Low Fluoride Regulates Macrophage Polarization Through Mitochondrial Autophagy Mediated by PINK1/Parkin Axis
Fengyu Xie1,2, Jing Zhou1,2, Bingshu Liu1,2
1Center for Endemic Disease Control, Chinese Center for Disease Control and Prevention, Harbin Medical University, Harbin 150081, China.
Abstract:
Fluoride exposure has been shown to affect immune cell subsets and immune function, but its impact on macrophage polarization remains unclear. This study investigates the effects of low fluoride exposure on macrophage polarization and its underlying mechanisms through epidemiological surveys, animal experiments, and in vitro cell experiments. In the population-based epidemiological survey, we used mass cytometry to assess the impact of low fluoride exposure (0.570-2.027 mg/L) in the environment on human immune cell populations following the current water improvement and fluoride reduction measures. A rat fluorosis model was established by treating rats with sodium fluoride (NaF) in drinking water at concentrations of 0 mg/L, 5 mg/L, 10 mg/L, 25 mg/L, and 50 mg/L for 90 days., and morphological changes were assessed by hematoxylin-eosin (H&E) staining and transmission electron microscopy in the spleen of rats. Flow cytometry was used to analyze the proportion of macrophage subtypes in the spleen, while Western blot and immunofluorescence were performed to detect the expression of mitochondrial autophagy-related proteins. An M1 macrophage model was constructed in vitro by inducing THP-1 cells, and the effects of fluoride on macrophage-related cell markers and cytokines were assessed using flow cytometry and ELISA, respectively, following intervention with an autophagy inhibitor. Mitochondrial membrane potential and mitochondrial-lysosomal colocalization are analyzed through flow cytometry and confocal microscopy. The study aims to investigate the role of mitophagy in sodium fluoride-induced macrophage polarization. Epidemiological investigations revealed that low fluoride increases the proportion of blood monocytes, as well as the expression levels of CD68 (a macrophage surface marker), CD86 (an M1 macrophage marker), and the inflammatory cytokine IFN-γ in peripheral blood mononuclear cells (PBMCs). In the rats of NaF-treated groups, splenic tissues exhibited inflammatory infiltration, mitochondrial swelling, and increased autophagosome formation. Moreover, low fluoride activated the PINK1/Parkin-mediated mitophagy pathway, promoting an increase in the M2/M1 macrophage ratio. In vitro experiments further confirmed that autophagy inhibitors reversed the NaF-induced increase in the M2/M1 macrophage ratio. This study demonstrates that low fluoride induces inflammatory responses in the body and drives M1 macrophage polarization toward M2 macrophages via mitophagy. These findings highlight the potential immunological risks associated with low fluoride and provide mechanistic insights into the interplay among fluoride, mitophagy, and macrophage polarization.
Insights
Low fluoride exposure shifts macrophage polarization towards M2 by activating mitophagy, potentially posing immunological risks. This study reveals how fluoride impacts immune cells and offers insights into mitophagy
Area of Science:
- Immunology
- Environmental Health
- Cell Biology
Background:
- Fluoride exposure is known to impact immune cells, but its specific effects on macrophage polarization are not well understood.
- Macrophage polarization is crucial for immune responses, with M1 and M2 subtypes playing distinct roles.
Purpose of the Study:
- To investigate the effects of low fluoride exposure on macrophage polarization and elucidate the underlying mechanisms.
- To explore the role of mitophagy in fluoride-induced macrophage polarization.
Main Methods:
- Population-based epidemiological survey using mass cytometry.
- Animal experiments with a rat fluorosis model (sodium fluoride exposure).
- In vitro cell experiments using THP-1 cells and autophagy inhibitors.
Main Results:
- Low fluoride exposure increased blood monocytes, M1 macrophage markers (CD86), and inflammatory cytokines (IFN-γ).
- Fluoride exposure in rats led to splenic inflammation, mitochondrial damage, and activation of the PINK1/Parkin mitophagy pathway.
- In vitro studies confirmed that fluoride promotes M2 macrophage polarization via mitophagy, which can be reversed by autophagy inhibitors.
Conclusions:
- Low fluoride exposure induces inflammatory responses and drives M1 to M2 macrophage polarization through mitophagy.
- These findings highlight potential immunological risks of low fluoride exposure and elucidate the mechanisms linking fluoride, mitophagy, and macrophage polarization.
More Related Videos
09:29Time-Lapse Video Microscopy for Assessment of EYFP-Parkin Aggregation as a Marker for Cellular Mitophagy
Published on: May 4, 2016
07:45Metabolic Characterization of Polarized M1 and M2 Bone Marrow-derived Macrophages Using Real-time Extracellular Flux Analysis
Published on: November 28, 2015
