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Author Spotlight: Oxygen-Independent Assays to Measure Mitochondrial Function in Mammals
Published on: May 19, 2023
Mitochondrial activities play a pivotal role in regulating cell cycle in response to doxorubicin
Ken Dornfeld1,2, James Bjork2, Gavin Folkert2
1Department of Radiation Oncology, Essentia Health, Duluth, MN, USA.
Abstract:
Doxorubicin induces both DNA damage and metabolic interference. How these effects interact to modulate cellular toxicity is not completely understood but important given the widespread use of doxorubicin in cancer treatment. This study tests the hypothesis that cell cycle arrest and survival are affected by distinct mitochondrial activities during doxorubicin exposure.Parental and mutant S. cerevisiae strains deficient in selected genes with mitochondrial function were treated with doxorubicin and assayed for changes in proliferation rates, cell survival and cell cycle arrest kinetics. Mitochondrial DNA content was estimated using quantitative PCR. Mitochondrial function was assessed by measuring oxygen consumption with and without an uncoupler.Parental cells growing in a non-fermentable carbon source medium and mutants lacking mitochondria and grown in glucose medium both show abrupt cell cycle and proliferation arrest during doxorubicin exposure compared to parental cells grown in glucose. Mitochondrial DNA increases during doxorubicin exposure in S. cerevisiae and in human breast cancer cells. Yeast strains deficient in TCA cycle activity or electron transport both show more abrupt cell cycle arrest than parental cells when exposed to doxorubicin. Concurrent treatment with the mitochondrial uncoupler dinitrophenol facilitates cell cycle progression and proliferation during doxorubicin exposure.Doxorubicin exposure induces mitochondrial DNA synthesis with TCA cycle and oxidative phosphorylation activity having opposing effects on cell proliferation, survival and cell cycle kinetics. TCA cycle activity provides biosynthetic substrates to support cell cycle progression and cell proliferation while electron transport and oxidative phosphorylation facilitate cell cycle arrest and possibly increased cytotoxicity.
Insights
Doxorubicin
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Biology
Background:
- Doxorubicin is a widely used chemotherapy drug.
- Its mechanisms of action include DNA damage and metabolic interference.
- The interplay between these effects on cellular toxicity is not fully understood.
Purpose of the Study:
- To investigate how distinct mitochondrial activities influence cell cycle arrest and survival during doxorubicin exposure.
- To test the hypothesis that mitochondrial function differentially impacts cellular responses to doxorubicin.
Main Methods:
- Utilized *Saccharomyces cerevisiae* (yeast) strains with genetic modifications affecting mitochondrial functions.
- Treated parental and mutant yeast strains with doxorubicin, monitoring proliferation rates, cell survival, and cell cycle arrest kinetics.
- Quantified mitochondrial DNA content using quantitative PCR and assessed mitochondrial function via oxygen consumption measurements.
- Examined effects of dinitrophenol, a mitochondrial uncoupler, on doxorubicin-treated cells.
Main Results:
- Doxorubicin exposure increased mitochondrial DNA synthesis in both yeast and human breast cancer cells.
- Yeast strains with deficiencies in TCA cycle or electron transport exhibited more rapid cell cycle arrest.
- Concurrent treatment with dinitrophenol promoted cell cycle progression and proliferation.
- TCA cycle activity supported proliferation, while electron transport/oxidative phosphorylation promoted cell cycle arrest.
Conclusions:
- Mitochondrial function plays a critical role in cellular response to doxorubicin.
- TCA cycle activity aids cell proliferation by providing biosynthetic substrates.
- Electron transport and oxidative phosphorylation contribute to doxorubicin-induced cell cycle arrest and cytotoxicity.
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