Related Experiment Video
Updated: Jan 18, 2026

Protocol for the Differentiation of Human Induced Pluripotent Stem Cells into Mixed Cultures of Neurons and Glia for Neurotoxicity Testing
Published on: June 9, 2017
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.
Abstract:
Rotenone, a lipophilic pesticide, is strongly linked to dopaminergic neuronal loss, primarily through the inhibition of mitochondrial complex I. Beyond its well-characterized neurotoxic effects, rotenone also triggers G2/M arrest in cells, but the molecular mechanisms linking this cell cycle perturbation to neurodegeneration remain unclear. Here, we identify HMGB1 as a key player in this process. HMGB1, known for its roles in genomic integrity and inflammation, exits the nucleus during rotenone-induced G2/M arrest, whereas its nuclear retention protects against mitotic DNA damage and subsequent cell cycle arrest. We found that rotenone-induced tubulin hyperacetylation precedes HMGB1 nuclear exit and is associated with increased mitochondrial ROS (mtROS) levels. Notably, reducing the levels of αTAT1 (alpha-tubulin acetyltransferase 1) lowers mtROS production, thereby preventing HMGB1 nuclear exit and subsequent rotenone-induced G2/M arrest. Although ROS is known to enhance tubulin acetylation, our findings reveal a bidirectional relationship in which tubulin acetylation regulates mtROS production and exacerbates cellular oxidative stress. Moreover, the PARP1 inhibitor PJ34 suppresses HMGB1 nuclear exit and rescues G2/M arrest, suggesting that mtROS-induced DNA damage elevates PARP1 activity, driving HMGB1 PARylation and subsequent translocation, thus impairing DNA damage repair. Together, our findings uncover a previously unknown tubulin acetylation/mtROS/HMGB1 axis as a key driver of rotenone-induced G2/M arrest, highlighting the essential role of nuclear HMGB1 in maintaining genomic stability. Given that dopaminergic neurons in post-mortem PD brains exhibit G2/M arrest suggestive of abortive cell cycle re-entry, targeting this dysregulated axis may offer a promising strategy to mitigate rotenone-induced neurotoxicity.
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).
More Related Videos
07:54Purification of Tubulin with Controlled Posttranslational Modifications and Isotypes from Limited Sources by Polymerization-Depolymerization Cycles
Published on: November 5, 2020
06:00Through the Looking Glass: Time-lapse Microscopy and Longitudinal Tracking of Single Cells to Study Anti-cancer Therapeutics
Published on: May 14, 2016
Related Concept Videos
Abnormal Proliferation
Export of Misfolded Proteins out of the ER
Destabilization of Microtubules
Electron Transport Chain: Complex I and II
ROS generation is regulated and maintained at moderate levels necessary...
Drugs that Stabilize Microtubules
mTOR Signaling and Cancer Progression
The mTOR pathway or the...