Relationship of Genotype to Phenotype in Fibroblast-derived Transmitochondrial Cell Lines Carrying the 3243 Mutation Associated with the Melas Encephalomyopathy: Shift towards Mutant Genotype and Role of mtDNA Copy Number
Open Access
- 1 February 1996
- journal article
- research article
- Published by Oxford University Press (OUP) in Human Molecular Genetics
- Vol. 5 (2) , 197-205
- https://doi.org/10.1093/hmg/5.2.197
Abstract
Transmitochondrial cell lines were isolated by fusing mtDNA-less ρ°206 cells with enucleated fibroblasts derived from four members of a pedigree carrying in their muscle varying proportions of the mutation at position 3243 in the tRNA Leu(UUR) gene associated with the MELAS encephalomyopathy. The mitochondrial transformants derived from an asymptomatic individual were all homoplasmic for wild-type mtDNA. The proportion of wild-type transformants derived from clinically affected members of the pedigree appeared to decrease in correspondence with an increase in severity of the clinical symptoms of the cell donor. Furthermore, the average proportion of wild-type mtDNA in the transformants derived from each member of the pedigree was very similar to that found in mtDNA from the fibroblasts of that individual, suggesting that the distribution of genotypes in the transformants reflected fairly closely that in the fibroblasts. The genotype and phenotype of ten transformants derived from one severely affected individual were investigated during continuous culture up to 17–24 weeks after the transformation step. Six heteroplasmic clones showed a progressive increase in the proportion of mutant mtDNA, whereas the mitochondrial genotype remained constant in four clones apparently homoplasmic for wild-type mtDNA or nearly homoplasmic for mutant mtDNA. An analysis of the rate of repopulation of ρ°206 cells with fibroblast-derived mtDNA revealed a large variability among different transformants, with the full re-establishment of the control ratio of mtDNA to nuclear DNA being observed between ∼6 weeks and more than 22 weeks after the transformation step. An increase in rate of O 2 consumption generally accompanied the increase in mtDNA copy number of the transformants, pointing to the important role of the mtDNA copy number in determining the phenotype of a cell. The observation that a very small amount of wild-type mtDNA (2 to 5% of the control level), coexisting with strongly predominant mutant mtDNA, conferred upon the transformants a substantial respiratory capacity (50% or more) and the evidence of proportionality between O 2 consumption rate and mtDNA copy number, which occurred at widely different mutant to wild-type mtDNA ratios, strongly suggest a contribution of the mutant mtDNA to the cell respiratory competence.Keywords
This publication has 32 references indexed in Scilit:
- MtDNA mutation in MERRF syndrome causes defective aminoacylation of tRNALys and premature translation terminationNature Genetics, 1995
- Mitochondrial DNA polymorphism in disease: a possible contributor to respiratory dysfunctionHuman Molecular Genetics, 1994
- Deficiency of the human mitochondrial transcription factor h-mtTFA in infantile mitochondrial myopathy is associated with mtDNA depletionHuman Molecular Genetics, 1994
- Defective respiratory capacity and mitochondrial protein synthesis in transformant cybrids harboring the tRNA(Leu(UUR)) mutation associated with maternally inherited myopathy and cardiomyopathy.Journal of Clinical Investigation, 1994
- Accumulation of mtDNA with a Mutation at Position 3271 in tRNALeu(UUR) Gene Introduced from a Melas Patient to HeLa Cells Lacking mtDNA Results in Progressive Inhibition of Mitochondrial Respiratory FunctionBiochemical and Biophysical Research Communications, 1993
- Defects of mitochondrial respiratory enzymes in cloned cells from MELAS fibroblastsJournal of Inherited Metabolic Disease, 1992
- Alternative, simultaneous complex I mitochondrial DNA mutations in Leber's hereditary optic neuropathyBiochemical and Biophysical Research Communications, 1991
- Deletion mutants are functionally dominant over wild-type mitochondrial genomes in skeletal muscle fiber segments in mitochondrial diseaseCell, 1990
- An extrachromosomal plasmid is the etiological precursor of kalDNA insertion sequences in the mitochrondrial chromosome of senescent neurosporaCell, 1986
- Sequence and organization of the human mitochondrial genomeNature, 1981