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Updated: Nov 27, 2025

Antimicrobial Peptides Produced by Selective Pressure Incorporation of Non-canonical Amino Acids
Published on: May 4, 2018
Newly designed antimicrobial peptides with potent bioactivity and enhanced cell selectivity prevent and reverse
Ningyi Zhu1, Chao Zhong2, Tianqi Liu1
1School of Pharmacy, Lanzhou University, Lanzhou 730000, China.
Abstract:
The increasing prevalence of antibiotic resistance in Gram-negative bacteria calls for the discovery of novel effective therapeutic strategies urgently. Mastoparan-C (MP-C), a typical cationic α-helical antimicrobial peptide, possesses remarkable broad-spectrum antimicrobial activity. However, its high cytotoxicity toward normal mammalian cells precludes it for further development. In this study, to avoid non-specific membrane lysis and investigate the structure-function relationships of each amino acid of MP-C, a series of new MP-C analogs were rationally designed by amino acid substitution and peptide truncation. Three potential newly designed peptides L1G, L7A, and L1GA5K with excellent bioactivity, modest cell toxicity, low resistance tendency, and moderate stability to physiological salts and proteases were screened out. Moreover, the newly designed peptides showed synergy or additive effects against Gram-negative bacteria, when they combined with conventional antibiotics gentamicin, rifampin, and polymyxin B. The results from the time-kill kinetics, outer/inner membrane permeabilization, scanning electron microscope (SEM), and flow cytometry demonstrated that the newly designed peptides could kill bacteria rapidly by membrane destruction and intracellular contents leakage in a concentration and time-dependent manner. Specifically, the most cell-selective peptide L1GA5K exhibited potent antimicrobial activity against rifampin-resistant E. coli (RRE) and prevented the emergence of rifampin resistance in Enterobacter. Besides, L1GA5K was capable of reversing rifampin resistance in RRE through the outer membrane permeabilization when used in combination with rifampin. Collectively, our results suggested that the newly designed peptides are hopeful antibiotic alternatives, and the usage of them as an adjuvant to prevent and reverse antibiotic resistance is a promising strategy for tackling the risk of drug-resistant Gram-negative bacteria.
Insights
Novel antimicrobial peptides were designed to combat antibiotic resistance in Gram-negative bacteria. These peptides show promise as alternatives and adjuvants to existing antibiotics, effectively killing bacteria and reversing resistance.
Area of Science:
- Antimicrobial drug discovery
- Peptide therapeutics
- Bacterial resistance mechanisms
Background:
- Antibiotic resistance in Gram-negative bacteria is a growing global health threat.
- Mastoparan-C (MP-C) shows broad-spectrum activity but has high cytotoxicity.
- Novel strategies are urgently needed to overcome limitations of current antibiotics.
Purpose of the Study:
- To design and screen novel Mastoparan-C (MP-C) analogs with reduced cytotoxicity and improved therapeutic potential.
- To investigate the structure-function relationships of MP-C analogs.
- To evaluate the efficacy of designed peptides against antibiotic-resistant Gram-negative bacteria.
Main Methods:
- Rational design of MP-C analogs through amino acid substitution and peptide truncation.
- Screening of analogs for bioactivity, cytotoxicity, resistance tendency, and stability.
- Evaluation of synergistic effects with conventional antibiotics (gentamicin, rifampin, polymyxin B).
- Assessment of bacterial membrane permeabilization, intracellular leakage, and resistance reversal using time-kill kinetics, SEM, and flow cytometry.
Main Results:
- Three analogs (L1G, L7A, L1GA5K) were identified with excellent bioactivity, modest toxicity, low resistance, and moderate stability.
- Designed peptides demonstrated synergistic or additive effects with existing antibiotics.
- Peptides rapidly kill bacteria via membrane disruption and content leakage in a dose- and time-dependent manner.
- L1GA5K showed potent activity against rifampin-resistant E. coli, prevented resistance emergence, and reversed rifampin resistance.
Conclusions:
- Rationally designed MP-C analogs represent promising antibiotic alternatives.
- These peptides can be utilized as adjuvants to combat and reverse antibiotic resistance.
- The strategy offers a viable approach to address the challenge of drug-resistant Gram-negative bacteria.
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