NOA1 is an essential GTPase required for mitochondrial protein synthesis

Author:

Kolanczyk Mateusz12,Pech Markus3,Zemojtel Tomasz4,Yamamoto Hiroshi3,Mikula Ivan5,Calvaruso Maria-Antonietta6,van den Brand Mariël6,Richter Ricarda7,Fischer Bjoern12,Ritz Anita12,Kossler Nadine12,Thurisch Boris12,Spoerle Ralf8,Smeitink Jan6,Kornak Uwe12,Chan Danny9,Vingron Martin4,Martasek Pavel5,Lightowlers Robert N.7,Nijtmans Leo6,Schuelke Markus10,Nierhaus Knud H.3,Mundlos Stefan12

Affiliation:

1. Development & Disease Group, Max Planck Institute for Molecular Genetics, 14195 Berlin, Germany

2. Institute for Medical Genetics, Charitè, University Medical Center, 13353 Berlin, Germany

3. AG Ribosomen, Max Planck Institute for Molecular Genetics, 14195 Berlin, Germany

4. Department of Computational Molecular Biology, Max Planck Institute for Molecular Genetics, 14195 Berlin, Germany

5. Department of Pediatrics and Center for Applied Genomics, Ist Faculty of Medicine, Charles University, 12109 Prague, Czech Republic.

6. Nijmegen Centre for Mitochondrial Disorders at the Department of Pediatrics, Radboud University Nijmegen Medical Centre, Nijmegen, The Netherlands

7. Mitochondrial Research Group, Institute for Ageing and Health, Newcastle University, Newcastle upon Tyne, United Kingdom NE2 4HH

8. Department of Developmental Genetics, Max Planck Institute for Molecular Genetics, 14195 Berlin, Germany

9. Department of Biochemistry, the University of Hong Kong, Hong Kong, China

10. Department of Neuropediatrics and NeuroCure Clinical Research Center, Charité University Medical Center, 13353 Berlin, Germany

Abstract

Nitric oxide associated-1 (NOA1) is an evolutionarily conserved guanosine triphosphate (GTP) binding protein that localizes predominantly to mitochondria in mammalian cells. On the basis of bioinformatic analysis, we predicted its possible involvement in ribosomal biogenesis, although this had not been supported by any experimental evidence. Here we determine NOA1 function through generation of knockout mice and in vitro assays. NOA1-deficient mice exhibit midgestation lethality associated with a severe developmental defect of the embryo and trophoblast. Primary embryonic fibroblasts isolated from NOA1 knockout embryos show deficient mitochondrial protein synthesis and a global defect of oxidative phosphorylation (OXPHOS). Additionally, Noa1–/– cells are impaired in staurosporine-induced apoptosis. The analysis of mitochondrial ribosomal subunits from Noa1–/– cells by sucrose gradient centrifugation and Western blotting showed anomalous sedimentation, consistent with a defect in mitochondrial ribosome assembly. Furthermore, in vitro experiments revealed that intrinsic NOA1 GTPase activity was stimulated by bacterial ribosomal constituents. Taken together, our data show that NOA1 is required for mitochondrial protein synthesis, likely due to its yet unidentified role in mitoribosomal biogenesis. Thus, NOA1 is required for such basal mitochondrial functions as adenosine triphosphate (ATP) synthesis and apoptosis.

Publisher

American Society for Cell Biology (ASCB)

Subject

Cell Biology,Molecular Biology

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