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Published on: January 26, 2016
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.
Unlabelled:
Escherichia coli microcin C (McC) consists of a ribosomally synthesized heptapeptide attached to a modified adenosine. McC is actively taken up by sensitive Escherichia coli strains through the YejABEF transporter. Inside the cell, McC is processed by aminopeptidases, which release nonhydrolyzable aminoacyl adenylate, an inhibitor of aspartyl-tRNA synthetase. McC is synthesized by the MccB enzyme, which terminally adenylates the MccA heptapeptide precursor MRTGNAN. Earlier, McC analogs with shortened peptide lengths were prepared by total chemical synthesis and were shown to have strongly reduced biological activity due to decreased uptake. Variants with longer peptides were difficult to synthesize, however. Here, we used recombinant MccB to prepare and characterize McC-like molecules with altered peptide moieties, including extended peptide lengths. We find that N-terminal extensions of E. coli MccA heptapeptide do not affect MccB-catalyzed adenylation and that some extended-peptide-length McC analogs show improved biological activity. When the peptide length reaches 20 amino acids, both YejABEF and SbmA can perform facilitated transport of toxic peptide adenylates inside the cell. A C-terminal fusion of the carrier maltose-binding protein (MBP) with the MccA peptide is also recognized by MccB in vivo and in vitro, allowing highly specific adenylation and/or radioactive labeling of cellular proteins.
Importance:
Enzymatic adenylation of chemically synthesized peptides allowed us to generate biologically active derivatives of the peptide-nucleotide antibiotic microcin C with improved bioactivity and altered entry routes into target cells, opening the way for development of various McC-based antibacterial compounds not found in nature.
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.

