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Microglia as a Surrogate Biosensor to Determine Nanoparticle Neurotoxicity
Published on: October 25, 2016
Manganese exposure induces neuroinflammation by impairing mitochondrial dynamics in astrocytes
Souvarish Sarkar1, Emir Malovic1, Dilshan S Harischandra1
1Parkinson Disorders Research Laboratory, Iowa Center for Advanced Neurotoxicology, Department of Biomedical Sciences, 2062 Veterinary Medicine Building, Iowa State University, Ames, IA 50011, United States.
Abstract:
Chronic manganese (Mn) exposure induces neurotoxicity, which is characterized by Parkinsonian symptoms resulting from impairment in the extrapyramidal motor system of the basal ganglia. Mitochondrial dysfunction and oxidative stress are considered key pathophysiological features of Mn neurotoxicity. Recent evidence suggests astrocytes as a major target of Mn neurotoxicity since Mn accumulates predominantly in astrocytes. However, the primary mechanisms underlying Mn-induced astroglial dysfunction and its role in metal neurotoxicity are not completely understood. In this study, we examined the interrelationship between mitochondrial dysfunction and astrocytic inflammation in Mn neurotoxicity. We first evaluated whether Mn exposure alters mitochondrial bioenergetics in cultured astrocytes. Metabolic activity assessed by MTS assay revealed an IC50 of 92.68μM Mn at 24h in primary mouse astrocytes (PMAs) and 50.46μM in the human astrocytic U373 cell line. Mn treatment reduced mitochondrial mass, indicative of impaired mitochondrial function and biogenesis, which was substantiated by the significant reduction in mRNA of mitofusin-2, a protein that serves as a ubiquitination target for mitophagy. Furthermore, Mn increased mitochondrial circularity indicating augmented mitochondrial fission. Seahorse analysis of bioenergetics status in Mn-treated astrocytes revealed that Mn significantly impaired the basal mitochondrial oxygen consumption rate as well as the ATP-linked respiration rate. The effect of Mn on mitochondrial energy deficits was further supported by a reduction in ATP production. Mn-exposed primary astrocytes also exhibited a severely quiescent energy phenotype, which was substantiated by the inability of oligomycin to increase the extracellular acidification rate. Since astrocytes regulate immune functions in the CNS, we also evaluated whether Mn modulates astrocytic inflammation. Mn exposure in astrocytes not only stimulated the release of proinflammatory cytokines, but also exacerbated the inflammatory response induced by aggregated α-synuclein. The novel mitochondria-targeted antioxidant, mito-apocynin, significantly attenuated Mn-induced inflammatory gene expression, further supporting the role of mitochondria dysfunction and oxidative stress in mediating astrogliosis. Lastly, intranasal delivery of Mn in vivo elevated GFAP and depressed TH levels in the olfactory bulbs, clearly supporting the involvement of astrocytes in Mn-induced dopaminergic neurotoxicity. Collectively, our study demonstrates that Mn drives proinflammatory events in astrocytes by impairing mitochondrial bioenergetics.
Insights
Chronic manganese (Mn) exposure harms brain cells, particularly astrocytes, leading to Parkinsonian symptoms. This study shows Mn impairs astrocyte mitochondria, causing inflammation and neurotoxicity.
Area of Science:
- Neuroscience
- Toxicology
- Cell Biology
Background:
- Chronic manganese (Mn) exposure causes neurotoxicity and Parkinsonian symptoms.
- Astrocytes are key targets of Mn neurotoxicity due to Mn accumulation.
- Mechanisms of Mn-induced astroglial dysfunction and neuroinflammation are not fully understood.
Purpose of the Study:
- To investigate the link between mitochondrial dysfunction and astrocytic inflammation in Mn neurotoxicity.
- To determine how Mn exposure affects mitochondrial bioenergetics and inflammatory responses in astrocytes.
Main Methods:
- Primary mouse astrocytes (PMAs) and U373 cells were exposed to Mn.
- Mitochondrial function was assessed via MTS assay, mitofusin-2 mRNA levels, mitochondrial circularity, Seahorse analysis, and ATP production.
- Astrocytic inflammation was evaluated by measuring proinflammatory cytokine release and response to α-synuclein.
- Mito-apocynin was used to assess the role of mitochondria in Mn-induced inflammation.
- Intranasal Mn delivery in vivo was used to examine GFAP and TH levels in olfactory bulbs.
Main Results:
- Mn exposure reduced astrocyte metabolic activity, mitochondrial mass, and ATP production, while increasing mitochondrial fission.
- Seahorse analysis showed impaired basal mitochondrial oxygen consumption and ATP-linked respiration.
- Mn exposure stimulated proinflammatory cytokine release and exacerbated α-synuclein-induced inflammation.
- Mito-apocynin mitigated Mn-induced inflammatory gene expression.
- In vivo, Mn elevated GFAP and reduced TH levels in olfactory bulbs.
Conclusions:
- Mn impairs mitochondrial bioenergetics in astrocytes, leading to energy deficits.
- Mitochondrial dysfunction in astrocytes drives Mn-induced neuroinflammation and astrogliosis.
- Astrocytes play a critical role in Mn-induced dopaminergic neurotoxicity.

