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Updated: Nov 15, 2025

Morphological and Compositional Analysis of Neutrophil Extracellular Traps Induced by Microbial and Chemical Stimuli
Published on: November 4, 2022
Neutrophil and Eosinophil DNA Extracellular Trap Formation: Lessons From Pathogenic Fungi
Juliana da Costa Silva1, Glaucia de Azevedo Thompson-Souza2, Marina Valente Barroso1,2
1Institute of Microbiology Paulo de Góes, Federal University of Rio de Janeiro, Rio de Janeiro, Brazil.
Abstract:
Fungal infections represent a worldwide health problem. Fungal pathogens are responsible for a variety of conditions, including superficial diseases, allergic pathologies and potentially lethal invasive infections. Neutrophils and eosinophils have been implicated as effector cells in several pathologies. Neutrophils are major effector cells involved in the control of fungal infections and exhibit a plethora of antifungal mechanisms, such as phagocytosis, reactive oxygen species production, degranulation, extracellular vesicle formation, and DNA extracellular trap (ET) release. Eosinophils are polymorphonuclear cells classically implicated as effector cells in the pathogenesis of allergic diseases and helminthic infections, although their roles as immunomodulatory players in both innate and adaptive immunity are currently recognized. Eosinophils are also endowed with antifungal activities and are abundantly found in allergic conditions associated with fungal colonization and sensitization. Neutrophils and eosinophils have been demonstrated to release their nuclear and mitochondrial DNA in response to many pathogens and pro-inflammatory stimuli. ETs have been implicated in the killing and control of many pathogens, as well as in promoting inflammation and tissue damage. The formation of ETs by neutrophils and eosinophils has been described in response to pathogenic fungi. Here, we provide an overview of the mechanisms involved in the release of neutrophil and eosinophil ETs in response to fungal pathogens. General implications for understanding the formation of ETs and the roles of ETs in fungal infections are discussed.
Insights
Neutrophils and eosinophils release DNA extracellular traps (ETs) to combat fungal infections. Understanding these antifungal mechanisms is crucial for developing new treatments against dangerous fungal pathogens.
Area of Science:
- Immunology
- Mycology
- Cell Biology
Background:
- Fungal infections pose a significant global health threat, ranging from superficial conditions to life-threatening invasive diseases.
- Neutrophils and eosinophils are key immune cells involved in host defense against pathogens.
- Extracellular traps (ETs), released by immune cells, are increasingly recognized for their role in pathogen control and inflammation.
Purpose of the Study:
- To review the mechanisms by which neutrophils and eosinophils release extracellular traps (ETs) in response to fungal pathogens.
- To discuss the implications of ET formation by these cells in the context of fungal infections.
Main Methods:
- Literature review of studies investigating neutrophil and eosinophil extracellular trap formation.
- Analysis of known antifungal mechanisms employed by neutrophils and eosinophils.
- Synthesis of current understanding regarding ETs in fungal immunity.
Main Results:
- Neutrophils utilize diverse antifungal mechanisms, including phagocytosis, reactive oxygen species, and DNA extracellular trap (ET) release.
- Eosinophils, traditionally linked to allergy and helminthic infections, also possess antifungal activities and can form ETs.
- Both neutrophils and eosinophils release their DNA to form ETs in response to fungal stimuli, contributing to pathogen control.
Conclusions:
- Neutrophil and eosinophil extracellular traps (ETs) represent an important defense mechanism against fungal pathogens.
- Further research into ET formation and function is vital for understanding host-fungus interactions and developing novel antifungal strategies.
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