ArticleThe Journal of neuroscience : the official journal of the Society for Neuroscience2026
Mitochondrially Transcribed DsRNA Mediates Manganese-Induced Neuroinflammation.
Article in The Journal of neuroscience : the official journal of the Society for Neuroscience, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 3 papers.
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3 citing papers in PubMed.
- An Integrated Analysis of Manganese Metabolism-Related Genes and Their Association With Biomarkers, Immune Infiltration, and Clinical Subtypes in Alzheimer's Disease.Genes, brain, and behavior · 2026Article
- Mitochondrial RNA-Type I Interferon Axis in Sjögren's Disease: Molecular Mechanisms and Translational Implications.International journal of molecular sciences · 2026Review
- Metal-dependent regulated cell death: Molecular architecture and translational frontiers.iMeta · 2026Review
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15 authors.
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Abstract
Manganese is an essential trace element required for various biological functions but in excess is neurotoxic and leads to significant health concerns. The mechanisms underlying manganese neurotoxicity remain poorly understood. Neuropathological studies of affected brain regions reveal astrogliosis, neuronal loss, and neuroinflammation. Here, we present a novel manganese-dependent mechanism linking mitochondrial dysfunction to neuroinflammation. We found that manganese disruption of the mitochondrial transcriptome processing results in the accumulation of double-stranded RNA (dsRNA). This dsRNA is released into the cytoplasm, where it activates the cytosolic sensor MDA5, triggering type I interferon responses and inflammatory cytokine production. This mechanism is evident in 100 d human cerebral organoids, where manganese increased mitochondrial dsRNA and induced inflammatory responses in mature astrocytes. Similarly, we observed an increase in mitochondrial dsRNA content, the activation of an inflammatory transcriptome and the production of cytokines in female and male mouse brains carrying mutations in the Slc30a10 gene, a model for human hypermanganesemia with dystonia 1 disorder. These findings highlight the previously unrecognized role of mitochondrial dsRNA in manganese-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 neurological diseases caused by environmental or genetic factors.
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