A Mechanism Proposed to Explain the Rise in Oxidative Stress During Aging
- 1 January 1998
- journal article
- research article
- Published by Mary Ann Liebert Inc in Journal of Anti-Aging Medicine
- Vol. 1 (1) , 53-66
- https://doi.org/10.1089/rej.1.1998.1.53
Abstract
Most phenotypes of aging in vertebrates may be caused by a progressive decline in the ability of antioxidant defences to maintain cellular and systemic homeostasis. This is due both to a diminished efficacy of those defences and to an enhanced level of pro-oxidant toxicity; the imbalance between the two has been termed oxidative stress. However, the cause of this increasing imbalance remains obscure. This article proposes a mechanism by which spontaneously mutant mitochondrial DNA (mtDNA), despite being present only in very small quantities in the body, may be the main generator of oxidative stress. Mutant mtDNA is distributed very unevenly within a tissue: some cells apparently contain no wild-type mtDNA whatever. Those cells must rely on glycolysis for ATP production; furthermore, they require a system to stabilize their NAD+/NADH ratio. This can only be achieved by an efflux of electrons from the cell, most probably mediated by the plasma membrane oxidoreductase (PMOR). It is proposed that the required rate of electron efflux from these anaerobic cells exceeds the local electron-accepting capacity of "safe" acceptors in plasma such as dehydroascorbate, with the result that reactive species, such as Superoxide, are formed. This leads to increased oxidation of lipids in the plasma, notably of low-density lipoprotein (LDL) particles, which are subsequently imported into mitochondrially healthy cells. This oxidized lipoprotein must be destroyed by the recipient cells' antioxidant defences. That task diverts the cell from the degradation of pro-oxidants that it is itself generating; thus, it imposes oxidative stress on the cell. As the number of anaerobic cells in the body rises, so does oxidative stress in all cells. The consistency of this hypothesis with known facts is discussed, and technically feasible tests are suggested both of the proposed mechanism and of its overall contribution to mammalian aging, including plausible interventions to retard the process.Keywords
This publication has 52 references indexed in Scilit:
- p53 Induces Myocyte Apoptosis via the Activation of the Renin–Angiotensin SystemExperimental Cell Research, 1997
- More on mitochondria and senescenceBioEssays, 1997
- Mitochondrial diseases and agingMolecular Aspects of Medicine, 1996
- Comparison of Different Quantitative PCR Procedures in the Analysis of the 4977-bp Deletion in Human Mitochondrial DNABiochemical and Biophysical Research Communications, 1996
- Possible reversal of ageing and other mitochondrial deficiencies through retroviral transfection of mitochondrially encoded proteins to the nucleusMedical Hypotheses, 1993
- Duplication of leader sequence for protein targeting to mitochondria leads to increased import efficiencyFEBS Letters, 1991
- Mitochondrial diseases: Gene mapping and gene therapyCell, 1990
- Transplasma-membrane redox systems in growth and developmentBiochimica et Biophysica Acta (BBA) - Reviews on Bioenergetics, 1985
- NADH oxidation in liver and fat cell plasma membranesFEBS Letters, 1976
- Aging: A Theory Based on Free Radical and Radiation ChemistryJournal of Gerontology, 1956