Cardiolipin is required for membrane docking of mitochondrial ribosomes and protein synthesis

Author:

Lee Richard G.123,Gao Junjie4,Siira Stefan J.123,Shearwood Anne-Marie12,Ermer Judith A.12,Hofferek Vinzenz5,Mathews James C.123,Zheng Minghao4,Reid Gavin E.567,Rackham Oliver128910,Filipovska Aleksandra123910ORCID

Affiliation:

1. Harry Perkins Institute of Medical Research, QEII Medical Centre, Nedlands, Western Australia 6009, Australia

2. ARC Centre of Excellence in Synthetic Biology, QEII Medical Centre, Nedlands, Western Australia 6009, Australia

3. Centre for Medical Research, The University of Western Australia, QEII Medical Centre, Nedlands, Western Australia 6009, Australia

4. School of Biomedical Sciences, University of Western Australia, Perth, Australia

5. School of Chemistry, The University of Melbourne, Parkville, Victoria, 3010, Australia

6. School of Chemistry, Department of Biochemistry and Molecular Biology, The University of Melbourne, Parkville, Victoria, 3010, Australia

7. Bio21 Molecular Science and Biotechnology Institute, The University of Melbourne, Parkville, Victoria, 3010, Australia

8. School of Pharmacy and Biomedical Sciences, Curtin University, Bentley, Western Australia 6102, Australia

9. Curtin Health Innovation Research Institute, Curtin University, Bentley, Western Australia 6102, Australia

10. Telethon Kids Institute, Northern Entrance, Perth Children's Hospital, 15 Hospital Avenue, Nedlands, Western Australia, Australia

Abstract

The mitochondrial inner membrane contains a unique phospholipid known as cardiolipin (CL), which stabilises the protein complexes embedded in the membrane and supports its overall structure. Recent evidence indicates that the mitochondrial ribosome may associate with the inner membrane to facilitate co-translational insertion of the hydrophobic oxidative phosphorylation (OXPHOS) proteins into the inner membrane. We generated three mutant knockout cell lines for the cardiolipin biosynthesis gene Crls1 to investigate the effects of cardiolipin loss on mitochondrial protein synthesis. Reduced CL levels caused altered mitochondrial morphology and transcriptome-wide changes that were accompanied by reduced uncoordinated mitochondrial translation rates and impaired respiratory supercomplex formation. Aberrant protein synthesis was caused by impaired formation and distribution of mitochondrial ribosomes. Reduction or loss of cardiolipin resulted in divergent mitochondrial and endoplasmic reticulum stress responses. We show that cardiolipin is required to stabilise the interaction of the mitochondrial ribosome with the membrane via its association with OXA1 during active translation. This interaction facilitates insertion of newly synthesised mitochondrial proteins into the inner membrane and stabilises the respiratory supercomplexes.

Funder

National Health and Medical Research Council

Australian Research Council

Publisher

The Company of Biologists

Subject

Cell Biology

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