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Overexpression of Mn-containing superoxide dismutase in transgenic Drosophila melanogaster
R J Mockett1, W C Orr, J J Rahmandar
1Department of Biological Sciences, Southern Methodist University, Dallas, Texas 75275, USA.
Abstract:
The general objective of this study was to examine the role of mitochondria in the aging process. Two alternative hypotheses were tested: (i) that overexpression of Mn superoxide dismutase (Mn SOD) in the mitochondria of Drosophila melanogaster would slow the accrual of oxidative damage and prolong survival or (ii) that there is an evolved optimum level of superoxide anion radical, such that overexpression of Mn SOD would have deleterious or neutral effects. Microinjection and mobilization of a transgene, which contained a 9-kb genomic sequence encoding Mn SOD, produced 15 experimental lines overexpressing Mn SOD by 5-116% relative to the parental y w strain. Comparisons between these lines and control lines containing inserted vector sequences alone indicated that the mean longevity of the experimental lines was decreased by 4-5% relative to controls. There were no compensatory changes in the metabolic rate, level of physical activity, or the levels of other antioxidants, namely Cu-Zn SOD, catalase, and glutathione. There were no differences between groups in rates of mitochondrial hydrogen peroxide release, protein oxidative damage, or resistance to 100% oxygen or starvation conditions. The experimental lines had a marginally increased resistance to moderate heat stress. These results are consistent with the existence of an optimum level of Mn SOD activity which minimizes oxidative stress. The naturally evolved level of Mn SOD activity in Drosophila appears to be near the optimum required under normal conditions, although the optimum may be shifted to a higher level under more stressful conditions.
Insights
Overexpressing manganese superoxide dismutase (Mn SOD) in fruit flies did not extend lifespan, suggesting an optimal level of this antioxidant exists for aging.
Area of Science:
- Aging research
- Mitochondrial biology
- Oxidative stress
Background:
- Mitochondria play a crucial role in cellular aging.
- Oxidative damage from reactive oxygen species is a key factor in aging.
- Manganese superoxide dismutase (Mn SOD) is a critical mitochondrial antioxidant enzyme.
Purpose of the Study:
- To investigate the role of mitochondria in aging.
- To test if overexpressing Mn SOD in Drosophila melanogaster affects oxidative damage and lifespan.
- To determine if there is an evolved optimum level of superoxide anion radical.
Main Methods:
- Generated transgenic Drosophila melanogaster overexpressing Mn SOD.
- Compared lifespan and physiological parameters between experimental and control lines.
- Assessed oxidative damage, antioxidant levels, and stress resistance.
Main Results:
- Overexpression of Mn SOD decreased mean longevity by 4-5%.
- No significant changes were observed in metabolic rate, physical activity, or other antioxidant levels.
- Mitochondrial hydrogen peroxide release and protein oxidative damage remained unchanged.
- Marginally increased resistance to moderate heat stress was noted.
Conclusions:
- Results support the hypothesis of an evolved optimum level for Mn SOD activity.
- Naturally evolved Mn SOD levels in Drosophila appear optimized for normal conditions.
- Higher Mn SOD activity might be beneficial under specific stressful conditions.