
Mitochondrial dysfunction is associated with the development and progression of age-related macular degeneration (AMD). Recent studies using populations from the United States and Australia have demonstrated that AMD is associated with mitochondrial (mt) DNA haplogroups (as defined by combinations of mtDNA polymorphisms) that represent Northern European Caucasians. The aim of this study was to use the cytoplasmic hybrid (cybrid) model to investigate the molecular and biological functional consequences that occur when comparing the mtDNA H haplogroup (protective for AMD) versus J haplogroup (high risk for AMD).Cybrids were created by introducing mitochondria from individuals with either H or J haplogroups into a human retinal epithelial cell line (ARPE-19) that was devoid of mitochondrial DNA (Rho0). In cybrid lines, all of the cells carry the same nuclear genes but vary in mtDNA content. The J cybrids had significantly lower levels of ATP and reactive oxygen/nitrogen species production, but increased lactate levels and rates of growth. Q-PCR analyses showed J cybrids had decreased expressions for CFH, C3, and EFEMP1 genes, high risk genes for AMD, and higher expression for MYO7A, a gene associated with retinal degeneration in Usher type IB syndrome. The H and J cybrids also have comparatively altered expression of nuclear genes involved in pathways for cell signaling, inflammation, and metabolism.Our findings demonstrate that mtDNA haplogroup variants mediate not only energy production and cell growth, but also cell signaling for major molecular pathways. These data support the hypothesis that mtDNA variants play important roles in numerous cellular functions and disease processes, including AMD.
Risk, Science, Population, Gene Expression, Retinal Pigment Epithelium, Hybrid Cells, Myosins, DNA, Mitochondrial, Models, Biological, Macular Degeneration, Adenosine Triphosphate, Drusen Formation, Humans, Lactic Acid, Saudi Patients, Cells, Cultured, Extracellular Matrix Proteins, Factor-H Polymorphism, Mtdna, Q, R, Epithelial Cells, Complement C3, Reactive Nitrogen Species, Mitochondria, Oxidative Stress, Haplotypes, Dysfunction, Myosin Viia, Complement Factor H, Myosin VIIa, Haplogroups, Medicine, Reactive Oxygen Species, Research Article
Risk, Science, Population, Gene Expression, Retinal Pigment Epithelium, Hybrid Cells, Myosins, DNA, Mitochondrial, Models, Biological, Macular Degeneration, Adenosine Triphosphate, Drusen Formation, Humans, Lactic Acid, Saudi Patients, Cells, Cultured, Extracellular Matrix Proteins, Factor-H Polymorphism, Mtdna, Q, R, Epithelial Cells, Complement C3, Reactive Nitrogen Species, Mitochondria, Oxidative Stress, Haplotypes, Dysfunction, Myosin Viia, Complement Factor H, Myosin VIIa, Haplogroups, Medicine, Reactive Oxygen Species, Research Article
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