Tubulin hyperacetylation drives HMGB1 nuclear exit via the ROS-PARP1 axis, leading to rotenone-induced G2/M arrest

Sourav Dutta1, Semanti Chakraborty1, Ayushi Ghosh1

  • 1Institute of Health Sciences, Presidency University, Kolkata, West Bengal, India.

PubMed

Insights

Rotenone pesticide causes neurodegeneration by inducing cell cycle arrest. This study reveals a new pathway involving tubulin acetylation, mitochondrial reactive oxygen species (mtROS), and HMGB1 nuclear exit that drives this arrest.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Toxicology

Background:

  • Rotenone pesticide is linked to dopaminergic neuronal loss via mitochondrial complex I inhibition.
  • Rotenone also induces G2/M cell cycle arrest, but the underlying mechanisms for neurodegeneration are unclear.

Purpose of the Study:

  • To elucidate the molecular mechanisms connecting rotenone-induced G2/M arrest to neurodegeneration.
  • To identify key molecular players in rotenone neurotoxicity and cell cycle perturbation.

Main Methods:

  • Investigated the role of High Mobility Group Box 1 (HMGB1) in rotenone-induced G2/M arrest.
  • Examined the association between tubulin acetylation, mitochondrial reactive oxygen species (mtROS), and HMGB1 nuclear translocation.
  • Utilized the PARP1 inhibitor PJ34 to assess its effect on rotenone-induced cell cycle arrest.

Main Results:

  • HMGB1 nuclear exit occurs during rotenone-induced G2/M arrest; nuclear retention protects against mitotic DNA damage.
  • Rotenone-induced tubulin hyperacetylation precedes HMGB1 nuclear exit and correlates with increased mtROS.
  • Reducing alpha-tubulin acetyltransferase 1 (αTAT1) levels decreased mtROS, prevented HMGB1 nuclear exit, and rescued G2/M arrest.
  • Tubulin acetylation bidirectionally regulates mtROS production, exacerbating oxidative stress.
  • PJ34 suppressed HMGB1 nuclear exit and rescued G2/M arrest, indicating mtROS-induced DNA damage activates PARP1, leading to HMGB1 PARylation and impaired repair.

Conclusions:

  • A novel tubulin acetylation/mtROS/HMGB1 axis drives rotenone-induced G2/M arrest.
  • Nuclear HMGB1 is crucial for maintaining genomic stability.
  • Targeting this axis offers a potential strategy to mitigate rotenone neurotoxicity in Parkinson's disease (PD).

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