Histidine-Based Supramolecular Nanoassembly Exhibiting Dual Enzyme-Mimetic Functions: Altering the Tautomeric Preference of Histidine to Tailor Oxidative/Hydrolytic Catalysis.
basic_science · Level V
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- Record sourced from PubMed, PMID 38079506.
- Also identified by DOI 10.1021/acs.nanolett.3c02934.
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Abstract
Challenges persist in replicating enzyme-like active sites with functional group arrangements in supramolecular catalysis. In this study, we present a supramolecular material comprising Fmoc-modified histidine and copper. We also investigated the impact of noncanonical amino acids (<sub>δm</sub>H and <sub>εm</sub>H), isomers of histidine, on the catalytic process. The Fmoc-<sub>δm</sub>H-based nanoassembly exhibits an approximately 15-fold increase in oxidative activity and an ∼50-fold increase in hydrolytic activity compared to Fmoc-<sub>εm</sub>H (<i>k</i><sub>cat</sub>/<i>K</i><sub>m</sub>). This distinction arises from differences in basicity and ligation properties between the ε- and δ-nitrogen of histidine. The addition of guanosine monophosphate further enhances the oxidative activity of the histidine- and methylated histidine-based catalysts. The Fmoc-<sub>δm</sub>H/Cu<sup>2+</sup>-based nanoassembly catalyzes the oxidation/hydrolysis cascade of 2',7'-dichlorofluorescein diacetate, benefiting from the synergistic effect between the copper center and the nonligating ε-nitrogen of histidine. These findings advance the biomimetic catalyst design and provide insights into the mechanistic role of essential residues in natural systems.
Medical subject headings
- Biomimetics
- Histidine