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Updated: Sep 15, 2025

Antimicrobial Peptides Produced by Selective Pressure Incorporation of Non-canonical Amino Acids
Published on: May 4, 2018
Expanding the Chemical Space of Antimicrobial Peptides via Enzymatic Prenylation
Hikari Ozawa1, Azusa Miyata1, Seiichiro Hayashi2
1Graduate School of Integrated Pharmaceutical and Nutritional Sciences, University of Shizuoka, Shizuoka, Shizuoka 422-8526, Japan.
Abstract:
Antimicrobial peptides act primarily at the bacterial membrane interface. We report a biocatalytic strategy that enhances their potency by up to 18-fold. The improvement results from the enzymatic installation of bulky isoprenoid chains, which strengthens peptide-membrane interactions and promotes membrane destabilization. We characterize PalQ, an isoprenoid synthase-related prenyltransferase that is uniquely amenable to enzyme engineering. PalQ catalyzes prenylation at both N- and C-terminal tryptophan residues via positionally distinct Cδ2 and Cγ alkylation, respectively. Structure-guided mutagenesis of the prenyl donor pocket, combined with glycine substitutions near the acceptor tryptophan, expanded PalQ's substrate scope to include diverse antimicrobial peptides and long-chain donors such as geranylgeranyl diphosphate. A computationally optimized PalQ variant further improved performance under high-salt and organic solvent conditions, enabling late-stage modification of poorly soluble peptides. These results establish PalQ as a versatile platform for site-selective lipidation and expand the accessible chemical space for peptide and protein engineering.
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