Verteporfin disrupts multiple steps of autophagy and regulates p53 to sensitize osteosarcoma cells

Heena Saini1, Harshita Sharma1, Sudeshna Mukherjee1

  • 1Department of Biological Sciences, BITS Pilani, Pilani Campus, Rajasthan, 333031, India.

Cancer Cell International
|January 15, 2021
PubMed
Abstract

Insights

Verteporfin (VP) shows promise in treating osteosarcoma by disrupting autophagy and protein processing. Combining VP with proteasomal inhibitor MG-132 (MG) enhances its effectiveness against this bone cancer.

Area of Science:

  • Oncology
  • Molecular Biology
  • Drug Discovery

Background:

  • Osteosarcoma (OS) is a prevalent bone cancer in children and adolescents.
  • Current chemotherapy faces challenges due to drug resistance and low survival rates post-relapse.
  • Understanding OS molecular drivers is crucial for developing effective therapeutic strategies.

Purpose of the Study:

  • To investigate the molecular mechanisms underlying osteosarcoma prognosis.
  • To identify potential therapeutic targets and drug candidates for osteosarcoma treatment.

Main Methods:

  • Analysis of osteosarcoma patient gene expression datasets to identify deregulated pathways.
  • In vitro assessment of drug cytotoxicity, protein expression, lysosomal activity, and reactive oxygen species (ROS).
  • Evaluation of autophagy inhibitors (chloroquine) and proteotoxic drugs (verteporfin), with and without proteasomal inhibitors (MG-132).

Main Results:

  • Verteporfin (VP) demonstrated significant dose-dependent cytotoxicity against osteosarcoma cells, unlike chloroquine.
  • VP disrupted autophagy at multiple stages, induced lysosomal instability, and increased ROS levels.
  • Combined VP and MG-132 treatment significantly enhanced cytotoxicity and led to P53 accumulation in lysosomes.

Conclusions:

  • VP effectively disrupts cellular autophagy and protein homeostasis in osteosarcoma.
  • The combination of VP and MG-132 presents a promising therapeutic strategy for osteosarcoma.
  • Targeting autophagy and protein homeostasis pathways offers a viable approach to combat osteosarcoma.

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