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Updated: Feb 16, 2026

An Optimized Protocol to Analyze Glycolysis and Mitochondrial Respiration in Lymphocytes
Published on: November 21, 2016
Acquired resistance to PI3K/mTOR inhibition is associated with mitochondrial DNA mutation and glycolysis
King Xin Koh1, Gim Hwa Tan2, Sarah Hong Hui Low1
1Cancer Science Institute of Singapore, National University of Singapore, Singapore, Singapore.
Abstract:
Acquired resistance (AQR) to drug treatment occurs frequently in cancer patients and remains an impediment to successful therapy. The aim of this study was to gain insight into how AQR arises following the application of PI3K/mTOR inhibitors. H1975 lung cancer cells with EGFR T790M mutations that confer resistance to EGFR inhibitors underwent prolonged treatment with the PI3K/mTOR inhibitor, BEZ235. Monoclonal cells with stable and increased resistance to BEZ235 were obtained after 8 months treatment. These AQR clones showed class-specific resistance to PI3K/mTOR inhibitors, reduced G1 cell cycle arrest and impedance of migration following PI3K/mTOR inhibition, reduced PTEN expression and increased Akt and S6RP phosphorylation. Transcriptome analysis revealed the AQR clones had increased expression of the metabolite transporters SLC16A9 and SLC16A7, suggestive of altered cell metabolism. Subsequent experiments revealed that AQR clones possess features consistent with elevated glycolysis, including increased levels of glucose, lactate, glutamine, glucose dependence, GLUT1 expression, and rates of post-glucose extracellular acidification, and decreased levels of reactive oxygen species and rates of oxygen consumption. Combination treatment of BEZ235 with the glycolysis inhibitor 3-bromopyruvate was synergistic in AQR clones, but only additive in parental cells. DNA sequencing revealed the presence of a mitochondrial DNA (mtDNA) MT-C01 variant in AQR but not parental cells. Depletion of mitochondrial DNA in parental cells induced resistance to BEZ235 and other PI3K/mTOR inhibitors, and was accompanied by increased glycolysis. The results of this study provide the first evidence that a metabolic switch associated with mtDNA mutation can be an underlying mechanism for AQR.
Insights
Acquired resistance to PI3K/mTOR inhibitors in cancer can arise from a metabolic switch. Mitochondrial DNA mutations drive increased glycolysis, leading to drug resistance.
Area of Science:
- Oncology
- Cancer Biology
- Metabolic Pathways
Background:
- Acquired resistance (AQR) to cancer drugs is a significant clinical challenge.
- PI3K/mTOR inhibitors are crucial in cancer therapy, but AQR limits their efficacy.
Purpose of the Study:
- To investigate the mechanisms of acquired resistance to PI3K/mTOR inhibitors.
- To understand how cancer cells adapt to prolonged PI3K/mTOR inhibition.
Main Methods:
- Prolonged treatment of H1975 lung cancer cells with the PI3K/mTOR inhibitor BEZ235.
- Analysis of resistant clones for phenotypic changes, gene expression, and metabolic profiles.
- Investigating the role of mitochondrial DNA (mtDNA) and glycolysis in resistance.
Main Results:
- Resistant clones exhibited class-specific resistance to PI3K/mTOR inhibitors and altered cell cycle/migration.
- Resistant cells showed increased glycolysis, elevated glucose and lactate, and altered transporter expression.
- A mitochondrial DNA (mtDNA) MT-C01 variant was identified in resistant clones; mtDNA depletion induced resistance and increased glycolysis.
Conclusions:
- A metabolic switch to glycolysis, driven by mtDNA mutations, is a novel mechanism for acquired resistance to PI3K/mTOR inhibitors.
- Targeting glycolysis in combination with PI3K/mTOR inhibitors may overcome resistance.
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