The IGF-1R/AKT pathway has opposing effects on Nutlin-3a-induced apoptosis

Batzaya Davaadelger1, Ricardo E Perez1, Yalu Zhou1

  • 1a Department of Cell and Molecular Medicine , Rush University Medical Center , Chicago , IL , USA.

Insights

Nutlin-3a activates p53 by inhibiting MDM2. Cisplatin-resistant cells showed increased sensitivity to Nutlin-3a, linked to the IGF-1R/AKT pathway, which has complex roles in apoptosis.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cell Death Pathways

Background:

  • Nutlin-3a is an MDM2 antagonist that activates wild-type p53, inducing cell death.
  • Sensitivity to Nutlin-3a-induced apoptosis is not fully understood.
  • Osteosarcoma cell lines with MDM2 amplification and wild-type p53 are relevant models.

Purpose of the Study:

  • To investigate factors influencing sensitivity to Nutlin-3a-induced apoptosis.
  • To explore the role of the IGF-1R/AKT pathway in chemoresistance and Nutlin-3a sensitivity.
  • To characterize the mechanisms underlying altered apoptosis in cisplatin-resistant cells.

Main Methods:

  • Isolation of cisplatin-resistant osteosarcoma clones (MHM cells).
  • Assessment of Nutlin-3a-induced apoptosis and p53 levels.
  • Analysis of autophagy flux and the impact of IGF-1R and AKT inhibition.

Main Results:

  • Cisplatin-resistant clones exhibited hyper-sensitivity to Nutlin-3a.
  • This sensitivity correlated with reduced autophagy flux and increased p53 accumulation.
  • IGF-1R/AKT signaling demonstrated opposing effects, promoting resistance but also enhancing Nutlin-3a apoptosis via p53 and autophagy modulation.

Conclusions:

  • The IGF-1R/AKT pathway plays a dual role in Nutlin-3a-induced apoptosis.
  • This pathway can inhibit apoptosis as a survival mechanism.
  • It can also enhance Nutlin-3a-mediated apoptosis by regulating p53 levels and autophagy.

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