Kininogen supports inflammation and bacterial spreading during Streptococccus Pyogenes Sepsis
Juliane Köhler1, Claudia Maletzki2, Dirk Koczan3
1Institute of Medical Microbiology, Virology and Hygiene, Rostock University Medical Center, Rostock, Germany.
Background:
High-molecular-weight kininogen is a cofactor of the human contact system, an inflammatory response mechanism that is activated during sepsis. It has been shown that high-molecular-weight kininogen contributes to endotoxemia, but is not critical for local host defense during pneumonia by Gram-negative bacteria. However, some important pathogens, such as Streptococcus pyogenes, can cleave kininogen by contact system activation. Whether kininogen causally affects antibacterial host defense in S. pyogenes infection, remains unknown.
Methods:
Kininogen concentration was determined in course plasma samples from septic patients. mRNA expression and degradation of kininogen was determined in liver or plasma of septic mice. Kininogen was depleted in mice by treatment with selective kininogen directed antisense oligonucleotides (ASOs) or a scrambled control ASO for 3 weeks prior to infection. 24 h after infection, infection parameters were determined.
Findings:
Data from human and mice samples indicate that kininogen is a positive acute phase protein. Lower kininogen concentration in plasma correlate with a higher APACHE II score in septic patients. We show that ASO-mediated depletion of kininogen in mice indeed restrains streptococcal spreading, reduces levels of proinflammatory cytokines such as IL-1β and IFNγ, but increased intravascular tissue factor and fibrin deposition in kidneys of septic animals.
Interpretation:
Mechanistically, kininogen depletion results in reduced plasma kallikrein levels and, during sepsis, in increased intravascular tissue factor that may reinforce immunothrombosis, and thus reduce streptococcal spreading. These novel findings point to an anticoagulant and profibrinolytic role of kininogens during streptococcal sepsis.
Funding:
Full details are provided in the Acknowledgements section.
Insights
High-molecular-weight kininogen depletion restrains Streptococcus pyogenes spreading during sepsis by reducing inflammation and promoting anticoagulation. This suggests a novel therapeutic role for kininogens in managing streptococcal sepsis.
Area of Science:
- Immunology
- Infectious Diseases
- Hematology
Background:
- High-molecular-weight kininogen (HMWK) is a contact system cofactor involved in inflammatory responses during sepsis.
- While HMWK contributes to endotoxemia, its role in Gram-negative pneumonia defense is limited.
- Pathogens like Streptococcus pyogenes can cleave kininogen, raising questions about its role in S. pyogenes infection defense.
Purpose of the Study:
- To investigate the causal role of kininogen in antibacterial host defense against Streptococcus pyogenes infection.
- To determine the impact of kininogen levels on sepsis progression and inflammatory markers.
Main Methods:
- Kininogen concentrations were measured in septic patients and mice.
- Kininogen expression and degradation were analyzed in septic mice.
- Kininogen was depleted in mice using antisense oligonucleotides (ASOs) before S. pyogenes infection.
Main Results:
- Kininogen acts as a positive acute phase protein; lower concentrations correlate with higher APACHE II scores in septic patients.
- ASO-mediated kininogen depletion in mice reduced streptococcal spreading and pro-inflammatory cytokines (IL-1β, IFNγ).
- Kininogen depletion increased intravascular tissue factor and fibrin deposition in the kidneys of septic mice.
Conclusions:
- Kininogen depletion reduces plasma kallikrein levels, potentially reinforcing immunothrombosis via increased intravascular tissue factor.
- These findings suggest an anticoagulant and profibrinolytic role for kininogens during streptococcal sepsis.
- Kininogen modulation may offer a novel therapeutic strategy for streptococcal sepsis.
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