Comparative analysis of the pathogenic mechanisms associated with the G8363A and A8296G mutations in the mitochondrial tRNALys gene

Author:

BORNSTEIN Belén12,MAS José Antonio1,PATRONO Clarice13,FERNÁNDEZ-MORENO Miguel Angel1,GONZÁLEZ-VIOQUE Emiliano1,CAMPOS Yolanda4,CARROZZO Rosalba3,MARTÍN Miguel Angel4,HOYO Pilar del4,SANTORELLI Filippo M.3,ARENAS Joaquín4,GARESSE Rafael1

Affiliation:

1. Departamento de Bioquímica, Instituto de Investigaciones Biomédicas ‘Alberto Sols’, CSIC-UAM, Facultad de Medicina, Universidad Autónoma de Madrid, 28029 Madrid, Spain

2. Servicio de Bioquímica, Hospital Severo Ochoa, Leganés, Madrid, Spain

3. Unit of Molecular Medicine, Children's Hospital ‘Bambino Gesù’, Rome, Italy

4. Centro de Investigación, Hospital 12 de Octubre, Madrid, Spain

Abstract

Two mutations (G8363A and A8296G) in the mtDNA (mitochondrial DNA) tRNALys gene have been associated with severe mitochondrial diseases in a number of reports. Their functional significance, however, remains unknown. We have already shown that homoplasmic cybrids harbouring the A8296G mutation display normal oxidative phosphorylation, although the possibility of a subtle change in mitochondrial respiratory capacity remains an open issue. We have now investigated the pathogenic mechanism of another mutation in the tRNALys gene (G8363A) by repopulating an mtDNA-less human osteosarcoma cell line with mitochondria harbouring either this genetic variant alone or an unusual combination of the two mutations (A8296G+G8363A). Cybrids homoplasmic for the single G8363A or the A8296G+G8363A mutations have defective respiratory-chain enzyme activities and low oxygen consumption, indicating a severe impairment of the oxidative phosphorylation system. Generation of G8363A cybrids within a wild-type or the A8296G mtDNA genetic backgrounds resulted in an important alteration in the conformation of the tRNALys, not affecting tRNA steady-state levels. Moreover, mutant cybrids have an important decrease in the proportion of amino-acylated tRNALys and, consequently, mitochondrial protein synthesis is greatly decreased. Our results demonstrate that the pathogenicity of the G8363A mutation is due to a change in the conformation of the tRNA that severely impairs aminoacylation in the absence of changes in tRNA stability. The only effect detected in the A8296G mutation is a moderate decrease in the aminoacylation capacity, which does not affect mitochondrial protein biosynthesis.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

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