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.

Abstract

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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