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Published on: January 23, 2018
MISC-1/OGC links mitochondrial metabolism, apoptosis and insulin secretion
Marco Gallo1, Donha Park, Dan S Luciani
1Department of Medical Genetics, The University of British Columbia, Vancouver, British Columbia, Canada. mgallo@msl.ubc.ca
Abstract:
We identified MISC-1 (Mitochondrial Solute Carrier) as the C. elegans orthologue of mammalian OGC (2-oxoglutarate carrier). OGC was originally identified for its ability to transfer α-ketoglutarate across the inner mitochondrial membrane. However, we found that MISC-1 and OGC are not solely involved in metabolic control. Our data show that these orthologous proteins participate in phylogenetically conserved cellular processes, like control of mitochondrial morphology and induction of apoptosis. We show that MISC-1/OGC is required for proper mitochondrial fusion and fission events in both C. elegans and human cells. Transmission electron microscopy reveals that loss of MISC-1 results in a decreased number of mitochondrial cristae, which have a blebbed appearance. Furthermore, our pull-down experiments show that MISC-1 and OGC interact with the anti-apoptotic proteins CED-9 and Bcl-x(L), respectively, and with the pro-apoptotic protein ANT. Knock-down of misc-1 in C. elegans and OGC in mouse cells induces apoptosis through the caspase cascade. Genetic analysis suggests that MISC-1 controls apoptosis through the physiological pathway mediated by the LIN-35/Rb-like protein. We provide genetic and molecular evidence that absence of MISC-1 increases insulin secretion and enhances germline stem cell proliferation in C. elegans. Our study suggests that the mitochondrial metabolic protein MISC-1/OGC integrates metabolic, apoptotic and insulin secretion functions. We propose a novel mechanism by which mitochondria integrate metabolic and cell survival signals. Our data suggest that MISC-1/OGC functions by sensing the metabolic status of mitochondria and directly activate the apoptotic program when required. Our results suggest that controlling MISC-1/OGC function allows regulation of mitochondrial morphology and cell survival decisions by the metabolic needs of the cell.
Insights
Mitochondrial Solute Carrier (MISC-1) protein regulates mitochondrial shape, apoptosis, and insulin secretion. This metabolic protein integrates cell survival signals with metabolic status, impacting cell fate decisions.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Mitochondrial Solute Carrier (MISC-1) is the C. elegans orthologue of mammalian 2-oxoglutarate carrier (OGC).
- OGC was initially identified for its role in transferring α-ketoglutarate across the inner mitochondrial membrane.
- The functions of MISC-1/OGC extend beyond metabolic control.
Purpose of the Study:
- To investigate the broader cellular roles of MISC-1/OGC beyond metabolism.
- To determine the involvement of MISC-1/OGC in mitochondrial morphology and apoptosis.
- To explore the regulatory mechanisms and downstream pathways influenced by MISC-1/OGC.
Main Methods:
- Orthologue identification and characterization.
- Transmission electron microscopy for mitochondrial morphology analysis.
- Pull-down assays to identify protein interactions.
- Knock-down experiments in C. elegans and mouse cells.
- Genetic analysis of apoptotic pathways.
Main Results:
- MISC-1/OGC is essential for proper mitochondrial fusion and fission.
- Loss of MISC-1 leads to decreased mitochondrial cristae with a blebbed appearance.
- MISC-1/OGC interacts with both anti-apoptotic (CED-9, Bcl-x(L)) and pro-apoptotic (ANT) proteins.
- MISC-1/OGC regulates apoptosis via the caspase cascade and the LIN-35/Rb-like pathway.
- Absence of MISC-1 increases insulin secretion and germline stem cell proliferation in C. elegans.
Conclusions:
- MISC-1/OGC integrates metabolic, apoptotic, and insulin secretion functions.
- Mitochondria, via MISC-1/OGC, can sense metabolic status and activate apoptosis.
- MISC-1/OGC provides a novel mechanism for integrating metabolic signals with cell survival decisions.
- Regulation of MISC-1/OGC allows control of mitochondrial morphology and cell fate based on cellular metabolic needs.
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