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Real-Time Measurement of the Mitochondrial Bioenergetic Profile of Neutrophils
Published on: June 2, 2023
Prolonged exposure to neutrophil extracellular traps can induce mitochondrial damage in macrophages and dendritic
Luis Donis-Maturano1, Luvia E Sánchez-Torres2, Arturo Cerbulo-Vázquez3
1Department of Cell Biology, Cinvestav-IPN. AV. IPN No 2508, Zacatenco, C.P. 07330 D.F México.
Abstract:
Neutrophils are one the earliest, crucial innate defenses against innumerable pathogens. Their main microbicidal activities include phagocytosis and degranulation, with many pharmacologically active molecules contributing to inflammation. Recently, a novel antimicrobial mechanism was discovered; the Neutrophil Extracelullar Traps (NETs) formed by extrusion of DNA and associated molecules (histones, elastase, antimicrobial peptides, among others) which trap and kill microorganisms. Since NETs were recently described, research has focused on their induction and microbicidal properties, and recently on disease involvement. However, the functional consequences of NETs interacting with other immune cells, either resident or recruited during early inflammation, have not been assessed. We therefore investigated the consequences of exposing two major APCs, macrophages (Mfs) and conventional Dendritic Cells (cDCs) to NETs. Our data revealed that at early times (30 min), both Antigen Presenting Cells (APCs) showed induction of important costimulatory molecules (CD80, CD86). Unexpectedly, however, at later times (6 and 24 hours) NETs apparently triggered a cell death process in these APCs by a caspase- and Apoptosis induced factor (AIF)-dependent pathway, suggesting mitochondrial damage. By rhodamine-123 labelling we found that in both APCs, relatively prolonged exposure to NETs or their components importantly decreased the mitochondrial membrane potential. Ultrastructural analysis confirmed mitochondrial alterations in both APCs. Our results would suggest that early in inflammation, NETs can activate the two main APCs (Mfs and cDCs), but as the process continues, NETs can then initiate apoptosis of these cells through mitochondrial harm. Conceivable, this "late" induction of cell death in these two APCs might start limiting an ongoing inflammatory process to control it.
Insights
Neutrophil Extracellular Traps (NETs) initially activate macrophages and dendritic cells but later induce apoptosis via mitochondrial damage, potentially limiting inflammation.
Area of Science:
- Immunology
- Cell Biology
- Innate Immunity
Background:
- Neutrophils are key innate immune cells with microbicidal functions.
- Neutrophil Extracellular Traps (NETs) are a recently discovered antimicrobial mechanism.
- The impact of NETs on other immune cells, like antigen-presenting cells (APCs), remains unclear.
Purpose of the Study:
- To investigate the effects of NETs on macrophages (Mfs) and conventional dendritic cells (cDCs).
- To understand the functional consequences of NET-APC interactions during early inflammation.
Main Methods:
- Exposing Mfs and cDCs to NETs in vitro.
- Assessing costimulatory molecule expression (CD80, CD86).
- Evaluating cell death pathways (caspase-, AIF-dependent) and mitochondrial function (membrane potential, ultrastructure).
Main Results:
- Early NET exposure (30 min) upregulated costimulatory molecules on Mfs and cDCs.
- Later NET exposure (6-24 hours) induced caspase- and AIF-dependent apoptosis in Mfs and cDCs.
- NETs decreased mitochondrial membrane potential and caused ultrastructural mitochondrial damage in APCs.
Conclusions:
- NETs can activate APCs early in inflammation.
- Prolonged NET exposure leads to APC apoptosis through mitochondrial damage.
- This NET-induced APC cell death may serve to regulate and limit ongoing inflammatory responses.
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