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Updated: Jul 21, 2025

Visualizing Macrophage Extracellular Traps Using Confocal Microscopy
Published on: October 19, 2017
Role of phagocyte extracellular traps during Mycobacterium tuberculosis infections and tuberculosis disease processes
María García-Bengoa1,2,3, Marita Meurer1,2, Ralph Goethe4
1Institute for Biochemistry, University of Veterinary Medicine Hannover, Hannover, Germany.
Abstract:
Mycobacterium tuberculosis (M.tb) infections remain one of the most significant causes of mortality worldwide. The current situation shows an emergence of new antibiotic-resistant strains making it difficult to control the tuberculosis (TB) disease. A large part of its success as a pathogen is due to its ability to persist for years or even decades without causing evident clinical manifestations. M.tb is highly successful in evading the host-defense by manipulating host-signalling pathways. Although macrophages are generally viewed as the key cell type involved in harboring M.tb, growing evidence shows that neutrophils also play a fundamental role. Both cells are known to act in multiple ways when encountering an invading pathogen, including phagocytosis, release of cytokines and chemokines, and oxidative burst. In addition, the formation of neutrophil extracellular traps (NETs) and macrophage extracellular traps (METs) has been described to contribute to M.tb infections. NETs/METs are extracellular DNA fibers with associated granule components, which are released upon activation of the cells by the pathogen or by pro-inflammatory mediators. On one hand, they can lead to a protective immune response by entrapment and killing of pathogens. However, on the other hand, they can also play a severe pathological role by inducing tissue damage. Extracellular traps (ETs) produced in the pulmonary alveoli can expand easily and expose tissue-damaging factors with detrimental effects. Since host-directed therapies offer a complementary strategy in TB, the knowledge of NET/MET formation is important for understanding potential protective versus detrimental pathways during innate immune signaling. In this review, we summarize the progress made in understanding the role of NETs/METs in the pathogenesis of TB.
Insights
Mycobacterium tuberculosis evades host defenses, with neutrophils and macrophages forming extracellular traps (NETs/METs). These traps can both protect against and harm the host during tuberculosis infection.
Area of Science:
- Immunology
- Microbiology
- Pathogenesis
Background:
- Tuberculosis (TB) remains a leading cause of global mortality, exacerbated by antibiotic-resistant Mycobacterium tuberculosis strains.
- Mycobacterium tuberculosis (M.tb) evades host immunity by manipulating cellular signaling pathways.
- While macrophages are primary host cells, neutrophils also play a critical role in M.tb infection.
Purpose of the Study:
- To review the dual role of neutrophil extracellular traps (NETs) and macrophage extracellular traps (METs) in Mycobacterium tuberculosis pathogenesis.
- To elucidate the mechanisms by which NETs/METs contribute to host defense and tissue damage in TB.
- To inform the development of host-directed therapies for TB.
Main Methods:
- Review of existing literature on M.tb infection, host immune responses, and extracellular trap formation.
- Analysis of the molecular mechanisms underlying NET/MET induction and function.
- Synthesis of data on the protective and pathological roles of NETs/METs in TB.
Main Results:
- NETs/METs are DNA structures released by neutrophils and macrophages upon M.tb encounter.
- These extracellular traps can entrap and kill M.tb, contributing to a protective immune response.
- Conversely, NETs/METs can cause significant tissue damage in the lungs, exacerbating TB pathology.
Conclusions:
- NET/MET formation represents a critical, yet complex, component of the innate immune response to M.tb.
- Understanding the balance between protective and detrimental functions of NETs/METs is crucial for TB treatment strategies.
- Targeting NET/MET pathways offers a promising avenue for novel host-directed therapies against tuberculosis.
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