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Published on: May 8, 2017
Neutrophil dysfunction in the pathogenesis of cystic fibrosis
Guoshun Wang1,2, William M Nauseef3,4
1Department of Microbiology, Immunology, and Parasitology, and.
Abstract:
Polymorphonuclear neutrophils (PMNs) figure prominently in host defense against infection and in noninfectious inflammation. Mobilized early in an inflammatory response, PMNs mediate immediate cellular defense against microbes and orchestrate events that culminate in cessation of inflammation and restoration of homeostasis. Failure to terminate the inflammatory response and its causes can fuel exuberant inflammation characteristic of many human diseases, including cystic fibrosis (CF), an autosomal recessive genetic disease caused by mutations in the CF transmembrane conductance regulator. CF affects multiple end organs, with persistent bacterial infection and chronic neutrophilic inflammation in airways predominating the clinical picture. To match the diverse microbial challenges that they may encounter, PMNs possess a variety of antimicrobial systems to slow or kill invading microorganisms confined in their phagosomes. Prominent among PMN defense systems is their ability to generate hypochlorous acid, a potent microbicide, by reacting oxidants generated by the NADPH oxidase with myeloperoxidase (MPO) released from azurophilic granules in the presence of chloride (Cl-). Products of the MPO-H2O2-Cl system oxidize susceptible biomolecules and support robust antimicrobial action against many, but not all, potential human pathogens. Underscoring that the MPO-H2O2-Cl system is integral to optimal host defense and proper regulation of inflammation, individuals with defects in any component of this system, as seen in chronic granulomatous disease or MPO deficiency, incur increased rates or severity of infection and signs of dysregulated inflammatory responses. We focus attention in this review on the molecular basis for and the clinical consequences of defects in the MPO-H2O2-Cl system because of the compromised Cl transport seen in CF. We will discuss first how the MPO-H2O2-Cl system in healthy PMNs participates in host defense and resolution of inflammation and then review how a defective MPO-H2O2-Cl system contributes to the increased susceptibility to infection and dysregulated inflammation associated with the clinical manifestations of CF.
Insights
Polymorphonuclear neutrophils (PMNs) are crucial for host defense and inflammation resolution. Defects in their myeloperoxidase (MPO)-H2O2-Cl system, common in cystic fibrosis (CF), impair microbial killing and promote chronic inflammation.
Area of Science:
- Immunology
- Cell Biology
- Genetics
Background:
- Polymorphonuclear neutrophils (PMNs) are vital for host defense against pathogens and resolving inflammation.
- Dysfunctional PMN responses contribute to chronic inflammatory diseases like cystic fibrosis (CF).
- The myeloperoxidase (MPO)-H2O2-Cl system is a key antimicrobial mechanism in PMNs.
Purpose of the Study:
- To review the molecular basis and clinical impact of MPO-H2O2-Cl system defects.
- To explore the role of this system in host defense and inflammation resolution.
- To examine how MPO-H2O2-Cl system dysfunction contributes to CF pathogenesis.
Main Methods:
- Review of existing literature on PMN function, MPO-H2O2-Cl system, and CF.
- Analysis of molecular mechanisms underlying MPO-H2O2-Cl system activity.
- Correlation of MPO-H2O2-Cl system defects with clinical manifestations in CF.
Main Results:
- The MPO-H2O2-Cl system generates hypochlorous acid for potent antimicrobial action.
- Defects in this system, including compromised chloride transport in CF, impair pathogen killing.
- MPO-H2O2-Cl system dysfunction is linked to increased infection susceptibility and dysregulated inflammation in CF.
Conclusions:
- The MPO-H2O2-Cl system is essential for effective host defense and inflammatory homeostasis.
- Impaired chloride transport in CF compromises this system, exacerbating disease.
- Targeting the MPO-H2O2-Cl system may offer therapeutic strategies for CF and related inflammatory conditions.
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