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Direct impact of cisplatin on mitochondria induces ROS production that dictates cell fate of ovarian cancer cells

Cell Death and Disease · 2019 · Vol. 10(11) · pp. 851–851
Markus KleihKathrin BöppleMeng DongAndrea GaißlerSimon HeineMonilola A. OlayioyeWalter E. AulitzkyFrank Eßmann

Abstract

Patients with high-grade serous ovarian cancer (HGSC) frequently receive platinum-based chemotherapeutics, such as cisplatin. Cisplatin binds to DNA and induces DNA-damage culminating in mitochondria-mediated apoptosis. Interestingly, mitochondrial DNA is critically affected by cisplatin but its relevance in cell death induction is scarcely investigated. We find that cisplatin sensitive HGSC cell lines contain higher mitochondrial content and higher levels of mitochondrial ROS (mtROS) than cells resistant to cisplatin induced cell death. In clonal sub-lines from OVCAR-3 mitochondrial content and basal oxygen consumption rate correlate with sensitivity to cisplatin induced apoptosis. Mitochondria are in two ways pivotal for cisplatin sensitivity because not only knock-down of BAX and BAK but also the ROS scavenger glutathione diminish cisplatin induced apoptosis. Mitochondrial ROS correlates with mitochondrial content and reduction of mitochondrial biogenesis by knock-down of transcription factors PGC1α or TFAM attenuates both mtROS induction and cisplatin induced apoptosis. Increasing mitochondrial ROS by inhibition or knock-down of the ROS-protective uncoupling protein UCP2 enhances cisplatin induced apoptosis. Similarly, enhancing ROS by high-dose ascorbic acid or H<sub>2</sub>O<sub>2</sub> augments cisplatin induced apoptosis. In summary, mitochondrial content and the resulting mitochondrial capacity to produce ROS critically determine HGSC cell sensitivity to cisplatin induced apoptosis. In line with this observation, data from the human protein atlas (www.proteinatlas.org) indicates that high expression of mitochondrial marker proteins (TFAM and TIMM23) is a favorable prognostic factor in ovarian cancer patients. Thus, we propose mitochondrial content as a biomarker for the response to platinum-based therapies. Functionally, this might be exploited by increasing mitochondrial content or mitochondrial ROS production to enhance sensitivity to cisplatin based anti-cancer therapies.

Mitochondrial Function and PathologyATP Synthase and ATPases ResearchCoenzyme Q10 studies and effectsTFAMCisplatinApoptosisMitochondrionMitochondrial ROSProgrammed cell deathCell biologyReactive oxygen speciesBiologyCancer cell

MeSH terms

Antineoplastic AgentsCisplatinDNA DamageFemaleHumansMitochondriaOvarian NeoplasmsPrognosisTumor Cells, CulturedBiomarkers, TumorApoptosisReactive Oxygen SpeciesDrug Resistance, Neoplasm

Funding

  • Berthold Leibinger Stiftung
  • Robert Bosch Stiftung
Citations
424
FWCI
13.79
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References
41
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99%
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References
On the Origin of Cancer Cells
Science · 1956 · 13,149 citations
Regulation of PGC-1α, a nodal regulator of mitochondrial biogenesis
American Journal of Clinical Nutrition · 2011 · 1,196 citations
How mitochondria produce reactive oxygen species
Biochemical Journal · 2008 · 7,889 citations
Hydroperoxide metabolism in mammalian organs.
Physiological Reviews · 1979 · 5,812 citations
Cancer statistics, 2017
CA A Cancer Journal for Clinicians · 2017 · 14,945 citations
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