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Published on: November 15, 2019
Resistance to discodermolide, a microtubule-stabilizing agent and senescence inducer, is 4E-BP1-dependent
Suzan K Chao1, Juan Lin, Jurriaan Brouwer-Visser
1Department of Molecular Pharmacology, Albert Einstein College of Medicine, Bronx, NY 10461, USA.
Abstract:
Discodermolide is a microtubule-stabilizing agent that induces accelerated cell senescence. A discodermolide-resistant cell line, AD32, was generated from the human lung cancer cell line A549. We hypothesize that the major resistance mechanism in these cells is escape from accelerated senescence. AD32 cells have decreased levels of 4E-BP1 mRNA and protein, relative to the parental discodermolide-sensitive A549 cells. Lentiviral-mediated re-expression of wild-type 4E-BP1 in AD32 cells increased the proliferation rate and reverted resistance to discodermolide via restoration of discodermolide-induced accelerated senescence. Consistent with this, cell growth and response to discodermolide was confirmed in vivo using tumor xenograft models. Furthermore, reintroduction of a nonphosphorylatable mutant (Thr-37/46 Ala) of 4E-BP1 was able to partially restore sensitivity and enhance proliferation in AD32 cells, suggesting that these effects are independent of phosphorylation by mTORC1. Microarray profiling of AD32-resistant cells versus sensitive A549 cells, and subsequent unbiased gene ontology analysis, identified molecular pathways and functional groupings of differentially expressed mRNAs implicated in overcoming discodermolide-induced senescence. The most statistically significant classes of differentially expressed genes included p53 signaling, G2/M checkpoint regulation, and genes involved in the role of BRCA1 in the DNA damage response. Consistent with this, p53 protein expression was up-regulated and had increased nuclear localization in AD32 cells relative to parental A549 cells. Furthermore, the stability of p53 was enhanced in AD32 cells. Our studies propose a role for 4E-BP1 as a regulator of discodermolide-induced accelerated senescence.
Insights
Discodermolide resistance in cancer cells is linked to reduced 4E-BP1, a protein crucial for senescence. Restoring 4E-BP1 re-sensitizes cells to discodermolide and halts tumor growth, highlighting its therapeutic potential.
Area of Science:
- Molecular Biology
- Cancer Research
- Cellular Senescence
Background:
- Discodermolide is a microtubule-stabilizing agent that induces accelerated cell senescence.
- A discodermolide-resistant human lung cancer cell line (AD32) was developed from A549 cells.
- The study hypothesizes that resistance is due to escape from senescence.
Purpose of the Study:
- To investigate the role of 4E-binding protein 1 (4E-BP1) in discodermolide resistance.
- To identify molecular mechanisms underlying resistance to discodermolide-induced senescence.
- To explore the potential of 4E-BP1 restoration as a therapeutic strategy.
Main Methods:
- Generation of a discodermolide-resistant cell line (AD32) from A549 cells.
- Lentiviral-mediated re-expression of wild-type and mutant 4E-BP1 in AD32 cells.
- In vivo tumor xenograft models to assess drug response.
- Microarray profiling and gene ontology analysis of resistant versus sensitive cells.
- Analysis of p53 protein expression, localization, and stability.
Main Results:
- AD32 cells exhibit decreased 4E-BP1 mRNA and protein levels.
- Re-expression of 4E-BP1 in AD32 cells restored sensitivity to discodermolide and induced senescence.
- Tumor xenografts confirmed the in vivo efficacy of 4E-BP1 restoration.
- Gene expression analysis revealed altered p53 signaling, G2/M checkpoint, and BRCA1 pathways in resistant cells.
- p53 expression was upregulated and stabilized in AD32 cells.
Conclusions:
- 4E-BP1 plays a critical role in regulating discodermolide-induced accelerated senescence.
- Reduced 4E-BP1 is a key mechanism of discodermolide resistance in cancer cells.
- Restoring 4E-BP1 function offers a potential strategy to overcome drug resistance and enhance cancer therapy.
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