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Updated: Dec 17, 2025

In Vitro and In Vivo Detection of Mitophagy in Human Cells, C. Elegans, and Mice
Published on: November 22, 2017
Kinetic and protective role of autophagy in manganese-exposed BV-2 cells
Soledad Porte Alcon1, Roxana Mayra Gorojod1, Mónica Lidia Kotler1
1CONICET- Universidad de Buenos Aires. Instituto de Química Biológica Ciencias Exactas y Naturales (IQUIBICEN). Facultad de Ciencias Exactas y Naturales, Departamento de Química Biológica, Laboratorio de Disfunción Celular en Enfermedades Neurodegenerativas y Nanomedicina. Ciudad Autónoma de Buenos Aires, Argentina.
Abstract:
Manganese (Mn) plays an important role in many physiological processes. Nevertheless, Mn accumulation in the brain can cause a parkinsonian-like syndrome known as manganism. Unfortunately, the therapeutic options for this disease are scarce and of limited efficacy. For this reason, a great effort is being made to understand the cellular and molecular mechanisms involved in Mn toxicity in neuronal and glial cells. Even though evidence indicates that Mn activates autophagy in microglia, the consequences of this activation in cell death remain unknown. In this study, we demonstrated a key role of reactive oxygen species in Mn-induced damage in microglial cells. These species generated by Mn2+ induce lysosomal alterations, LMP, cathepsins release and cell death. Besides, we described for the first time the kinetic of Mn2+-induced autophagy in BV-2 microglial cells and its relevance to cell fate. We found that Mn promotes a time-dependent increase in LC3-II and p62 expression levels, suggesting autophagy activation. Possibly, cells trigger autophagy to neutralize the risks associated with lysosomal rupture. In addition, pre-treatment with both Rapamycin and Melatonin enhanced autophagy and retarded Mn2+ cytotoxicity. In summary, our results demonstrated that, despite the damage inflicted on a subset of lysosomes, the autophagic pathway plays a protective role in Mn-induced microglial cell death. We propose that 2 h Mn2+ exposure will not induce disturbances in the autophagic flux. However, as time passes, the accumulated damage inside the cell could trigger a dysfunction of this mechanism. These findings may represent a valuable contribution to future research concerning manganism therapies.
Insights
Manganese (Mn) triggers cell death in microglia via reactive oxygen species and lysosomal damage. Autophagy activation, however, offers protection against Mn toxicity, suggesting therapeutic potential for manganism.
Area of Science:
- Neuroscience
- Toxicology
- Cell Biology
Background:
- Manganese (Mn) accumulation in the brain causes manganism, a parkinsonian-like syndrome.
- Current treatments for manganism are limited, necessitating research into Mn toxicity mechanisms.
- The role of autophagy in Mn-induced microglial cell death is not well understood.
Purpose of the Study:
- To investigate the role of reactive oxygen species (ROS) in Mn-induced microglial cell damage.
- To elucidate the kinetics and consequences of Mn-induced autophagy in microglial cells.
- To assess the potential of autophagy modulation in mitigating Mn toxicity.
Main Methods:
- BV-2 microglial cells were exposed to Mn2+ to study cellular and molecular responses.
- Reactive oxygen species generation, lysosomal membrane permeabilization (LMP), and cathepsin release were assessed.
- Autophagy markers (LC3-II, p62) and cell death were quantified over time.
- The effects of autophagy enhancers (Rapamycin, Melatonin) on Mn toxicity were evaluated.
Main Results:
- Mn2+ exposure induced ROS production, leading to lysosomal damage, LMP, cathepsin release, and cell death.
- A time-dependent increase in LC3-II and p62 indicated Mn-induced autophagy activation in BV-2 cells.
- Autophagy activation appeared to be a cellular response to mitigate lysosomal damage.
- Pre-treatment with Rapamycin and Melatonin enhanced autophagy and reduced Mn2+ cytotoxicity.
Conclusions:
- Autophagy plays a protective role in microglial cells against Mn-induced toxicity, despite some lysosomal damage.
- Early Mn exposure may not disrupt autophagic flux, but prolonged exposure can lead to dysfunction.
- Targeting autophagy could be a promising therapeutic strategy for manganism.
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