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Author Spotlight: Unveiling Mitochondrial Contact Sites and Architectural Insights
Published on: June 16, 2023
The MICOS component Mic60 displays a conserved membrane-bending activity that is necessary for normal cristae
Daryna Tarasenko1, Mariam Barbot1, Daniel C Jans2,3
1Department of Cellular Biochemistry, University Medical Center Göttingen, 37073 Göttingen, Germany.
Abstract:
The inner membrane (IM) of mitochondria displays an intricate, highly folded architecture and can be divided into two domains: the inner boundary membrane adjacent to the outer membrane and invaginations toward the matrix, called cristae. Both domains are connected by narrow, tubular membrane segments called cristae junctions (CJs). The formation and maintenance of CJs is of vital importance for the organization of the mitochondrial IM and for mitochondrial and cellular physiology. The multisubunit mitochondrial contact site and cristae organizing system (MICOS) was found to be a major factor in CJ formation. In this study, we show that the MICOS core component Mic60 actively bends membranes and, when inserted into prokaryotic membranes, induces the formation of cristae-like plasma membrane invaginations. The intermembrane space domain of Mic60 has a lipid-binding capacity and induces membrane curvature even in the absence of the transmembrane helix. Mic60 homologues from α-proteobacteria display the same membrane deforming activity and are able to partially overcome the deletion of Mic60 in eukaryotic cells. Our results show that membrane bending by Mic60 is an ancient mechanism, important for cristae formation, and had already evolved before α-proteobacteria developed into mitochondria.
Insights
The mitochondrial inner membrane protein Mic60 actively bends membranes, forming cristae-like structures. This ancient membrane-bending mechanism, crucial for mitochondrial cristae formation, evolved before mitochondria originated from alpha-proteobacteria.
Area of Science:
- Mitochondrial biology
- Membrane biophysics
- Cellular physiology
Background:
- Mitochondrial inner membrane (IM) architecture features cristae and cristae junctions (CJs).
- The MICOS complex is essential for cristae junction formation and IM organization.
- Maintaining IM structure is vital for mitochondrial and cellular function.
Purpose of the Study:
- To investigate the role of MICOS core component Mic60 in membrane bending and cristae formation.
- To explore the evolutionary origins of Mic60's membrane-deforming activity.
Main Methods:
- In vitro membrane bending assays with Mic60.
- Expression of Mic60 in prokaryotic membranes to induce invaginations.
- Functional complementation studies using Mic60 homologues in eukaryotic cells.
Main Results:
- Mic60 actively bends membranes, inducing cristae-like structures in prokaryotic systems.
- Mic60's intermembrane space domain possesses lipid-binding capacity, driving membrane curvature.
- Homologues of Mic60 from alpha-proteobacteria exhibit similar membrane-deforming activity and can partially rescue Mic60 deletion phenotypes.
Conclusions:
- Membrane bending by Mic60 is a conserved, ancient mechanism fundamental to cristae formation.
- Mic60's function in shaping mitochondrial membranes predates the endosymbiotic event leading to mitochondria.
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