The Direct Anti-Virulence but Not Bactericidal Activity of Human Neutrophil Elastase against Moraxella catarrhalis .
Justyna RoszkowiakSiobhán McCleanAleksandra M MirończukDaria AugustyniakPublished in: International journal of molecular sciences (2023)
Neutrophil elastase (NE) contributes to innate antibacterial defense at both the intracellular (phagocytosis) and extracellular (degranulation, NETosis) levels. Moraxella catarrhalis , a human respiratory pathogen, can exist in an inflammatory milieu which contains NE. No data are available on the action of NE against M. catarrhalis or on the counteraction of NE-dependent host defenses by this pathogen. Using time-kill assays we found that bacteria are able to survive and replicate in the presence of NE. Transmission electron microscopy and flow cytometry studies with NE-treated bacteria revealed that while NE admittedly destabilizes the outer membrane leaflet, it does not cause cytoplasmic membrane rupture, suggesting that the enzyme does not target components that are essential for cell integrity. Using LC-MS/MS spectroscopy we determined that NE cleaved at least three virulent surface proteins in outer membrane vesicles (OMVs) of M. catarrhalis, including OMP CD, McaP, and TbpA. The cleavage of OMP CD contributes to the significant decrease in resistance to serum complement in the complement-resistant strain Mc6. The cleavage of McaP did not cause any sensitization to erythromycin nor did NE disturb its drug action. Identifying NE as a novel but subtle anti-virulence agent together with its extracellularly not-efficient bactericidal activity against M. catarrhalis may facilitate the pathogen's existence in the airways under inflammation.
Keyphrases
- escherichia coli
- endothelial cells
- immune response
- oxidative stress
- heart failure
- pseudomonas aeruginosa
- staphylococcus aureus
- cystic fibrosis
- stem cells
- machine learning
- antimicrobial resistance
- electronic health record
- mass spectrometry
- reactive oxygen species
- mitral valve
- high resolution
- single molecule
- mesenchymal stem cells
- transcription factor
- left ventricular
- cell therapy
- big data
- data analysis