Quantitative proteomic analysis of anticancer drug RH1 resistance in liver carcinoma

Marija Ger1, Algirdas Kaupinis1, Ausra Nemeikaite-Ceniene2

  • 1Vilnius University Institute of Biochemistry, Vilnius, Lithuania.

Insights

Acquired resistance to the anticancer drug RH1 in hepatoma cells involves decreased xenobiotic metabolism and cell cycle regulators, alongside increased DNA repair proteins. Understanding these mechanisms aids in developing strategies against RH1 drug resistance.

Area of Science:

  • Proteomics
  • Cancer Biology
  • Drug Resistance Mechanisms

Background:

  • Acquired resistance to chemotherapy is a significant clinical challenge.
  • The novel anticancer agent RH1 is activated by quinone oxidoreductase, an enzyme often overexpressed in tumors.
  • Understanding resistance mechanisms is crucial for optimizing cancer therapy.

Purpose of the Study:

  • To investigate the molecular mechanisms underlying acquired resistance to the anticancer drug RH1 in hepatoma cells.
  • To identify differentially expressed proteins and associated biological pathways in RH1-resistant cells.
  • To provide a basis for validating protein biomarkers and identifying secondary targets in RH1-resistant cells.

Main Methods:

  • Established RH1-resistant hepatoma cell lines.
  • Applied high-throughput differential quantitative proteomic analysis.
  • Utilized bioinformatic analysis for functional annotation and protein-protein interaction clustering.

Main Results:

  • Over 400 proteins showed significantly altered levels between drug-sensitive and drug-resistant cell lines.
  • Decreased levels and activity of xenobiotic metabolism enzymes (e.g., Nqo1, catalase, Gst, Gsr) involved in RH1 activation/detoxification were observed.
  • RH1-resistant cells exhibited decreased cell cycle positive regulators, increased DNA repair proteins, altered annexin family members, and changes in energy metabolism proteins.

Conclusions:

  • Acquired RH1 resistance in hepatoma cells is associated with reduced drug activation/detoxification pathways and altered cell cycle regulation.
  • Upregulation of DNA repair mechanisms and changes in energy metabolism contribute to RH1 resistance.
  • The identified proteomic alterations provide insights into RH1 resistance and potential therapeutic targets.

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