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Published on: June 15, 2019
Microbial proteases and endothelial barrier disruption in sepsis: A neglected nexus
Shamitha S Rao1, Suchitra Shenoy M2, Ravi Kumar Gutti3
1Department of Public Health Genomics, Manipal School of Life Sciences, Manipal Academy of Higher Education, Manipal, India.
Abstract:
Sepsis is a life-threatening condition characterized by dysregulated host responses to infection and remains a leading cause of mortality globally. While host inflammatory pathways have been extensively studied, the contribution of bacterial proteases to sepsis pathogenesis remains underappreciated. Emerging evidence indicates that bacterial proteases act as potent virulence factors that directly target the vascular endothelium by cleaving junctional proteins, degrading the glycocalyx, inactivating anticoagulant molecules and degrading key coagulation factors such as fibrinogen, factor V, factor VIII and thrombin. This combined structural and functional damage leads to endothelial barrier failure, vascular leakage and progression toward disseminated intravascular coagulation (DIC). Additionally, bacterial proteases increase inflammatory cytokine release, degrade complement components and drive thrombo-inflammatory dysregulation. This review summarizes mechanistic insights into key microbial proteases such as EspP, Protease IV, LasB and SpeB, highlighting experimental models, diagnostic challenges and emerging protease-targeted therapeutic strategies with implications for improving sepsis outcomes.
Insights
Bacterial proteases are underappreciated contributors to sepsis, damaging blood vessels and promoting coagulation issues. Targeting these microbial enzymes offers a promising strategy to improve sepsis treatment and patient outcomes.
Area of Science:
- Microbiology
- Immunology
- Vascular Biology
Background:
- Sepsis is a global health crisis driven by dysregulated host responses to infection.
- Host inflammatory pathways are well-studied, but bacterial protease contributions to sepsis are often overlooked.
- Bacterial proteases are emerging as critical virulence factors in sepsis pathogenesis.
Purpose of the Study:
- To review the mechanisms by which bacterial proteases contribute to sepsis.
- To highlight key microbial proteases involved in sepsis.
- To discuss diagnostic challenges and therapeutic strategies targeting bacterial proteases in sepsis.
Main Methods:
- Literature review of mechanistic insights into bacterial proteases in sepsis.
- Summary of experimental models used to study protease activity in sepsis.
- Analysis of diagnostic challenges and emerging therapeutic approaches.
Main Results:
- Bacterial proteases damage the vascular endothelium by cleaving junctional proteins and degrading the glycocalyx.
- These proteases inactivate anticoagulant molecules and degrade coagulation factors, leading to endothelial barrier failure and disseminated intravascular coagulation (DIC).
- Bacterial proteases also exacerbate inflammation by increasing cytokine release and degrading complement components.
Conclusions:
- Bacterial proteases are significant contributors to sepsis pathogenesis through direct damage to the vascular endothelium and promotion of thrombo-inflammation.
- Understanding the roles of specific proteases like EspP, Protease IV, LasB, and SpeB is crucial.
- Targeting bacterial proteases represents a promising therapeutic avenue for improving sepsis outcomes.
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