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Antimicrobial Peptides Produced by Selective Pressure Incorporation of Non-canonical Amino Acids
Published on: May 4, 2018
Siderophore peptide, a new type of post-translationally modified antibacterial peptide with potent activity
Xavier Thomas1, Delphine Destoumieux-Garzón, Jean Peduzzi
1Laboratoire de Chimie et Biochimie des Substances Naturelles, UMR 5154 CNRS USM 502, the Département Régulations, Développement et Diversité Moléculaire, Muséum National d'Histoire Naturelle, 63 Rue Buffon, 75005 Paris.
Abstract:
Microcin E492 (MccE492, 7886 Da), the 84-amino acid antimicrobial peptide from Klebsiella pneumoniae, was purified in a post-translationally modified form, MccE492m (8717 Da), from culture supernatants of either the recombinant Escherichia coli VCS257 strain harboring the pJAM229 plasmid or the K. pneumoniae RYC492 strain. Chymotrypsin digestion of MccE492m led to the MccE492m-(74-84) C-terminal fragment that carries the modification and that was analyzed by mass spectrometry and nuclear magnetic resonance at natural abundance. The 831-Da post-translational modification consists of a trimer of N-(2,3-dihydroxybenzoyl)-l-serine linked via a C-glycosidic linkage to a beta-d-glucose moiety, itself linked to the MccE492m Ser-84-carboxyl through an O-glycosidic bond. This modification, which mimics a catechol-type siderophore, was shown to bind ferric ions by analysis of the collision-induced dissociation pattern obtained for MccE492m-(74-84) by electrospray ion trap mass spectrometry experiments in the presence of FeCl(3). By using a series of wild-type and mutant isogenic strains, the three catechol-type siderophore receptors Fiu, Cir, and FepA were shown to be responsible for the recognition of MccE492m at the outer membrane of sensitive bacteria. Because MccE492m shows a broader spectrum of antibacterial activity and is more potent than MccE492, we propose that by increasing the microcin/receptor affinity, the modification leads to a better recognition and subsequently to a higher antimicrobial activity of the microcin. Therefore, MccE492m is the first member of a new class of antimicrobial peptides carrying a siderophore-like post-translational modification and showing potent activity, which we term siderophore-peptides.
Insights
The modified Microcin E492 (MccE492m) antimicrobial peptide exhibits enhanced potency due to a novel siderophore-like modification. This modification increases affinity for bacterial receptors, leading to broader antibacterial activity and a new class of siderophore-peptides.
Area of Science:
- Microbiology
- Biochemistry
- Structural Biology
Background:
- Microcin E492 (MccE492) is an antimicrobial peptide produced by Klebsiella pneumoniae.
- Post-translational modifications can significantly alter peptide function and activity.
Purpose of the Study:
- To characterize the post-translational modification of MccE492.
- To elucidate the mechanism by which this modification enhances antimicrobial activity.
- To identify bacterial receptors involved in MccE492m recognition.
Main Methods:
- Purification of modified Microcin E492 (MccE492m) from recombinant and native strains.
- Mass spectrometry and nuclear magnetic resonance (NMR) for structural analysis of the modification.
- Ferric ion binding assays using collision-induced dissociation (CID) mass spectrometry.
- Bacterial growth inhibition assays with wild-type and mutant strains to identify receptors.
Main Results:
- A novel 831-Da post-translational modification was identified on MccE492m, consisting of a trimer of N-(2,3-dihydroxybenzoyl)-l-serine linked to glucose.
- This modification mimics a catechol-type siderophore and binds ferric ions.
- The outer membrane receptors Fiu, Cir, and FepA mediate MccE492m recognition in sensitive bacteria.
- MccE492m displays broader spectrum and higher potency compared to unmodified MccE492.
Conclusions:
- MccE492m represents a new class of antimicrobial peptides termed 'siderophore-peptides'.
- The siderophore-like modification enhances antimicrobial activity by increasing microcin-receptor affinity.
- This modification strategy offers potential for developing novel antimicrobial agents.
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