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The antimicrobial peptide MPX kills Actinobacillus pleuropneumoniae and reduces its pathogenicity in mice
Lei Wang1, Xueqin Zhao2, Chunling Zhu3
1College of Animal Science and Veterinary Medicine, Henan Institute of Science and Technology, Xinxiang 453003, China; College of Animal Science and Veterinary Medicine, Henan Agricultural University, Zhengzhou 450000, China.
Abstract:
Actinobacillus pleuropneumoniae is the causative agent of highly contagious and fatal respiratory infections, causing substantial economic losses to the global pig industry. Due to increased antibiotic resistance, there is an urgent need to find new antibiotic alternatives for treating A. pleuropneumoniae infections. MPX is obtained from wasp venom and has a killing effect on various bacteria. This study found that MPX had a good killing effect on A. pleuropneumoniae and that the minimum inhibitory concentration (MIC) was 16 μg/mL. The bacterial density of A. pleuropneumoniae decreased 1000 times after MPX (1 × MIC) treatment for 1 h, and the antibacterial activity was not affected by pH or temperature. Fluorescence microscopy showed that MPX (1 × MIC) destroyed the bacterial cell membrane after treatment for 0.5 h, increasing membrane permeability and releasing bacterial proteins and Ca2+, Na+ and other cations. In addition, MPX (1 × MIC) treatment significantly reduced the formation of bacterial biofilms. Quantitative RT-PCR results showed that MPX treatment significantly upregulated the expression of the PurC virulence gene and downregulated that of ApxI, ApxII, and Apa1. In addition, the Sap A gene was found to play an important role in the tolerance of A. pleuropneumoniae to antimicrobial peptides. Therapeutic evaluation in a murine model showed that MPX protects mice from a lethal dose of A. pleuropneumoniae and relieves lung inflammation. This study reports the use of MPX to treat A. pleuropneumonia infections, laying the foundation for the development of new drugs for bacterial infections.
Insights
MPX, derived from wasp venom, effectively kills Actinobacillus pleuropneumoniae by damaging its cell membrane. This discovery offers a promising new antibiotic alternative for treating bacterial infections in pigs and potentially other species.
Area of Science:
- Microbiology
- Biochemistry
- Veterinary Medicine
Background:
- Actinobacillus pleuropneumoniae causes severe swine respiratory disease, leading to significant economic losses.
- Rising antibiotic resistance necessitates novel therapeutic strategies against A. pleuropneumoniae.
Purpose of the Study:
- To investigate the antimicrobial potential of MPX, a wasp venom component, against Actinobacillus pleuropneumoniae.
- To elucidate the mechanism of action and evaluate the therapeutic efficacy of MPX.
Main Methods:
- Determined the minimum inhibitory concentration (MIC) of MPX against A. pleuropneumoniae.
- Assessed bacterial viability, cell membrane integrity, and biofilm formation post-MPX treatment.
- Analyzed gene expression changes using quantitative RT-PCR.
- Evaluated MPX efficacy in a murine model of A. pleuropneumoniae infection.
Main Results:
- MPX demonstrated potent bactericidal activity against A. pleuropneumoniae with an MIC of 16 μg/mL.
- MPX disrupted the bacterial cell membrane, increased permeability, and reduced biofilm formation.
- MPX modulated the expression of key virulence genes (ApxI, ApxII, Apa1, PurC) and identified Sap A's role in peptide tolerance.
- MPX treatment protected mice from lethal A. pleuropneumoniae challenge and reduced lung inflammation.
Conclusions:
- MPX exhibits significant antimicrobial activity against Actinobacillus pleuropneumoniae through cell membrane disruption.
- MPX demonstrates therapeutic potential for treating A. pleuropneumoniae infections and warrants further development as a novel antibiotic alternative.
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