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Updated: Mar 3, 2026

Through the Looking Glass: Time-lapse Microscopy and Longitudinal Tracking of Single Cells to Study Anti-cancer Therapeutics
Published on: May 14, 2016
Inhibition of exportin-1 function results in rapid cell cycle-associated DNA damage in cancer cells
Russell T Burke1, Joshua M Marcus1,2, James D Orth1
1Department of Molecular, Cellular and Developmental Biology, University of Colorado Boulder, Boulder, CO, USA.
Abstract:
Selective inhibitors of nuclear export (SINE) are small molecules in development as anti-cancer agents. The first-in-class SINE, selinexor, is in clinical trials for blood and solid cancers. Selinexor forms a covalent bond with exportin-1 at cysteine-528, and blocks its ability to export cargos. Previous work has shown strong cell cycle effects and drug-induced cell death across many different cancer-derived cell lines. Here, we report strong cell cycle-associated DNA double-stranded break formation upon the treatment of cancer cells with SINE. In multiple cell models, selinexor treatment results in the formation of clustered DNA damage foci in 30-40% of cells within 8 hours that is dependent upon cysteine-528. DNA damage strongly correlates with G1/S-phase and decreased DNA replication. Live cell microscopy reveals an association between DNA damage and cell fate. Cells that form damage in G1-phase more often die or arrest, while those damaged in S/G2-phase frequently progress to cell division. Up to half of all treated cells form damage foci, and most cells that die after being damaged, were damaged in G1-phase. By comparison, non-transformed cell lines show strong cell cycle effects but little DNA damage and less death than cancer cells. Significant drug combination effects occur when selinexor is paired with different classes of agents that either cause DNA damage or that diminish DNA damage repair. These data present a novel effect of exportin-1 inhibition and provide a strong rationale for multiple combination treatments of selinexor with agents that are currently in use for the treatment of different solid cancers.
Insights
Selective inhibitors of nuclear export (SINE) cause DNA damage in cancer cells, particularly in G1-phase, leading to cell death. This suggests combination therapies with SINE for solid cancers.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Selective inhibitors of nuclear export (SINE) are emerging anti-cancer agents.
- Selinexor, a first-in-class SINE, targets exportin-1 and is in clinical trials for various cancers.
- Previous studies indicated SINEs induce cell cycle arrest and death in cancer cells.
Purpose of the Study:
- To investigate the mechanism of SINE-induced cell death.
- To explore the relationship between SINE treatment, DNA damage, and cell cycle progression.
- To evaluate the potential of SINE combination therapies in cancer treatment.
Main Methods:
- Treatment of cancer cell lines with selinexor.
- Assessment of DNA double-strand break formation using DNA damage foci.
- Cell cycle analysis and live cell microscopy to correlate DNA damage with cell fate.
- Evaluation of drug combination effects with other anti-cancer agents.
Main Results:
- Selinexor treatment induced significant cell cycle-associated DNA double-strand breaks in cancer cells.
- DNA damage formation was dependent on exportin-1's cysteine-528 residue.
- Cells damaged in G1-phase were more likely to die or arrest compared to those damaged in S/G2-phase.
- Non-transformed cells exhibited cell cycle effects but minimal DNA damage and cell death.
- Selinexor demonstrated synergistic effects when combined with DNA-damaging or DNA repair-inhibiting agents.
Conclusions:
- Exportin-1 inhibition by SINEs causes DNA double-strand breaks, a novel mechanism of action.
- The timing of DNA damage during the cell cycle influences cancer cell fate.
- SINEs, particularly selinexor, show promise for combination therapies in solid cancers.
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