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Antimicrobial Peptides Produced by Selective Pressure Incorporation of Non-canonical Amino Acids
Published on: May 4, 2018
Antibacterial peptide PMAP-37(F34-R), expressed in Pichia pastoris, is effective against pathogenic bacteria and
Chunming Dong1, Lijun Xu2, Weitao Lu2
1College of Marine and Environmental Sciences, Tianjin University of Science and Technology, Tianjin, 300457, China. mingchundongjy@tust.edu.cn.
Background:
Recently, researchers have focused on the search for alternatives to conventional antibiotics. Antimicrobial peptides are small bioactive peptides that regulate immune activation and have antibacterial activity with a reduced risk of bacterial resistance. Porcine myeloid antibacterial peptide 37 (PMAP-37) is a small-molecule peptide with broad-spectrum antibacterial activity isolated from pig bone marrow, and PMAP-37(F34-R) is its analogue. In this study, PMAP-37(F34-R) was recombinantly expressed in Pichia pastoris, and the recombinant peptide was further investigated for its antibacterial properties, mechanism and preservative in plums.
Results:
To obtain a Pichia pastoris strain expressing PMAP-37(F34-R), we constructed a plasmid expressing recombinant PMAP-37(F34-R) (pPICZα-PMAP-37(F34-R)-A) and introduced it into Pichia pastoris. Finally, we obtained a highly active recombinant peptide, PMAP-37(F34-R), which inhibited the activity of both Gram-positive and Gram-negative bacteria. The minimum inhibitory concentration is 0.12-0.24 µg/mL, and it can destroy the integrity of the cell membrane, leading to cell lysis. It has good stability and is not easily affected by the external environment. Hemolysis experiments showed that 0.06 µg/mL-0.36 µg/mL PMAP-37(F34-R) had lower hemolysis ability to mammalian cells, and the hemolysis rate was below 1.5%. Additionally, 0.36 µg/mL PMAP-37(F34-R) showed a good preservative effect in plums. The decay and weight loss rates of the treated samples were significantly lower than those of the control group, and the respiratory intensity of the fruit was delayed in the experimental group.
Conclusions:
In this study, we constructed a recombinant Pichia pastoris strain, which is a promising candidate for extending the shelf life of fruits and has potential applications in the development of new preservatives.
Insights
Researchers developed a novel antimicrobial peptide, PMAP-37(F34-R), using Pichia pastoris. This peptide shows broad-spectrum antibacterial activity and effectively preserves plums, offering a potential alternative to conventional antibiotics.
Area of Science:
- Biochemistry
- Microbiology
- Food Science
Background:
- Growing need for alternatives to conventional antibiotics due to resistance.
- Antimicrobial peptides (AMPs) offer antibacterial activity with reduced resistance risk.
- Porcine myeloid antibacterial peptide 37 (PMAP-37) and its analogue PMAP-37(F34-R) show promise.
Purpose of the Study:
- Recombinant expression of PMAP-37(F34-R) in Pichia pastoris.
- Investigate antibacterial properties and mechanism of action.
- Evaluate preservative potential in plums.
Main Methods:
- Plasmid construction for recombinant PMAP-37(F34-R) expression.
- Introduction into Pichia pastoris for peptide production.
- Determination of minimum inhibitory concentration (MIC) and cell membrane integrity disruption.
- Hemolysis assays for mammalian cell safety.
- Application trials as a plum preservative.
Main Results:
- Highly active recombinant PMAP-37(F34-R) obtained.
- Broad-spectrum inhibition of Gram-positive and Gram-negative bacteria (MIC: 0.12-0.24 µg/mL).
- PMAP-37(F34-R) destroys cell membrane integrity, causing lysis.
- Low hemolysis rate (<1.5%) at effective concentrations.
- Significant reduction in plum decay and weight loss; delayed respiration.
Conclusions:
- Recombinant Pichia pastoris strain successfully produces active PMAP-37(F34-R).
- PMAP-37(F34-R) demonstrates potent antibacterial activity and membrane-disrupting mechanism.
- Effective preservative for plums, extending shelf life.
- Potential for developing new, safe, and effective food preservatives.
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