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Published on: May 5, 2022
Mitochondrial NDUFS3 regulates the ROS-mediated onset of metabolic switch in transformed cells
Sonal Suhane1, Hirotaka Kanzaki, Vaithilingaraja Arumugaswami
1Metabolic Photonics Laboratory, Cedars-Sinai Medical Center , 8700 Beverly Boulevard, Davis 6066, Los Angeles, CA 90048 , USA ; Department of Surgery, Cedars-Sinai Medical Center , 8700 Beverly Boulevard, Davis 6066, Los Angeles, CA 90048 , USA.
Abstract:
Aerobic glycolysis in transformed cells is an unique metabolic phenotype characterized by a hyperactivated glycolytic pathway even in the presence of oxygen. It is not clear if the onset of aerobic glycolysis is regulated by mitochondrial dysfunction and, if so, what the metabolic windows of opportunity available to control this metabolic switch (mitochondrial to glycolytic) landscape are in transformed cells. Here we report a genetically-defined model system based on the gene-silencing of a mitochondrial complex I subunit, NDUFS3, where we demonstrate the onset of metabolic switch in isogenic human embryonic kidney cells by differential expression of NDUFS3. By means of extensive metabolic characterization, we demonstrate that NDUFS3 gene silencing systematically introduces mitochondrial dysfunction thereby leading to the onset of aerobic glycolysis in a manner dependent on NDUFS3 protein levels. Furthermore, we show that the sustained imbalance in free radical dynamics is a necessary condition to sustain the observed metabolic switch in cell lines with the most severe NDUFS3 suppression. Together, our data reveal a novel role for mitochondrial complex I subunit NDUFS3 in regulating the degree of mitochondrial dysfunction in living cells, thereby setting a "metabolic threshold" for the observation of aerobic glycolysis phenotype within the confines of mitochondrial dysfunction.
Insights
Mitochondrial complex I subunit NDUFS3 regulates aerobic glycolysis in transformed cells. Gene silencing of NDUFS3 induces mitochondrial dysfunction, triggering this metabolic switch and setting a threshold for its onset.
Area of Science:
- Cellular metabolism
- Mitochondrial function
- Cancer cell biology
Background:
- Aerobic glycolysis is a hallmark of transformed cells, but its regulation by mitochondrial dysfunction is unclear.
- Understanding the metabolic switch from mitochondrial respiration to glycolysis is crucial for targeting cancer metabolism.
Purpose of the Study:
- To investigate the role of mitochondrial complex I subunit NDUFS3 in regulating aerobic glycolysis.
- To establish a model system for studying the metabolic switch in transformed cells.
Main Methods:
- Gene silencing of NDUFS3 in isogenic human embryonic kidney cells.
- Extensive metabolic characterization.
- Analysis of mitochondrial dysfunction and free radical dynamics.
Main Results:
- NDUFS3 gene silencing induces mitochondrial dysfunction in a protein level-dependent manner.
- This dysfunction leads to the onset of aerobic glycolysis.
- Sustained free radical imbalance is necessary for the metabolic switch in severely suppressed cells.
Conclusions:
- NDUFS3 plays a novel role in controlling mitochondrial dysfunction.
- NDUFS3 sets a metabolic threshold for aerobic glycolysis in the context of mitochondrial dysfunction.
- This provides insights into metabolic regulation in transformed cells.
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