Factor H Binds to Extracellular DNA Traps Released from Human Blood Monocytes in Response to Candida albicans
Luke D Halder1, Mahmoud A Abdelfatah1, Emeraldo A H Jo1
1Department of Infection Biology, Leibniz Institute for Natural Product Research and Infection Biology , Jena , Germany.
Abstract:
Upon systemic infection with human pathogenic yeast Candida albicans (C. albicans), human monocytes and polymorph nuclear neutrophilic granulocytes are the first immune cells to respond and come into contact with C. albicans. Monocytes exert immediate candidacidal activity and inhibit germination, mediate phagocytosis, and kill fungal cells. Here, we show that human monocytes spontaneously respond to C. albicans cells via phagocytosis, decondensation of nuclear DNA, and release of this decondensed DNA in the form of extracellular traps (called monocytic extracellular traps: MoETs). Both subtypes of monocytes (CD14++CD16-/CD14+CD16+) formed MoETs within the first hours upon contact with C. albicans. MoETs were characterized by the presence of citrullinated histone, myeloperoxidase, lactoferrin, and elastase. MoETs were also formed in response to Staphylococcus aureus and Escherichia coli, indicating a general reaction of monocytes to infectious microbes. MoET induction differs from extracellular trap formation in macrophages as MoETs are not triggered by simvastatin, an inhibitor of cholesterol synthesis and inducer of extracellular traps in macrophages. Extracellular traps from both monocytes and neutrophils activate complement and C3b is deposited. However, factor H (FH) binds via C3b to the extracellular DNA, mediates cofactor activity, and inhibits the induction of the inflammatory cytokine interleukin-1 beta in monocytes. Altogether, the results show that human monocytes release extracellular DNA traps in response to C. albicans and that these traps finally bind FH via C3b to presumably support clearance without further inflammation.
Insights
Human monocytes release DNA extracellular traps (MoETs) upon encountering Candida albicans, a key immune response. These MoETs bind factor H, potentially reducing inflammation during infection clearance.
Area of Science:
- Immunology
- Microbiology
- Cell Biology
Background:
- Human monocytes are crucial first responders to systemic Candida albicans infections.
- Monocytes possess immediate candidacidal activity, inhibiting fungal growth and mediating phagocytosis.
- Understanding monocyte responses to pathogens is vital for developing effective immunotherapies.
Purpose of the Study:
- To investigate the spontaneous response of human monocytes to Candida albicans.
- To characterize the formation and components of monocyte-derived extracellular traps (MoETs).
- To elucidate the role of MoETs in complement activation and immune regulation.
Main Methods:
- Exposure of human monocyte subtypes (CD14++CD16- and CD14+CD16+) to Candida albicans.
- Analysis of extracellular trap formation, including DNA decondensation and component characterization (histone, MPO, lactoferrin, elastase).
- Investigation of MoETs' interaction with complement system components (C3b) and factor H (FH).
Main Results:
- Human monocytes spontaneously form monocytic extracellular traps (MoETs) upon contact with Candida albicans.
- MoETs contain citrullinated histone, myeloperoxidase, lactoferrin, and elastase, and are also formed against Staphylococcus aureus and Escherichia coli.
- MoETs activate complement, leading to C3b deposition, and subsequently bind factor H, inhibiting IL-1 beta release.
Conclusions:
- Human monocytes deploy extracellular DNA traps (MoETs) as a defense mechanism against Candida albicans.
- MoETs exhibit a broad response to microbial pathogens, indicating a general monocyte defense strategy.
- Factor H binding to MoETs via C3b suggests a mechanism for pathogen clearance with controlled inflammation.
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