Oxygen radical-induced mitochondrial DNA damage and repair in pulmonary vascular endothelial cell phenotypes
- 1 June 2001
- journal article
- research article
- Published by American Physiological Society in American Journal of Physiology-Lung Cellular and Molecular Physiology
- Vol. 280 (6) , L1300-L1308
- https://doi.org/10.1152/ajplung.2001.280.6.l1300
Abstract
Mitochondrial (mt) DNA is damaged by free radicals. Recent data also show that there are cell type-dependent differences in mtDNA repair capacity. In this study, we explored the effects of xanthine oxidase (XO), which generates superoxide anion directly, and menadione, which enhances superoxide production within mitochondria, on mtDNA in pulmonary arterial (PA), microvascular (MV), and pulmonary venous (PV) endothelial cells (ECs). Both XO and menadione damaged mtDNA in the EC phenotypes, with a rank order of sensitivity of (from most to least) PV > PA > MV for XO and MV = PV > PA for menadione. Dimethylthiourea and deferoxamine blunted menadione- and XO-induced mtDNA damage, thus supporting a role for the iron-catalyzed formation of hydroxyl radical. Damage to the nuclear vascular endothelial growth factor gene was not detected with either XO or menadione. PAECs and MVECs, but not PVECs, repaired XO-induced mtDNA damage quickly. Menadione-induced mtDNA damage was avidly repaired in MVECs and PVECs, whereas repair in PAECs was slower. Analysis of mtDNA lesions at nucleotide resolution showed that damage patterns were similar between EC phenotypes, but there were disparities between XO and menadione in terms of the specific nucleotides damaged. These findings indicate that mtDNA in lung vascular ECs is damaged by XO- and menadione-derived free radicals and suggest that mtDNA damage and repair capacities differ between EC phenotypes.Keywords
This publication has 29 references indexed in Scilit:
- Enhanced Mitochondrial DNA Repair and Cellular Survival after Oxidative Stress by Targeting the Human 8-Oxoguanine Glycosylase Repair Enzyme to MitochondriaJournal of Biological Chemistry, 2000
- Aging-Dependent Large Accumulation of Point Mutations in the Human mtDNA Control Region for ReplicationScience, 1999
- Cells depleted of mitochondrial DNA (p0) yield insight into physiological mechanismsFEBS Letters, 1999
- Repair of mtDNA in VertebratesAmerican Journal of Human Genetics, 1999
- Accumulation of mtDNA Defects and Changes in mtDNA Content in Mouse and Rat Tissues with AgingAnnals of the New York Academy of Sciences, 1992
- One- and two-electron reduction of menadione in guinea-pig and rat cardiac tissueGeneral Pharmacology: The Vascular System, 1992
- Human Cells Lacking mtDNA: Repopulation with Exogenous Mitochondria by ComplementationScience, 1989
- DNA Damage and Oxygen Radical ToxicityScience, 1988
- DNA repair in an active gene: Removal of pyrimidine dimers from the DHFR gene of CHO cells is much more efficient than in the genome overallCell, 1985
- Prevention of granulocyte-mediated oxidant lung injury in rats by a hydroxyl radical scavenger, dimethylthiourea.Journal of Clinical Investigation, 1984