Use of transmitochondrial cybrids to assign a complex I defect to the mitochondrial DNA-encoded NADH dehydrogenase subunit 6 gene mutation at nucleotide pair …

AS Jun, IA Trounce, MD Brown… - … and Cellular Biology, 1996 - Am Soc Microbiol
AS Jun, IA Trounce, MD Brown, JM Shoffner, DC Wallace
Molecular and Cellular Biology, 1996Am Soc Microbiol
Abstract A heteroplasmic G-to-A transition at nucleotide pair (np) 14459 within the
mitochondrial DNA (mtDNA)-encoded NADH dehydrogenase subunit 6 (ND6) gene has
been identified as the cause of Leber hereditary optic neuropathy (LHON) and/or pediatric-
onset dystonia in three unrelated families. This ND6 np 14459 mutation changes a
moderately conserved alanine to a valine at amino acid position 72 of the ND6 protein.
Enzymologic analysis of mitochondrial NADH dehydrogenase (complex I) with …
Abstract
A heteroplasmic G-to-A transition at nucleotide pair (np) 14459 within the mitochondrial DNA (mtDNA)-encoded NADH dehydrogenase subunit 6 (ND6) gene has been identified as the cause of Leber hereditary optic neuropathy (LHON) and/or pediatric-onset dystonia in three unrelated families. This ND6 np 14459 mutation changes a moderately conserved alanine to a valine at amino acid position 72 of the ND6 protein. Enzymologic analysis of mitochondrial NADH dehydrogenase (complex I) with submitochondrial particles isolated from Epstein-Barr virus-transformed lymphoblasts revealed a 60% reduction (P< 0.005) of complex I-specific activity in patient cell lines compared with controls, with no differences in enzymatic activity for complexes II plus III, III, and IV. This biochemical defect was assigned to the ND6 np 14459 mutation by using transmitochondrial cybrids in which patient Epstein-Barr virus-transformed lymphoblast cell lines were enucleated and the cytoplasts were fused to a mtDNA-deficient (ρ 0) lymphoblastoid recipient cell line. Cybrids harboring the np 14459 mutation exhibited a 39% reduction (P< 0.02) in complex I-specific activity relative to wild-type cybrid lines but normal activity for the other complexes. Kinetic analysis of the np 14459 mutant complex I revealed that the V max of the enzyme was reduced while the K m remained the same as that of wild type. Furthermore, specific activity was inhibited by increasing concentrations of the reduced coenzyme Q analog decylubiquinol. These observations suggest that the np 14459 mutation may alter the coenzyme Q-binding site of complex I.
American Society for Microbiology