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Published on: June 6, 2025
ROS-mediated EB1 phosphorylation through Akt/GSK3β pathway: implication in cancer cell response to
Marion Le Grand1, Amandine Rovini, Veronique Bourgarel-Rey
1Aix Marseille Université, Inserm, CRO2 UMR_S 911, Marseille, France.
Abstract:
Microtubule-targeting agents (MTAs) are largely administered in adults and children cancers. Better deciphering their mechanism of action is of prime importance to develop more convenient therapy strategies. Here, we addressed the question of how reactive oxygen species (ROS) generation by mitochondria can be necessary for MTA efficacy. We showed for the first time that EB1 associates with microtubules in a phosphorylation-dependent manner, under control of ROS. By using phospho-defective mutants, we further characterized the Serine 155 residue as critical for EB1 accumulation at microtubule plus-ends, and both cancer cell migration and proliferation. Phosphorylation of EB1 on the Threonine 166 residue triggered opposite effects, and was identified as a requisite molecular switch in MTA activities. We then showed that GSK3β activation was responsible for MTA-triggered EB1 phosphorylation, resulting from ROS-mediated inhibition of upstream Akt. We thus disclosed here a novel pathway by which generation of mitochondrial ROS modulates microtubule dynamics through phosphorylation of EB1, improving our fundamental knowledge about this oncogenic protein, and pointing out the need to re-examine the current dogma of microtubule targeting by MTAs. The present work also provides a strong mechanistic rational to the promising therapeutic strategies that currently combine MTAs with anti-Akt targeted therapies.
Insights
Mitochondrial reactive oxygen species (ROS) are crucial for microtubule-targeting agent (MTA) cancer therapy efficacy. This study reveals how ROS-induced EB1 phosphorylation regulates microtubule dynamics and cancer cell growth.
Area of Science:
- Cell Biology
- Cancer Research
- Molecular Oncology
Background:
- Microtubule-targeting agents (MTAs) are vital in cancer chemotherapy.
- Understanding the precise mechanisms of MTA action is key to improving cancer treatments.
Purpose of the Study:
- To investigate the role of mitochondrial reactive oxygen species (ROS) in MTA efficacy.
- To elucidate the novel pathway linking ROS, EB1 phosphorylation, and microtubule dynamics.
Main Methods:
- Utilized phospho-defective mutants to analyze EB1 phosphorylation.
- Investigated the involvement of GSK3β and Akt in the ROS-mediated pathway.
- Examined the impact of EB1 phosphorylation on microtubule plus-end accumulation, cell migration, and proliferation.
Main Results:
- Demonstrated ROS-dependent, phosphorylation-controlled association of EB1 with microtubules.
- Identified Serine 155 and Threonine 166 phosphorylation sites on EB1 as critical regulators of MTA activity.
- Uncovered a pathway where ROS inhibits Akt, leading to GSK3β activation and EB1 phosphorylation.
Conclusions:
- Mitochondrial ROS modulate microtubule dynamics via EB1 phosphorylation, impacting cancer cell behavior.
- This finding challenges current understandings of microtubule targeting and suggests new therapeutic strategies.
- Provides a mechanistic basis for combining MTAs with anti-Akt therapies.
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