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Antimicrobial Peptides Produced by Selective Pressure Incorporation of Non-canonical Amino Acids
Published on: May 4, 2018
Endopeptidase O promotes Streptococcus suis immune evasion by cleaving the host- defence peptide cathelicidins
Mingjie Jin1, Siyu Liang1, Jing Wang1
1State Key Laboratory for Animal Disease Control and Prevention, Harbin Veterinary Research Institute, Chinese Academy of Agricultural Sciences, Harbin, China.
Abstract:
Streptococcus suis is a zoonotic Gram-positive bacterium that causes invasive infections such as sepsis and meningitis, threatening public health worldwide. For successful establishment of infection, the bacterium should subvert the innate effectors of immune defence, including the cathelicidin family of host-defence peptides that combat pathogenic bacteria by directly disrupting cell membranes and coordinating immune responses. Here, our study shows that an extracellular endopeptidase O (PepO) of S. suis contributes to assisting the bacterium to resist cathelicidin-mediated killing, as the deletion of the pepO gene makes S. suis more sensitive to the human cathelicidin LL-37, as well as its mouse equivalent, mCRAMP. This protease targets and cleaves both LL-37 and mCRAMP, degrading them into shorter peptides with only a few amino acids, thereby abrogating their ability to kill S. suis. By cleaving LL-37 and mCRAMP, PepO impairs their chemotactic properties for neutrophil migration and undermines their anti-apoptosis activity, which is required for prolonging neutrophil lifespan. Also, PepO inhibits the ability of LL-37 and mCRAMP to promote lysosome development in macrophages. Moreover, the loss of PepO attenuates organ injury and decreases bacterial burdens in a murine model of S. suis bacteraemia. Taken together, these data provide novel insights into the role of the intrinsic proteolytic characteristics of PepO in S. suis-host interaction. Our findings demonstrate that S. suis utilizes the PepO protease to cleave cathelicidins, which is an immunosuppressive strategy adopted by this bacterium to facilitate pathogenesis.
Insights
Streptococcus suis uses the PepO protease to degrade host cathelicidins, like LL-37, enabling bacterial survival and infection. This mechanism helps the bacterium evade immune defenses and cause disease.
Area of Science:
- Microbiology
- Immunology
- Bacteriology
Background:
- Streptococcus suis is a zoonotic pathogen causing severe infections globally.
- Innate immunity, including cathelicidins, combats bacterial invaders.
- Pathogens must evade host defenses for successful infection.
Purpose of the Study:
- To investigate the role of Streptococcus suis extracellular endopeptidase O (PepO) in evading cathelicidin-mediated immunity.
- To understand how PepO contributes to S. suis pathogenesis.
Main Methods:
- Gene deletion of pepO in S. suis.
- Assays measuring bacterial sensitivity to human (LL-37) and mouse (mCRAMP) cathelicidins.
- Proteolytic activity assays for PepO against cathelicidins.
- Murine model of S. suis bacteraemia to assess organ injury and bacterial burden.
Main Results:
- Deletion of pepO increased S. suis sensitivity to LL-37 and mCRAMP.
- PepO directly cleaved and inactivated LL-37 and mCRAMP.
- PepO-mediated cathelicidin cleavage impaired neutrophil recruitment and survival.
- PepO also inhibited cathelicidin-induced lysosome development in macrophages.
- Loss of PepO attenuated organ damage and reduced bacterial load in a mouse infection model.
Conclusions:
- Streptococcus suis utilizes the PepO protease as a key virulence factor.
- PepO degrades cathelicidins, thereby suppressing innate immune responses.
- This proteolytic strategy facilitates S. suis pathogenesis and immune evasion.
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