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Published on: July 22, 2013
The plasma membrane redox system: a candidate source of aging-related oxidative stress
1Department of Genetics, University of Cambridge, Downing Street, Cambridge, CB2 3EH UK.
Abstract:
The plasma membrane redox system (PMRS) is an electron transport chain in the plasma membrane that transfers electrons from either intra- or extracellular donors to extracellular acceptors. Unlike the superoxide-generating NADPH oxidase of phagocytes and the homologous (but much less active) enzymes found in some other cells, the PMRS is still incompletely characterised at the molecular level. Much is known, however, concerning its function and affinity for both physiological and non-physiological substrates. A role for it in aging, the 'reductive hotspot hypothesis' (RHH), was proposed in 1998 as part of an explanation for the apparently indefinite survival in vivo of cells that have entirely lost mitochondrial respiratory capacity as a result of the accumulation of mitochondrial mutations. Stimulation of the PMRS might allow the cell to maintain redox homeostasis even while continuing to operate the Krebs cycle, which may be advantageous in many ways. However, the PMRS may, like the mitochondrial respiratory chain, be prone to generate superoxide when thus dysregulated - and in this case superoxide would be generated outside the cell, where antioxidant defences are more limited than inside the cell and where much highly oxidisable material is present. Cascades of peroxidation chain reactions initiated by this process may greatly amplify the oxidative stress on the organism that is caused by rare mitochondrially mutant cells. Since such cells increase in abundance with aging (though remaining rare), this is an economical hypothesis to explain the rise in oxidative stress seen in (and generally believed to contribute substantially to) mammalian aging. In an extension of previously published accounts of RHH, I propose here that the lysosomal toxicity of oxidised cholesterol derivatives (oxysterols) may contribute to the toxicity of mitochondrial mutations by affecting lysosomal function in many cell types in the same way as they have been proposed to do in arterial macrophages.
Insights
The plasma membrane redox system (PMRS) may explain aging-related oxidative stress. Dysregulation of PMRS can generate damaging superoxide, amplifying cellular damage, especially when combined with mitochondrial mutations and lysosomal oxysterol toxicity.
Area of Science:
- Cellular Biology
- Biochemistry
- Aging Research
Background:
- The plasma membrane redox system (PMRS) is an incompletely characterized electron transport chain.
- Its role in cellular redox homeostasis and aging has been previously hypothesized (Reductive Hotspot Hypothesis, RHH).
- Mitochondrial mutations accumulate with age, impairing respiratory capacity.
Purpose of the Study:
- To extend the Reductive Hotspot Hypothesis (RHH) regarding the plasma membrane redox system's role in aging.
- To propose a mechanism linking mitochondrial mutations, PMRS dysregulation, and oxidative stress.
- To investigate the contribution of lysosomal oxysterol toxicity to mitochondrial mutation-induced cellular damage.
Main Methods:
- The study is primarily theoretical, extending existing hypotheses.
- It involves analyzing the proposed biochemical pathways of PMRS dysregulation.
- It integrates known effects of mitochondrial mutations and oxysterols on cellular function.
Main Results:
- Dysregulated PMRS can generate extracellular superoxide, overwhelming limited antioxidant defenses.
- This extracellular superoxide can initiate peroxidation cascades, amplifying oxidative stress.
- Lysosomal toxicity of oxidized cholesterol derivatives (oxysterols) may exacerbate mitochondrial mutation effects on lysosomes.
Conclusions:
- The PMRS, when dysregulated, can significantly contribute to organism-wide oxidative stress associated with aging.
- This mechanism provides an economical explanation for the age-related increase in oxidative stress.
- Oxysterol-induced lysosomal dysfunction may be a key factor in the cellular toxicity of mitochondrial mutations.
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