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Defining Hsp33's Redox-regulated Chaperone Activity and Mapping Conformational Changes on Hsp33 Using Hydrogen-deuterium Exchange Mass Spectrometry
Published on: June 7, 2018
Molecular chaperone TRAP1 regulates a metabolic switch between mitochondrial respiration and aerobic glycolysis
Soichiro Yoshida1, Shinji Tsutsumi, Guillaume Muhlebach
1Urologic Oncology Branch, Center for Cancer Research, National Cancer Institute, Bethesda, MD 20892, USA.
Abstract:
TRAP1 (TNF receptor-associated protein), a member of the HSP90 chaperone family, is found predominantly in mitochondria. TRAP1 is broadly considered to be an anticancer molecular target. However, current inhibitors cannot distinguish between HSP90 and TRAP1, making their utility as probes of TRAP1-specific function questionable. Some cancers express less TRAP1 than do their normal tissue counterparts, suggesting that TRAP1 function in mitochondria of normal and transformed cells is more complex than previously appreciated. We have used TRAP1-null cells and transient TRAP1 silencing/overexpression to show that TRAP1 regulates a metabolic switch between oxidative phosphorylation and aerobic glycolysis in immortalized mouse fibroblasts and in human tumor cells. TRAP1-deficiency promotes an increase in mitochondrial respiration and fatty acid oxidation, and in cellular accumulation of tricarboxylic acid cycle intermediates, ATP and reactive oxygen species. At the same time, glucose metabolism is suppressed. TRAP1-deficient cells also display strikingly enhanced invasiveness. TRAP1 interaction with and regulation of mitochondrial c-Src provide a mechanistic basis for these phenotypes. Taken together with the observation that TRAP1 expression is inversely correlated with tumor grade in several cancers, these data suggest that, in some settings, this mitochondrial molecular chaperone may act as a tumor suppressor.
Insights
TNF receptor-associated protein 1 (TRAP1) deficiency shifts cellular metabolism towards increased mitochondrial respiration and enhanced invasiveness. This suggests TRAP1 may act as a tumor suppressor in certain cancers, challenging its role as a direct anticancer target.
Area of Science:
- Mitochondrial biology
- Cancer metabolism
- Molecular chaperones
Background:
- TRAP1, a mitochondrial HSP90 family member, is a proposed anticancer target.
- Current TRAP1 inhibitors lack specificity, hindering investigation of its precise functions.
- TRAP1 expression varies in cancers, indicating complex roles in normal and tumor cells.
Purpose of the Study:
- To investigate the role of TRAP1 in cellular metabolism and cancer cell behavior.
- To elucidate the mechanisms underlying TRAP1's function in mitochondria.
- To re-evaluate TRAP1's therapeutic potential based on its complex roles.
Main Methods:
- Utilized TRAP1-null cells, transient TRAP1 silencing, and overexpression.
- Analyzed metabolic shifts between oxidative phosphorylation and glycolysis.
- Investigated TRAP1's interaction with mitochondrial c-Src.
Main Results:
- TRAP1 deficiency increased mitochondrial respiration, fatty acid oxidation, ATP, and ROS production.
- Glucose metabolism was suppressed in TRAP1-deficient cells.
- TRAP1-deficient cells exhibited significantly enhanced invasiveness, linked to mitochondrial c-Src regulation.
Conclusions:
- TRAP1 regulates a metabolic switch from oxidative phosphorylation to glycolysis.
- TRAP1 deficiency promotes metabolic changes associated with increased tumor cell invasiveness.
- TRAP1 may function as a tumor suppressor in specific cancer contexts, contrary to its broad targeting as an anticancer agent.
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