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Production and Visualization of Bacterial Spheroplasts and Protoplasts to Characterize Antimicrobial Peptide Localization
Published on: August 11, 2018
A novel antimicrobial peptide, scolopendin, from Scolopendra subspinipes mutilans and its microbicidal mechanism
Wonyoung Lee1, Jae-Sam Hwang2, Dong Gun Lee1
1School of Life Sciences, BK 21 Plus KNU Creative BioResearch Group, College of Natural Sciences, Kyungpook National University, Daehak-ro 80, Buk-gu, Daegu, 702-701, Republic of Korea.
Abstract:
A novel antimicrobial peptide (AMP) was identified from the centipede Scolopendra subspinipes mutilans by RNA sequencing, and the amino acid sequences predicted from the sequenced mRNAs were compared with those of known AMPs. We named this peptide scolopendin, according to its origin, and investigated the molecular mechanisms underlying its antimicrobial activity. Our findings showed that scolopendin had antimicrobial activity against several pathogenic microorganisms, but did not produce hemolysis of human erythrocytes. In addition, disturbances in the cell membrane potential, induction of potassium release from the cytosol, and increased membrane permeability of the microbes Candida albicans and Escherichia coli O157 were detected by the use of 3,3'-dipropylthiacarbocyanine iodide [DiSC3(5)] dye, potassium leakage assay, and propidium iodide influx assay, respectively, following scolopendin treatment. Further evidence to support the membrane-targeted action of scolopendin was obtained using artificial liposomes as models of the cell membrane. Use of calcein and FITC-labeled dextran leakage assays from scolopendin-treated giant unilamellar vesicles and large unilamellar vesicles showed that scolopendin has a pore-forming action on microbial membrane, with an estimated pore radius of 2.3-3.3 nm. In conclusion, scolopendin is a novel and potent AMP with a membrane-targeted mechanism of action.
Insights
A novel antimicrobial peptide, scolopendin, was discovered in centipedes. This potent peptide effectively targets microbial membranes, offering a new therapeutic avenue against pathogenic microorganisms.
Area of Science:
- Biochemistry
- Molecular Biology
- Microbiology
Background:
- Antimicrobial peptides (AMPs) are crucial components of innate immunity.
- Exploring novel AMPs from natural sources is vital for combating antimicrobial resistance.
Purpose of the Study:
- To identify and characterize a novel AMP from Scolopendra subspinipes mutilans.
- To elucidate the antimicrobial mechanism of the newly identified peptide, scolopendin.
Main Methods:
- RNA sequencing for peptide identification.
- Antimicrobial activity assays against pathogenic microorganisms.
- Membrane potential, potassium leakage, and permeability assays.
- Liposome-based assays (GUVs, LUVs) to determine pore formation.
Main Results:
- Scolopendin exhibits broad-spectrum antimicrobial activity without causing hemolysis.
- Scolopendin disrupts microbial cell membrane potential and increases permeability.
- Pore formation with a radius of 2.3-3.3 nm was observed in microbial membranes.
Conclusions:
- Scolopendin is a novel, potent antimicrobial peptide.
- Its mechanism of action involves targeted disruption of microbial cell membranes.
- Scolopendin represents a promising candidate for developing new antimicrobial agents.
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