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Manganese Oxide Nanoparticle Synthesis by Thermal Decomposition of ManganeseII Acetylacetonate
Published on: June 18, 2020
Glial-neuronal signaling mechanisms underlying the neuroinflammatory effects of manganese
Katriana A Popichak1, Maryam F Afzali2, Kelly S Kirkley3
1Department of Environmental and Radiological Health Sciences, College of Veterinary Medicine and Biomedical Sciences, Colorado State University, 1680 Campus Delivery, Physiology Building, Room 101, Fort Collins, CO, 80523-1680, USA.
Background:
Exposure to increased manganese (Mn) causes inflammation and neuronal injury in the cortex and basal ganglia, resulting in neurological symptoms resembling Parkinson's disease. The mechanisms underlying neuronal death from exposure to Mn are not well understood but involve inflammatory activation of microglia and astrocytes. Expression of neurotoxic inflammatory genes in glia is highly regulated through the NF-κB pathway, but factors modulating neurotoxic glial-glial and glial-neuronal signaling by Mn are not well understood.
Methods:
We examined the role of NF-κB in Mn-induced neurotoxicity by exposing purified microglia, astrocytes (from wild-type and astrocyte-specific IKK knockout mice), and mixed glial cultures to varying Mn concentrations and then treating neurons with the conditioned media (GCM) of each cell type. We hypothesized that mixed glial cultures exposed to Mn (0-100 μM) would enhance glial activation and neuronal death compared to microglia, wild-type astrocytes, or IKK-knockout astrocytes alone or in mixed cultures.
Results:
Mixed glial cultures treated with 0-100 μM Mn for 24 h showed the most pronounced effect of increased expression of inflammatory genes including inducible nitric oxide synthase (Nos2), Tnf, Ccl5, Il6, Ccr2, Il1b, and the astrocyte-specific genes, C3 and Ccl2. Gene deletion of IKK2 in astrocytes dramatically reduced cytokine release in Mn-treated mixed glial cultures. Measurement of neuronal viability and apoptosis following exposure to Mn-GCM demonstrated that mixed glial cultures induced greater neuronal death than either cell type alone. Loss of IKK in astrocytes also decreased neuronal death compared to microglia alone, wild-type astrocytes, or mixed glia.
Conclusions:
This suggests that astrocytes are a critical mediator of Mn neurotoxicity through enhanced expression of inflammatory cytokines and chemokines, including those most associated with a reactive phenotype such as CCL2 but not C3.
Insights
Manganese exposure causes neurotoxicity by activating glial cells. Astrocytes play a key role in this manganese-induced neurotoxicity, mediating neuronal death through inflammatory pathways.
Area of Science:
- Neuroscience
- Toxicology
- Cell Biology
Background:
- Manganese (Mn) exposure can lead to neurological symptoms similar to Parkinson's disease, involving inflammation and neuronal injury.
- The precise mechanisms of Mn-induced neuronal death are not fully understood but involve activated microglia and astrocytes.
- Glial inflammatory gene expression is regulated by the NF-κB pathway, but Mn's specific modulatory factors are unclear.
Purpose of the Study:
- To investigate the role of the NF-κB pathway in manganese-induced neurotoxicity.
- To determine how microglia and astrocytes contribute to Mn neurotoxicity, particularly in mixed glial cultures.
- To test the hypothesis that mixed glial cultures exposed to Mn enhance glial activation and neuronal death.
Main Methods:
- Exposed purified microglia, wild-type astrocytes, astrocyte-specific IKK knockout astrocytes, and mixed glial cultures to varying Mn concentrations.
- Treated neurons with conditioned media (GCM) from Mn-exposed glial cells.
- Measured inflammatory gene expression, cytokine release, neuronal viability, and apoptosis.
Main Results:
- Mixed glial cultures exposed to Mn showed the highest expression of inflammatory genes (Nos2, Tnf, Ccl5, Il6, Ccr2, Il1b, C3, Ccl2).
- Astrocytic IKK2 deletion significantly reduced cytokine release and neuronal death in Mn-treated mixed glial cultures.
- Mixed glial cultures induced greater neuronal death than individual glial types, with astrocyte-specific IKK knockout reducing this effect.
Conclusions:
- Astrocytes are critical mediators of manganese neurotoxicity.
- Astrocytes promote Mn neurotoxicity through the enhanced expression of inflammatory cytokines and chemokines, notably CCL2.
- The NF-κB pathway, specifically involving IKK in astrocytes, is a key regulator of Mn-induced glial activation and subsequent neurotoxicity.
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