Excessive mitochondrial stress response triggers neuronal injury through the persistent eIF2α phosphorylation in mice

Yunfei Jia1, Bin He1, Keyu Chen1

  • 1Program of Environmental Physical Factors and Health, School of Public Health, China Medical University, Shenyang, Liaoning 110122, China.

PubMed

Insights

Manganese (Mn) overexposure causes neurocognitive issues by damaging hippocampal neurons. Excessive mitochondrial stress response (MSR) drives this damage via persistent eIF2α phosphorylation, leading to neuronal apoptosis.

Area of Science:

  • Neuroscience
  • Toxicology
  • Cell Biology

Background:

  • Manganese (Mn) overexposure is linked to neurocognitive deficits and hippocampal neuronal injury.
  • Mitochondrial stress response (MSR) plays a dual role in cellular adaptation and damage.
  • The role of excessive MSR in Mn-induced neuronal injury is not well understood.

Purpose of the Study:

  • To investigate the role of excessive MSR in Mn-induced neuronal apoptosis.
  • To elucidate the mechanisms underlying Mn neurotoxicity in the hippocampus.

Main Methods:

  • Establishment of Mn poisoning models in C57BL/6 mice and primary hippocampal neurons.
  • Analysis of mitochondrial damage, neurocognitive abnormalities, and apoptosis markers.
  • Investigation of key protein modifications: eIF2α phosphorylation and GADD34 acetylation/deacetylation.

Main Results:

  • Excessive MSR was found to trigger hippocampal neuronal mitochondrial damage and neurocognitive abnormalities in Mn-exposed mice.
  • Persistent phosphorylation of eukaryotic translation initiation factor 2α (eIF2α) was identified as a primary driver of Mn-induced neuronal injury.
  • Excessive acetylation of growth arrest and DNA damage-inducible protein 34 (GADD34) disrupted the protein phosphatase 1α/GADD34 complex, impairing eIF2α dephosphorylation.
  • Sirtuin 1-mediated GADD34 deacetylation mitigated excessive MSR, neuronal apoptosis, and mitochondrial dysfunction.

Conclusions:

  • Excessive MSR plays a critical and complex role in Mn-induced neuronal injury.
  • Persistent eIF2α phosphorylation and dysregulated GADD34 acetylation are key mechanisms in Mn neurotoxicity.
  • Targeting Sirtuin 1-mediated pathways may offer therapeutic potential for Mn-induced neurocognitive disorders.