Catalase abrogates β-lapachone-induced PARP1 hyperactivation-directed programmed necrosis in NQO1-positive breast

Erik A Bey1, Kathryn E Reinicke, Melissa C Srougi

  • 1Corresponding Authors: Erik A. Bey, West Virginia University, 1 Medical Center Drive, Box 9300, Room 1835, Morgantown, WV 26506. ebey@hsc.wvu.edu.

Insights

Beta-lapachone kills cancer cells by creating damaging reactive oxygen species (ROS) through the enzyme NAD(P)H:quinone oxidoreductase (NQO1). Catalase protects cells from this damage, suggesting the NQO1:catalase ratio determines treatment effectiveness.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Oncology

Background:

  • Personalized therapy requires understanding drug mechanisms of action.
  • Beta-lapachone (Arq501/Arq761) targets cancer-specific NAD(P)H:quinone oxidoreductase (NQO1) overexpression.
  • NQO1 is elevated in various solid cancers, including triple-negative breast cancer.

Purpose of the Study:

  • To elucidate cellular factors influencing beta-lapachone efficacy based on its mechanism of action.
  • To investigate the role of NQO1 and catalase in beta-lapachone-induced cytotoxicity.
  • To define the reactive oxygen species (ROS) involved in beta-lapachone's cell death pathway.

Main Methods:

  • Confirmed NQO1 requirement for beta-lapachone lethality.
  • Quantified superoxide generation during beta-lapachone redox cycling.
  • Assessed the impact of catalase and superoxide dismutase on beta-lapachone treatment.
  • Monitored markers of cell death, including PARP1 activation, nucleotide depletion, and AIF translocation.

Main Results:

  • NQO1 mediated a futile redox cycle generating significant superoxide.
  • Beta-lapachone induced ROS, PARP1 hyperactivation, nucleotide depletion, and necrosis.
  • Catalase expression significantly cytoprotected cells, identifying H2O2 as a key ROS.
  • Exogenous superoxide dismutase enhanced catalase-mediated protection.
  • Beta-lapachone-induced apoptosis-related events were abrogated by catalase.

Conclusions:

  • NQO1 expression and PARP1 hyperactivation are critical determinants of beta-lapachone efficacy.
  • Catalase acts as a resistance factor, and H2O2 is essential for beta-lapachone-induced cell death.
  • The ratio of NQO1 to catalase activity likely dictates the therapeutic window for beta-lapachone and similar drugs.