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.
Abstract:
Improving patient outcome by personalized therapy involves a thorough understanding of an agent's mechanism of action. β-Lapachone (clinical forms, Arq501/Arq761) has been developed to exploit dramatic cancer-specific elevations in the phase II detoxifying enzyme NAD(P)H:quinone oxidoreductase (NQO1). NQO1 is dramatically elevated in solid cancers, including primary and metastatic [e.g., triple-negative (ER-, PR-, Her2/Neu-)] breast cancers. To define cellular factors that influence the efficacy of β-lapachone using knowledge of its mechanism of action, we confirmed that NQO1 was required for lethality and mediated a futile redox cycle where ∼120 moles of superoxide were formed per mole of β-lapachone in 2 minutes. β-Lapachone induced reactive oxygen species (ROS), stimulated DNA single-strand break-dependent poly(ADP-ribose) polymerase-1 (PARP1) hyperactivation, caused dramatic loss of essential nucleotides (NAD(+)/ATP), and elicited programmed necrosis in breast cancer cells. Although PARP1 hyperactivation and NQO1 expression were major determinants of β-lapachone-induced lethality, alterations in catalase expression, including treatment with exogenous enzyme, caused marked cytoprotection. Thus, catalase is an important resistance factor and highlights H2O2 as an obligate ROS for cell death from this agent. Exogenous superoxide dismutase enhanced catalase-induced cytoprotection. β-Lapachone-induced cell death included apoptosis-inducing factor (AIF) translocation from mitochondria to nuclei, TUNEL+ staining, atypical PARP1 cleavage, and glyceraldehyde 3-phosphate dehydrogenase S-nitrosylation, which were abrogated by catalase. We predict that the ratio of NQO1:catalase activities in breast cancer versus associated normal tissue are likely to be the major determinants affecting the therapeutic window of β-lapachone and other NQO1 bioactivatable drugs.
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.
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