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Updated: Nov 4, 2025

Morphological and Compositional Analysis of Neutrophil Extracellular Traps Induced by Microbial and Chemical Stimuli
Published on: November 4, 2022
Significance of Mast Cell Formed Extracellular Traps in Microbial Defense
Daniel Elieh Ali Komi1, Wolfgang M Kuebler2,3,4
1Cellular and Molecular Research Center, Cellular and Molecular Medicine Institute, Urmia University of Medical Sciences, Urmia, Iran.
Abstract:
Mast cells (MCs) are critically involved in microbial defense by releasing antimicrobial peptides (such as cathelicidin LL-37 and defensins) and phagocytosis of microbes. In past years, it has become evident that in addition MCs may eliminate invading pathogens by ejection of web-like structures of DNA strands embedded with proteins known together as extracellular traps (ETs). Upon stimulation of resting MCs with various microorganisms, their products (including superantigens and toxins), or synthetic chemicals, MCs become activated and enter into a multistage process that includes disintegration of the nuclear membrane, release of chromatin into the cytoplasm, adhesion of cytoplasmic granules on the emerging DNA web, and ejection of the complex into the extracellular space. This so-called ETosis is often associated with cell death of the producing MC, and the type of stimulus potentially determines the ratio of surviving vs. killed MCs. Comparison of different microorganisms with specific elimination characteristics such as S pyogenes (eliminated by MCs only through extracellular mechanisms), S aureus (removed by phagocytosis), fungi, and parasites has revealed important aspects of MC extracellular trap (MCET) biology. Molecular studies identified that the formation of MCET depends on NADPH oxidase-generated reactive oxygen species (ROS). In this review, we summarize the present state-of-the-art on the biological relevance of MCETosis, and its underlying molecular and cellular mechanisms. We also provide an overview over the techniques used to study the structure and function of MCETs, including electron microscopy and fluorescence microscopy using specific monoclonal antibodies (mAbs) to detect MCET-associated proteins such as tryptase and histones, and cell-impermeant DNA dyes for labeling of extracellular DNA. Comparing the type and biofunction of further MCET decorating proteins with ETs produced by other immune cells may help provide a better insight into MCET biology in the pathogenesis of autoimmune and inflammatory disorders as well as microbial defense.
Insights
Mast cells (MCs) eliminate pathogens using antimicrobial peptides and extracellular traps (ETs). ETosis, a process involving DNA web ejection, is a key mechanism in microbial defense and immunity.
Area of Science:
- Immunology
- Cell Biology
- Microbiology
Background:
- Mast cells (MCs) are crucial for innate immunity, employing antimicrobial peptides and phagocytosis.
- MCs can also expel extracellular traps (ETs), web-like DNA structures, to combat pathogens.
Purpose of the Study:
- To review the biological significance of mast cell extracellular traps (MCETs) and their formation.
- To elucidate the molecular and cellular mechanisms underlying MCETosis.
- To summarize techniques for studying MCET structure and function.
Main Methods:
- Review of existing literature on MCET biology.
- Analysis of molecular studies identifying key pathways like NADPH oxidase and ROS in MCET formation.
- Description of microscopy techniques (electron and fluorescence) and antibody-based detection of MCET components.
Main Results:
- MCETosis involves nuclear membrane disintegration, chromatin release, and DNA web ejection, often leading to MC death.
- MCET formation is dependent on reactive oxygen species (ROS) generated by NADPH oxidase.
- Different microorganisms elicit varied MC responses, highlighting the specificity of MCETs.
Conclusions:
- MCETs represent a significant mechanism for microbial defense beyond traditional antimicrobial peptides and phagocytosis.
- Understanding MCET biology offers insights into inflammatory and autoimmune disorders.
- Further comparison of MCETs with ETs from other immune cells can enhance knowledge of MCET functions in host defense and disease.
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