Cutting edge: Neutrophils license the maturation of monocytes into effective antifungal effectors Journal Article


Authors: Espinosa, V.; Dutta, O.; Heung, L. J.; Wang, K.; Chang, Y. J.; Soteropoulos, P.; Hohl, T. M.; Siracusa, M. C.; Rivera, A.
Article Title: Cutting edge: Neutrophils license the maturation of monocytes into effective antifungal effectors
Abstract: Neutrophils are critical for the direct eradication of Aspergillus fumigatus conidia, but whether they mediate antifungal defense beyond their role as effectors is unclear. In this study, we demonstrate that neutrophil depletion impairs the activation of protective antifungal CCR2+ inflammatory monocytes. In the absence of neutrophils, monocytes displayed limited differentiation into monocyte-derived dendritic cells, reduced formation of reactive oxygen species, and diminished conidiacidal activity. Upstream regulator analysis of the transcriptional response in monocytes predicted a loss of STAT1-dependent signals as the potential basis for the dysfunction seen in neutrophil-depleted mice. We find that conditional removal of STAT1 on CCR2+ cells results in diminished antifungal monocyte responses, whereas exogenous administration of IFN-γ to neutrophil-depleted mice restores monocyte-derived dendritic cell maturation and reactive oxygen species production. Altogether, our findings support a critical role for neutrophils in antifungal immunity not only as effectors but also as important contributors to antifungal monocyte activation, in part by regulating STAT1-dependent functions. Copyright © 2022 by The American Association of Immunologists, Inc.
Keywords: mouse; animal; animals; mice; antifungal agent; neutrophil; reactive oxygen species; reactive oxygen metabolite; neutrophils; monocyte; monocytes; antifungal agents; aspergillus fumigatus
Journal Title: Journal of Immunology
Volume: 209
Issue: 10
ISSN: 0022-1767
Publisher: The American Association of Immunologists, Inc  
Date Published: 2022-11-15
Start Page: 1827
End Page: 1831
Language: English
DOI: 10.4049/jimmunol.2200430
PUBMED: 36216513
PROVIDER: scopus
PMCID: PMC10115354
DOI/URL:
Notes: Article -- Export Date: 1 December 2022 -- Source: Scopus
Altmetric
Citation Impact
BMJ Impact Analytics
MSK Authors
  1. Tobias Martin Hohl
    105 Hohl