De Novo Discovery of Pseudo‐Natural Prenylated Macrocyclic Peptide Ligands

Author:

Inoue Sumika1,Thanh Nguyen Dinh1,Hamada Keisuke2,Okuma Rika1,Okada Chikako2,Okada Masahiro3,Abe Ikuro4,Sengoku Toru2,Goto Yuki156ORCID,Suga Hiroaki1ORCID

Affiliation:

1. Department of Chemistry, Graduate School of Science The University of Tokyo Bunkyo 113-0033 Tokyo Japan

2. Department of Biochemistry, Graduate School of Medicine Yokohama City University Kanazawa-ku 236-0004 Yokohama Japan

3. Department of Material and Life Chemistry Kanagawa University Kanagawa-ku 221-8686 Yokohama Japan

4. Graduate School of Pharmaceutical Sciences The University of Tokyo Bunkyo 113-0033 Tokyo Japan

5. Department of Chemistry Graduate School of Science Kyoto University Sakyo 606-8502 Kyoto Japan

6. Toyota Riken Rising Fellow Toyota Physical and Chemical Research Institute Sakyo 606-8502 Kyoto Japan

Abstract

AbstractPrenylation of peptides is widely observed in the secondary metabolites of diverse organisms, granting peptides unique chemical properties distinct from proteinogenic amino acids. Discovery of prenylated peptide agents has largely relied on isolation or genome mining of naturally occurring molecules. To devise a platform technology for de novo discovery of artificial prenylated peptides targeting a protein of choice, here we have integrated the thioether‐macrocyclic peptide (teMP) library construction/selection technology, so‐called RaPID (Random nonstandard Peptides Integrated Discovery) system, with a Trp‐C3‐prenyltransferase KgpF involved in the biosynthesis of a prenylated natural product. This unique enzyme exhibited remarkably broad substrate tolerance, capable of modifying various Trp‐containing teMPs to install a prenylated residue with tricyclic constrained structure. We constructed a vast library of prenylated teMPs and subjected it to in vitro selection against a phosphoglycerate mutase. This selection platform has led to the identification of a pseudo‐natural prenylated teMP inhibiting the target enzyme with an IC50 of 30 nM. Importantly, the prenylation was essential for the inhibitory activity, enhanced serum stability, and cellular uptake of the peptide, highlighting the benefits of peptide prenylation. This work showcases the de novo discovery platform for pseudo‐natural prenylated peptides, which is readily applicable to other drug targets.

Funder

Japan Society for the Promotion of Science

Publisher

Wiley

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