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Updated: Jan 21, 2026

Flow Cytometry to Estimate Leukemia Stem Cells in Primary Acute Myeloid Leukemia and in Patient-derived-xenografts, at Diagnosis and Follow Up
Published on: March 26, 2018
Oxidative phosphorylation inhibition induces anticancerous changes in therapy-resistant-acute myeloid leukemia
Aida Vitkevičienė1, Vytautas Janulis1, Andrius Žučenka2
1Department of Molecular Cell Biology, Institute of Biochemistry, Life Sciences Center, Vilnius University, Vilnius, Lithuania.
Abstract:
Treatment of acute myeloid leukemia (AML) is still a challenge because of common relapses or resistance to treatment. Therefore, the development of new therapeutic approaches is necessary. Various studies have shown that certain cancers, including some chemoresistant AML subsets, have upregulated oxidative phosphorylation. In this study, we aimed to assess treatment-resistant AML patients' cell modulation using oxidative phosphorylation inhibitors metformin and atovaquone alone and in various combinations with cytosine analog cytarabine and apoptosis inducer venetoclax. Metabolic activity analysis using Agilent Seahorse XF Extracellular Flux Analyzer revealed that peripheral blood mononuclear cells' metabolic state was different among treatment-resistant AML patients. We demonstrated that metformin decreased therapy-resistant-AML cell oxidative phosphorylation ex vivo, cotreatment with cytarabine and venetoclax slightly increased the effect. However, treatment with atovaquone did not have a marked effect in our experiment. Cell treatment had a slight effect on cell proliferation inhibition; combination of metformin, cytarabine, and venetoclax had the strongest effect. Moreover, a slightly higher effect on cell proliferation and cell cycle regulation was demonstrated in the cells with higher initial oxidative phosphorylation rate as demonstrated by gene expression analysis using reverse transcription quantitative polymerase chain reaction (RT-qPCR). Proteomic analysis by liquid chromatography-mass spectrometry demonstrated that chemoresistant AML cell treatment with metformin modulated metabolic pathways, while metformin combination with cytarabine and venetoclax boosted the effect. We suggest that oxidative phosphorylation inhibition is effective but not sufficient for chemoresistant AML treatment. Indeed, it causes anticancerous changes that might have an important additive role in combinatory treatment.
Insights
Metformin reduced oxidative phosphorylation in treatment-resistant acute myeloid leukemia (AML) cells. Combining metformin with cytarabine and venetoclax showed the strongest effect on inhibiting cancer cell proliferation.
Area of Science:
- Oncology
- Metabolic Research
- Pharmacology
Background:
- Acute myeloid leukemia (AML) treatment faces challenges due to relapse and resistance.
- Upregulated oxidative phosphorylation is observed in certain cancers, including chemoresistant AML subsets.
- Novel therapeutic strategies are crucial for overcoming AML treatment resistance.
Purpose of the Study:
- To evaluate the effects of oxidative phosphorylation inhibitors (metformin, atovaquone) on chemoresistant AML cells.
- To assess the efficacy of these inhibitors alone and in combination with cytarabine and venetoclax.
- To investigate the impact on cellular metabolism, proliferation, and cell cycle regulation.
Main Methods:
- Metabolic activity analysis using Agilent Seahorse XF Extracellular Flux Analyzer.
- Gene expression analysis via reverse transcription quantitative polymerase chain reaction (RT-qPCR).
- Proteomic analysis utilizing liquid chromatography-mass spectrometry (LC-MS).
Main Results:
- Metformin decreased oxidative phosphorylation in chemoresistant AML cells ex vivo.
- The combination of metformin, cytarabine, and venetoclax demonstrated the strongest inhibition of cell proliferation.
- Metformin modulated metabolic pathways, with enhanced effects observed when combined with cytarabine and venetoclax.
Conclusions:
- Oxidative phosphorylation inhibition shows promise but is insufficient as a standalone treatment for chemoresistant AML.
- Metformin, particularly in combination therapies, induces anticancerous changes.
- Targeting metabolic pathways offers potential as an additive strategy in combination treatments for chemoresistant AML.
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