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Unlocking the Distinct Roles of the Three Mammalian VDAC Isoforms in Mitochondrial Respiration and Cancer Cell
Megha Rajendran1, William M Rosencrans2, Wendy Fitzgerald1
1Eunice Kennedy Shriver National Institute of Child Health and Human Development, NIH, Bethesda, Maryland, USA 20892.
Abstract:
The Voltage Dependent Anion Channel (VDAC) is the most ubiquitous protein in the mitochondrial outer membrane. This channel facilitates the flux of water-soluble metabolites and ions like calcium across the mitochondrial outer membrane. Beyond this canonical role, VDAC has been implicated, through interactions with protein partners, in several cellular processes such as apoptosis, calcium signaling, and lipid metabolism. There are three VDAC isoforms in mammalian cells, VDAC 1, 2, and 3, with varying tissue-specific expression profiles. From a biophysical standpoint, all three isoforms can conduct metabolites and ions with similar efficiency. However, isoform knockouts (KOs) in mice lead to distinct phenotypes, which may be due to differences in VDAC isoform interactions with partner proteins. To understand the functional role of each VDAC isoform within a single cell type, we created functional KOs of each isoform in HeLa cells and performed a comparative study of their metabolic activity and proteomics. We found that each isoform KO alters the proteome differently, with VDAC3 KO dramatically downregulating key members of the electron transport chain (ETC) while shifting the mitochondria into a glutamine-dependent state. Importantly, this unexpected dependence of mitochondrial function on the VDAC3 isoform is not compensated by the more ubiquitously expressed VDAC1 and VDAC2 isoforms. In contrast, VDAC2 KO did not affect respiration but upregulated ETC components and decreased key enzymes in the glutamine metabolic pathway. VDAC1 KO specifically reduced glycolytic activity linked to decreased hexokinase localization to mitochondria. These results reveal non-redundant roles of VDAC isoforms in cancer cell metabolic adaptability.
Insights
Voltage Dependent Anion Channel (VDAC) isoforms have distinct roles in cancer cell metabolism. VDAC3 KO impairs mitochondrial respiration, while VDAC1 and VDAC2 affect glycolysis and glutamine metabolism, revealing non-redundant functions.
Area of Science:
- Mitochondrial biology
- Cellular metabolism
- Molecular cell biology
Background:
- The Voltage Dependent Anion Channel (VDAC) is crucial for mitochondrial outer membrane transport.
- VDAC isoforms (1, 2, and 3) interact with various proteins, influencing cellular processes like apoptosis and metabolism.
- Distinct phenotypes in VDAC isoform knockout mice suggest non-redundant functions.
Purpose of the Study:
- To investigate the specific roles of VDAC isoforms in cancer cell metabolic adaptability.
- To compare the metabolic and proteomic consequences of individual VDAC isoform knockouts in HeLa cells.
Main Methods:
- Generated functional knockouts (KOs) for each VDAC isoform (VDAC1, VDAC2, VDAC3) in HeLa cells.
- Performed comparative analysis of cellular metabolic activity and proteomics.
- Assessed electron transport chain (ETC) activity, glutamine metabolism, and glycolysis.
Main Results:
- VDAC3 KO significantly downregulated ETC components and induced glutamine dependence in mitochondria.
- VDAC2 KO upregulated ETC components and decreased glutamine metabolic enzymes without affecting respiration.
- VDAC1 KO reduced glycolytic activity due to impaired hexokinase mitochondrial localization.
Conclusions:
- VDAC isoforms play non-redundant roles in regulating cancer cell metabolic flexibility.
- VDAC3 is unexpectedly critical for mitochondrial function and metabolic state.
- Understanding VDAC isoform-specific functions is key to targeting cancer cell metabolism.
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