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Published on: July 21, 2018
Monocarboxylate Transporter 4 Is a Therapeutic Target in Non-small Cell Lung Cancer with Aerobic Glycolysis
Ting-Chun Kuo1, Kuo-Yen Huang2,3, Shuenn-Chen Yang2
1Department of Internal Medicine, College of Medicine, National Taiwan University, Taipei 10051, Taiwan.
Abstract:
Targeting metabolic reprogramming is an emerging strategy in cancer therapy. However, clinical attempts to target metabolic reprogramming have been proved to be challenging, with metabolic heterogeneity of cancer being one of many reasons that causes treatment failure. Here, we stratified non-small cell lung cancer (NSCLC) cells, mainly lung adenocarcinoma, based on their metabolic phenotypes and demonstrated that the aerobic glycolysis-preference NSCLC cell subtype was resistant to the OXPHOS-targeting inhibitors. We identified that monocarboxylate transporter 4 (MCT4), a lactate transporter, was highly expressed in the aerobic glycolysis-preference subtype with function supporting the proliferation of these cells. Glucose could induce the expression of MCT4 in these cells through a ΔNp63α and Sp1-dependent pathway. Next, we showed that knockdown of MCT4 increased intracellular lactate concentration and induced a reactive oxygen species (ROS)-dependent cellular apoptosis in the aerobic glycolysis-preference NSCLC cell subtype. By scanning a panel of monoclonal antibodies with MCT4 neutralizing activity, we further identified a MCT4 immunoglobulin M (IgM) monoclonal antibody showing capable anti-proliferation efficacy on the aerobic glycolysis-preference NSCLC cell subtype. Our findings indicate that the metabolic heterogeneity is a critical factor for NSCLC therapy and manipulating the expression or function of MCT4 can be an effective strategy in targeting the aerobic glycolysis-preference NSCLC cell subtype.
Insights
Targeting cancer's energy production is key. This study shows a specific lung cancer subtype prefers glycolysis and resists certain drugs, highlighting monocarboxylate transporter 4 (MCT4) as a therapeutic target.
Area of Science:
- Oncology
- Cancer Metabolism
- Molecular Biology
Background:
- Targeting metabolic reprogramming is a promising cancer therapy strategy.
- Metabolic heterogeneity in cancer contributes to treatment failure.
- Non-small cell lung cancer (NSCLC) exhibits diverse metabolic phenotypes.
Purpose of the Study:
- To stratify NSCLC cells by metabolic phenotype.
- To investigate the role of aerobic glycolysis in treatment resistance.
- To identify novel therapeutic targets for specific NSCLC subtypes.
Main Methods:
- Stratification of NSCLC cells based on metabolic phenotypes.
- Identification and functional analysis of monocarboxylate transporter 4 (MCT4).
- Investigation of glucose-induced MCT4 expression pathway (ΔNp63α and Sp1).
- Assessment of MCT4 knockdown effects on cell apoptosis and ROS.
- Screening of monoclonal antibodies targeting MCT4.
Main Results:
- Aerobic glycolysis-preferring NSCLC cells are resistant to OXPHOS inhibitors.
- MCT4 is highly expressed in aerobic glycolysis-preferring NSCLC cells, supporting proliferation.
- Glucose upregulates MCT4 via a ΔNp63α and Sp1-dependent pathway.
- MCT4 knockdown induces ROS-dependent apoptosis in this subtype.
- An anti-MCT4 IgM antibody demonstrates anti-proliferative effects.
Conclusions:
- Metabolic heterogeneity is critical in NSCLC therapy.
- Targeting MCT4 (monocarboxylate transporter 4) offers a strategy against aerobic glycolysis-preferring NSCLC.
- MCT4 inhibition can overcome resistance to OXPHOS-targeting drugs.
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