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In Vivo Assessment of Alveolar Macrophage Efferocytosis Following Ozone Exposure
Published on: October 22, 2019
Defective immunometabolism pathways in cystic fibrosis macrophages
Kaitlin Hamilton1, Kathrin Krause1, Asmaa Badr1
1Department of Microbial Infection and Immunity, College of Medicine, The Ohio State University, Columbus, OH 43210, USA.
Background:
Mitochondria play a key role in immune defense pathways, particularly for macrophages. We and others have previously demonstrated that cystic fibrosis (CF) macrophages exhibit weak autophagy activity and exacerbated inflammatory responses. Previous studies have revealed that mitochondria are defective in CF epithelial cells, but to date, the connection between defective mitochondrial function and CF macrophage immune dysregulation has not been fully elucidated. Here, we present a characterization of mitochondrial dysfunction in CF macrophages.
Methods:
Mitochondrial function in wild-type (WT) and CF F508del/F508del murine macrophages was measured using the Seahorse Extracellular Flux analyzer. Mitochondrial morphology was investigated using transmission electron and confocal microscopy. Mitochondrial membrane potential (MMP) as well as mitochondrial reactive oxygen species (mROS) were measured using TMRM and MitoSOX Red fluorescent dyes, respectively. All assays were performed at baseline and following infection by Burkholderia cenocepacia, a multi-drug resistant bacterium that causes detrimental infections in CF patients.
Results:
We have identified impaired oxygen consumption in CF macrophages without and with B. cenocepacia infection. We also observed increased mitochondrial fragmentation in CF macrophages following infection. Lastly, we observed increased MMP and impaired mROS production in CF macrophages following infection with B. cenocepacia.
Conclusions:
The mitochondrial defects identified are key components of the macrophage response to infection. Their presence suggests that mitochondrial dysfunction contributes to impaired bacterial killing in CF macrophages. Our current study will enhance our understanding of the pathobiology of CF and lead to the identification of novel mitochondrial therapeutic targets for CF.
Insights
Mitochondrial dysfunction in cystic fibrosis (CF) macrophages impairs immune response and bacterial killing. This study characterizes these defects, offering insights into CF pathobiology and potential mitochondrial therapeutic targets.
Area of Science:
- Immunology
- Cell Biology
- Mitochondrial Biology
Background:
- Macrophages are crucial for immune defense, but cystic fibrosis (CF) macrophages show impaired autophagy and heightened inflammation.
- Previous research indicated mitochondrial defects in CF epithelial cells, yet the link to CF macrophage immune dysregulation remained unclear.
- This study investigates mitochondrial dysfunction specifically within CF macrophages.
Purpose of the Study:
- To characterize mitochondrial dysfunction in CF macrophages.
- To understand the role of mitochondrial defects in CF macrophage immune response to infection.
- To identify potential mitochondrial therapeutic targets for CF.
Main Methods:
- Seahorse Extracellular Flux analysis measured mitochondrial function in wild-type (WT) and CF F508del/F508del murine macrophages.
- Transmission electron and confocal microscopy assessed mitochondrial morphology.
- Mitochondrial membrane potential (MMP) and mitochondrial reactive oxygen species (mROS) were quantified using fluorescent dyes.
- Assays were conducted at baseline and after infection with Burkholderia cenocepacia.
Main Results:
- CF macrophages exhibited impaired oxygen consumption, both at baseline and following B. cenocepacia infection.
- Increased mitochondrial fragmentation was observed in CF macrophages post-infection.
- Following B. cenocepacia infection, CF macrophages showed increased MMP and impaired mROS production.
Conclusions:
- Identified mitochondrial defects are integral to macrophage response to infection.
- These defects suggest mitochondrial dysfunction contributes to reduced bacterial killing in CF macrophages.
- Findings enhance understanding of CF pathobiology and point to novel mitochondrial therapeutic avenues.
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