The Deafness-Associated Mitochondrial DNA Mutation at Position 7445, Which Affects tRNA Ser(UCN) Precursor Processing, Has Long-Range Effects on NADH Dehydrogenase Subunit ND6 Gene Expression

Author:

Guan Min-Xin1,Enriquez José Antonio1,Fischel-Ghodsian Nathan2,Puranam Ram S.1,Lin Catherine P.1,Maw Marion A.3,Attardi Giuseppe1

Affiliation:

1. Division of Biology, California Institute of Technology, Pasadena, California 911251;

2. Ahmanson Department of Pediatrics, Steven Spielberg Pediatric Research Center, Cedars-Sinai Medical Center, Los Angeles, California 900482; and

3. Department of Biochemistry, University of Otago, Dunedin, New Zealand3

Abstract

ABSTRACT The pathogenetic mechanism of the deafness-associated mitochondrial DNA (mtDNA) T7445C mutation has been investigated in several lymphoblastoid cell lines from members of a New Zealand pedigree exhibiting the mutation in homoplasmic form and from control individuals. We show here that the mutation flanks the 3′ end of the tRNA Ser(UCN) gene sequence and affects the rate but not the sites of processing of the tRNA precursor. This causes an average reduction of ∼70% in the tRNA Ser(UCN) level and a decrease of ∼45% in protein synthesis rate in the cell lines analyzed. The data show a sharp threshold in the capacity of tRNA Ser(UCN) to support the wild-type protein synthesis rate, which corresponds to ∼40% of the control level of this tRNA. Strikingly, a 7445 mutation-associated marked reduction has been observed in the level of the mRNA for the NADH dehydrogenase (complex I) ND6 subunit gene, which is located ∼7 kbp upstream and is cotranscribed with the tRNA Ser(UCN) gene, with strong evidence pointing to a mechanistic link with the tRNA precursor processing defect. Such reduction significantly affects the rate of synthesis of the ND6 subunit and plays a determinant role in the deafness-associated respiratory phenotype of the mutant cell lines. In particular, it accounts for their specific, very significant decrease in glutamate- or malate-dependent O 2 consumption. Furthermore, several homoplasmic mtDNA mutations affecting subunits of NADH dehydrogenase may play a synergistic role in the establishment of the respiratory phenotype of the mutant cells.

Publisher

American Society for Microbiology

Subject

Cell Biology,Molecular Biology

Reference49 articles.

1. Unconventional structure of tRNALysSUU anticodon explains tRNA’s role in bacterial and mammalian ribosomal frameshifting and primer selection by HIV-1;Agris P. F.;RNA,1997

2. Anderson S. Bankier A. T. Barrell B. G. de Bruijn M. H. L. Coulson A. R. Drouin J. Eperon I. C. Nierlich D. P. Rose B. A. Sanger F. Schreier P. H. Smith A. J. H. Staden R. Young I. G. Comparison of the human and bovine mitochondrial genomes Mitochondrial genes. Slonimski P. Borst P. Attardi G. 1982 5 43 Cold Spring Harbor Laboratory Cold Spring Harbor N.Y

3. Sequence and organization of the human mitochondrial genome;Anderson S.;Nature,1981

4. Regulation of mitochondrial gene expression in mammalian cells;Attardi G.;Biochem. Soc. Trans.,1990

5. The mtDNA-encoded ND6 subunit of mitochondrial NADH dehydrogenase is essential for the assembly of the membrane arm and the respiratory function of the enzyme;Bai Y.;EMBO J.,1998

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