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Protein WISDOM: A Workbench for In silico De novo Design of BioMolecules
Published on: July 25, 2013
Rational Design of Broad-Spectrum Antimicrobial Peptides Derived from the Dengue Virus Capsid Alpha2 Sequence
Yingyu Wang1, Mingrui Liao1, Tianhao Ge1
1Biological Physics Laboratory, Department of Physics and Astronomy, School of Natural Science, The University of Manchester, Oxford Road, Manchester M13 9PL, U.K.
Abstract:
Antimicrobial peptides (AMP) offer an attractive alternative to antibiotics in the global fight against antibiotic resistance. AMPs can impose fast structural disruptions to microbial membranes and kill pathogens by causing the leakage of their internal contents, making it less likely for pathogens to develop resistance. However, current AMPs still suffer from various drawbacks including weak efficacy, unacceptable toxicity, and side effects. This work seeks to design a group of amphiphilic AMPs based on the α2 sequence of a Dengue viral capsid protein to address the challenge of ineffective membrane disruptions of AMPs. The design was also inspired by well-studied G(IIKK)3I-NH2 (G3) for broad-spectrum antimicrobial actions. All designed Dengue viral-inspired peptides displayed lower minimum inhibition concentrations and faster time-dependent killing than G3, with the fastest DVP-3 (RIFRAIRRIARFIR) achieving complete killing within 10 min. Fluorescence assays of AMP binding to bacterial membranes revealed varying degrees of membrane permeability change, depolarization, and leakage. Model inner membrane (IM) and outer membrane (OM) of Gram-negative bacteria facilitated leakage assay and neutron reflection, linking membrane binding and disruptions with antimicrobial behaviors. The findings reveal that DVP-3 could cause more effective disruptions to the bacterial OM than to the IM, consistent with its potent antimicrobial efficacy and rapid dynamic killing. This work offers new insights into how the newly designed AMPs destabilize bacterial membranes to improve antimicrobial performance and the combined approach allows effective in vitro AMP evaluation to overcome bacterial resistance.
Insights
New antimicrobial peptides (AMPs) inspired by Dengue virus show potent, rapid killing of bacteria by disrupting membranes. These novel peptides offer a promising alternative to traditional antibiotics for combating resistance.
Area of Science:
- Biochemistry
- Microbiology
- Drug Discovery
Background:
- Antimicrobial peptides (AMPs) are crucial in combating antibiotic resistance due to their membrane-disrupting mechanisms.
- Existing AMPs face limitations such as low efficacy, toxicity, and side effects.
- Developing novel AMPs with enhanced membrane disruption capabilities is essential.
Purpose of the Study:
- To design and evaluate novel amphiphilic antimicrobial peptides (AMPs) based on Dengue viral sequences.
- To address challenges of ineffective membrane disruption and improve antimicrobial performance.
- To investigate the mechanism of action, focusing on bacterial membrane destabilization.
Main Methods:
- Design of novel AMPs inspired by Dengue virus α2 sequence and G(IIKK)3I-NH2 (G3).
- Antimicrobial activity assessment using minimum inhibition concentration (MIC) and time-dependent killing assays.
- Investigation of membrane interactions using fluorescence assays (permeability, depolarization, leakage) and neutron reflection.
Main Results:
- Designed Dengue viral-inspired peptides (DVPs) exhibited lower MICs and faster killing than G3.
- DVP-3 demonstrated complete bacterial killing within 10 minutes.
- Fluorescence assays and neutron reflection revealed DVP-3 effectively disrupted the outer membrane (OM) more than the inner membrane (IM) of Gram-negative bacteria.
Conclusions:
- Novel Dengue viral-inspired AMPs, particularly DVP-3, show potent and rapid antimicrobial activity.
- These AMPs effectively destabilize bacterial membranes, offering improved antimicrobial performance.
- The study provides insights into AMP-membrane interactions and an effective in vitro evaluation approach for overcoming bacterial resistance.
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