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Updated: Nov 27, 2025

Assessment of Glutamine as a Fuel Source for Alveolar Macrophages Exposed to Chronic Ethanol Using an Extracellular Flux Bioanalyzer
Published on: November 15, 2024
Alcohol induces mitochondrial derangements in alveolar macrophages by upregulating NADPH oxidase 4
Niya L Morris1, Frank L Harris2, Lou Ann S Brown2
1Emory University, Department of Medicine, Division of Pulmonary, Allergy, Critical Care and Sleep Medicine, Atlanta, Georgia, 30322, United States; Atlanta Veterans Affairs Health Care System, Decatur, Georgia, 30033, United States.
Abstract:
Excessive alcohol users have increased risk of developing respiratory infections in part due to oxidative stress-induced alveolar macrophage (AM) phagocytic dysfunction. Chronic ethanol exposure increases cellular oxidative stress in AMs via upregulation of NADPH oxidase (Nox) 4, and treatment with the peroxisome proliferator-activated receptor gamma (PPARγ) ligand, rosiglitazone, decreases ethanol-induced Nox4. However, the mechanism by which ethanol induces Nox4 expression and the PPARγ ligand reverses this defect has not been elucidated. Since microRNA (miR)-92a has been predicted to target Nox4 for destabilization, we hypothesized that ethanol exposure decreases miR-92a expression and leads to Nox4 upregulation. Previous studies have implicated mitochondrial-derived oxidative stress in AM dysfunction. We further hypothesized that ethanol increases mitochondrial-derived AM oxidative stress and dysfunction via miR-92a, and that treatment with the PPARγ ligand, pioglitazone, could reverse these derangements. To test these hypotheses, a mouse AM cell line, MH-S cells, was exposed to ethanol in vitro, and primary AMs were isolated from a mouse model of chronic ethanol consumption to measure Nox4, mitochondrial target mRNA (qRT-PCR) and protein levels (confocal microscopy), mitochondria-derived reactive oxygen species (confocal immunofluorescence), mitochondrial fission (electron microscopy), and mitochondrial bioenergetics (extracellular flux analyzer). Ethanol exposure increased Nox4, enhanced mitochondria-derived oxidative stress, augmented mitochondrial fission, and impaired mitochondrial bioenergetics. Transfection with a miR-92a mimic in vitro or pioglitazone treatment in vivo diminished Nox4 levels, resulting in improvements in these ethanol-mediated derangements. These findings demonstrate that pioglitazone may provide a novel therapeutic approach to mitigate ethanol-induced AM mitochondrial derangements.
Insights
Chronic ethanol exposure impairs alveolar macrophage function by increasing oxidative stress and mitochondrial dysfunction. Pioglitazone treatment may reverse these alcohol-induced defects, offering a potential therapeutic strategy for respiratory infections.
Area of Science:
- Immunology
- Cell Biology
- Toxicology
Background:
- Excessive alcohol consumption increases respiratory infection risk due to impaired alveolar macrophage (AM) phagocytosis.
- Ethanol-induced oxidative stress upregulates NADPH oxidase 4 (Nox4) in AMs, contributing to dysfunction.
- Peroxisome proliferator-activated receptor gamma (PPARγ) ligands like rosiglitazone can reduce ethanol-induced Nox4.
Purpose of the Study:
- To elucidate the mechanism by which ethanol induces Nox4 expression and how PPARγ ligands reverse this.
- To investigate the role of microRNA-92a (miR-92a) in ethanol-induced AM dysfunction and Nox4 upregulation.
- To determine if pioglitazone can reverse ethanol-induced mitochondrial oxidative stress and dysfunction in AMs.
Main Methods:
- Exposed a mouse AM cell line (MH-S) and primary mouse AMs from ethanol-fed mice to ethanol in vitro and in vivo.
- Measured Nox4, mitochondrial target mRNA and protein, mitochondrial reactive oxygen species, mitochondrial fission, and bioenergetics.
- Utilized miR-92a mimic transfection and pioglitazone treatment as interventions.
Main Results:
- Ethanol exposure increased Nox4, mitochondrial oxidative stress, mitochondrial fission, and impaired mitochondrial bioenergetics in AMs.
- miR-92a mimic transfection and pioglitazone treatment reduced Nox4 levels.
- These interventions improved ethanol-induced mitochondrial derangements in AMs.
Conclusions:
- Ethanol-induced AM mitochondrial dysfunction is mediated by decreased miR-92a and subsequent Nox4 upregulation.
- Pioglitazone treatment effectively reverses these alcohol-induced mitochondrial derangements.
- Pioglitazone represents a potential therapeutic agent for mitigating alcohol-induced AM dysfunction and associated respiratory risks.
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