4.6 Article

Serum-Stable and Selective Backbone-N-Methylated Cyclic Peptides That Inhibit Prokaryotic Glycolytic Mutases

Journal

ACS CHEMICAL BIOLOGY
Volume 17, Issue 8, Pages 2284-2295

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acschembio.2c00403

Keywords

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Funding

  1. Japan Agency for Medical Research and Development (AMED) , Platform Project for Supporting Drug Discovery and Life Science Research (Basis for Supporting Innovative Drug Discovery and Life Science Research) [JP21am0101090]
  2. Japan Society for the Promotion of Science (JSPS) [JP20H05618]
  3. Mitsubishi Corporation International Scholarship (JEES Sponsor-Crowned Scholarship) [MITSU2011]
  4. National Institutes of Health (NIH) [1ZIATR000247]
  5. U.S. Department of Energy (DOE) [DE-AC02-06CH11357, DE-SC0012704]

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By reconfiguring the structure of tRNA, we have successfully incorporated N-methylated amino acids into peptide chains. By utilizing RaPID display technology, we have identified N-methylated macrocyclic peptides with potential bioactivity and conducted structural and functional studies.
N-Methylated amino acids (N-MeAAs) are privileged residues of naturally occurring peptides critical to bioactivity. However, de novo discovery from ribosome display is limited by poor incorporation of N-methylated amino acids into the nascent peptide chain attributed to a poor EF-Tu affinity for the N-methyl-aminoacyl-tRNA. By reconfiguring the tRNA's T-stem region to compensate and tune the EF-Tu affinity, we conducted Random nonstandard Peptides Integrated Discovery (RaPID) display of a macrocyclic peptide (MCP) library containing six different N-MeAAs. We have here devised a pool-and-split enrichment strategy using the RaPID display and identified N-methylated MCPs against three species of prokaryotic metal-ion-dependent phosphoglycerate mutases. The enriched MCPs reached 57% N-methylation with up to three consecutively incorporated N-MeAAs, rivaling natural products. Potent nanomolar inhibitors ranging in ortholog selectivity, strongly mediated by N-methylation, were identified. Co-crystal structures reveal an architecturally related Ce-2 Ipglycermide active-site metal-ion-coordinating Cys lariat MCP, functionally dependent on two cis N-MeAAs with broadened iPGM species selectivity over the original nematode-selective MCPs. Furthermore, the isolation of a novel metal-ion-independent Staphylococcus aureus iPGM inhibitor utilizing a phosphoglycerate mimetic mechanism illustrates the diversity of possible chemotypes encoded by the N-MeAA MCP library.

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