Enzymatic Synthesis and Functional Characterization of Bioactive Microcin C-Like Compounds with Altered Peptide

Olga Bantysh1, Marina Serebryakova2, Inna Zukher3

  • 1Institute of Gene Biology, Russian Academy of Sciences, Moscow, Russia Peter the Great Saint Petersburg Polytechnical University, Saint Petersburg, Russia.

Abstract

Insights

Researchers modified the peptide antibiotic microcin C (McC) using recombinant enzymes. Some extended-peptide analogs showed enhanced biological activity and altered cellular uptake mechanisms, paving the way for novel antibacterial drug development.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Microbiology

Background:

  • Microcin C (McC) is a peptide-nucleotide antibiotic produced by Escherichia coli.
  • McC inhibits aspartyl-tRNA synthetase after cellular uptake and processing.
  • Previous synthesis of McC analogs with altered peptide lengths was challenging.

Purpose of the Study:

  • To generate and characterize microcin C (McC)-like molecules with modified peptide moieties using recombinant MccB.
  • To investigate the impact of altered peptide lengths on McC's biological activity and cellular uptake.
  • To explore the potential for developing novel antibacterial compounds based on McC.

Main Methods:

  • Utilized recombinant MccB enzyme for the adenylation of modified MccA heptapeptide precursors.
  • Synthesized and characterized McC analogs with extended peptide lengths.
  • Assessed biological activity and cellular uptake mechanisms (YejABEF and SbmA transporters) of the generated analogs.

Main Results:

  • N-terminal extensions of the MccA peptide did not impede MccB-catalyzed adenylation.
  • Some extended-peptide-length McC analogs exhibited improved biological activity.
  • Peptides reaching 20 amino acids in length were transported by both YejABEF and SbmA transporters.

Conclusions:

  • Enzymatic modification of chemically synthesized peptides can yield biologically active McC derivatives.
  • Extended peptide lengths can enhance McC's bioactivity and alter its transport into target cells.
  • This approach enables the creation of novel, nature-inspired antibacterial agents.