process generated elastomeric materials with differing morphologies. AFM-based analysis confirmed vastly different Young’s moduli based upon the cross-linking strategy. Computational modeling was used to predict likely molecular-level structures and mechanical properties of the elastomer materials based on both the photocatalytic and enzymatic preparation processes, indicating that the case where the rate of cross-linking is greater than that of chain fragmentation is the more likely photocatalytic scenario, based on the trends in predicted Young’s modulus.