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Updated: May 24, 2025

Functional Neuroimaging Using Ultrasonic Blood-brain Barrier Disruption and Manganese-enhanced MRI
Published on: July 12, 2012
Mitochondrially Transcribed dsRNA Mediates Manganese-induced Neuroinflammation
Avanti Gokhale1, Hadassah Mendez-Vazquez1, Maureen M Sampson2
1Department of Cell Biology, Emory University, Atlanta, GA, USA, 30322.
Abstract:
Manganese (Mn) is an essential trace element required for various biological functions, but excessive Mn levels are neurotoxic and lead to significant health concerns. The mechanisms underlying Mn-induced neurotoxicity remain poorly understood. Neuropathological studies of affected brain regions reveal astrogliosis, and neuronal loss, along with evidence of neuroinflammation. Here, we present a novel Mn-dependent mechanism linking mitochondrial dysfunction to neuroinflammation. We found that Mn disrupts mitochondrial transcriptome processing, resulting in the accumulation of complementary RNAs that form double-stranded RNA (dsRNA). This dsRNA is released to the cytoplasm, where it activates cytosolic sensor pathways, triggering type I interferon responses and inflammatory cytokine production. This mechanism is evident in 100-day human cerebral organoids, where Mn-induced inflammatory responses are observed predominantly in mature astrocytes. Similar effects were observed in the transcriptome and cytokine profile of female and male mouse brains carrying mutations in the SLC30A10 gene, a model of hypermanganesemia with dystonia1 disorder. These findings highlight a previously unrecognized role for mitochondrial dsRNA in Mn-induced neuroinflammation and provide insights into the molecular pathogenesis of manganism. We propose that this mitochondrial dsRNA-induced inflammatory pathway could be active in other diseases caused by environmental or genetic factors.
Insights
Excess manganese triggers neuroinflammation by causing mitochondrial double-stranded RNA (dsRNA) release, activating immune responses in the brain. This discovery sheds light on manganese neurotoxicity and related diseases.
Area of Science:
- Neuroscience
- Toxicology
- Molecular Biology
Background:
- Manganese (Mn) is essential but toxic at high levels, causing neurotoxicity.
- Mechanisms of Mn neurotoxicity, including astrogliosis, neuronal loss, and neuroinflammation, are not fully understood.
Purpose of the Study:
- To elucidate a novel Mn-dependent mechanism linking mitochondrial dysfunction to neuroinflammation.
- To identify molecular pathways involved in Mn-induced brain damage.
Main Methods:
- Investigated Mn effects on mitochondrial transcriptome processing in human cerebral organoids.
- Analyzed dsRNA accumulation and its role in activating cytosolic sensor pathways.
- Examined Mn-induced inflammatory responses in vivo using a mouse model (SLC30A10 mutation).
Main Results:
- Manganese disrupts mitochondrial RNA processing, leading to cytoplasmic accumulation of double-stranded RNA (dsRNA).
- This dsRNA activates type I interferon responses and inflammatory cytokine production, primarily in mature astrocytes.
- Similar inflammatory effects were observed in a mouse model of Mn accumulation.
Conclusions:
- Mitochondrial dsRNA is a key mediator of Mn-induced neuroinflammation.
- This pathway provides new insights into the molecular basis of manganism and neurodegenerative diseases.
- The findings suggest potential therapeutic targets for Mn-related neurological disorders.
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