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.

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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