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Updated: May 7, 2025

Monitoring Dynamic Changes In Mitochondrial Calcium Levels During Apoptosis Using A Genetically Encoded Calcium Sensor
Published on: April 1, 2011
Microtubule acetylation and PERK activation facilitate eribulin-induced mitochondrial calcium accumulation and cell
Seongeun Song1, Panseon Ko1, Seula Keum1
1Department of Life Science, Chung-Ang University, Seoul, 06974, Republic of Korea.
Abstract:
Over the past few decades, microtubules have been targeted by various anticancer drugs, including paclitaxel and eribulin. Despite their promising effects, the development of drug resistance remains a challenge. We aimed to define a novel cell death mechanism that targets microtubules using eribulin and to assess its potential in overcoming eribulin resistance. Notably, treating non-resistant breast cancer cells with eribulin led to increased microtubule acetylation around the nucleus and cell death. Conversely, eribulin-resistant (EriR) cells did not exhibit a similar increase in acetylation, even at half-maximal inhibitory concentrations. Interestingly, silencing the ATAT1 gene, which encodes the α-tubulin N-acetyltransferase 1 (the enzyme responsible for microtubule acetylation), induces eribulin resistance, mirroring the phenotype of EriR cells. Moreover, eribulin-induced acetylation of microtubules facilitates the transport of Ca2+ from the ER to the mitochondria, releasing cytochrome c and subsequent cell death. Transcriptome analysis of EriR cells revealed a significant downregulation of ER stress-induced apoptotic signals, particularly the activity of protein kinase RNA-like ER kinase (PERK), within the unfolded protein response signaling system. Pharmacological induction of microtubule acetylation through a histone deacetylase 6 inhibitor combined with the activation of PERK signaling using the PERK activator CCT020312 in EriR cells enhanced mitochondrial Ca2+ accumulation and subsequent cell death. These findings reveal a novel mechanism by which eribulin-induced microtubule acetylation and increased PERK activity lead to Ca2+ overload from the ER to the mitochondria, ultimately triggering cell death. This study offers new insights into strategies for overcoming resistance to microtubule-targeting agents.
Insights
Eribulin triggers cell death by increasing microtubule acetylation, which enhances calcium transport to mitochondria. This mechanism, involving protein kinase RNA-like ER kinase (PERK), offers strategies to overcome eribulin resistance in cancer therapy.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- Microtubule-targeting agents like eribulin are crucial in cancer therapy.
- Drug resistance, particularly to eribulin, limits treatment efficacy.
- Understanding novel cell death mechanisms is key to overcoming resistance.
Purpose of the Study:
- To define a novel cell death mechanism induced by eribulin targeting microtubules.
- To investigate the role of microtubule acetylation in eribulin sensitivity and resistance.
- To explore strategies for overcoming eribulin resistance using this novel mechanism.
Main Methods:
- Treatment of breast cancer cells (resistant and non-resistant) with eribulin.
- Gene silencing of ATAT1 (α-tubulin N-acetyltransferase 1).
- Analysis of microtubule acetylation, Ca2+ transport, cytochrome c release, and transcriptome.
- Pharmacological modulation of microtubule acetylation and PERK signaling.
Main Results:
- Eribulin increased microtubule acetylation and cell death in non-resistant cells.
- Eribulin-resistant cells showed reduced microtubule acetylation and downregulated PERK activity.
- ATAT1 silencing induced eribulin resistance.
- Eribulin-induced acetylation facilitated Ca2+ transport from ER to mitochondria, causing cell death.
- Combined treatment with HDAC6 inhibitor and PERK activator overcame eribulin resistance.
Conclusions:
- Eribulin-induced microtubule acetylation triggers cell death via ER-mitochondrial Ca2+ overload, mediated by PERK signaling.
- Downregulation of microtubule acetylation and PERK activity contributes to eribulin resistance.
- Targeting microtubule acetylation and PERK signaling presents a promising strategy to overcome eribulin resistance.
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