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Transcriptional profiling of MnSOD-mediated lifespan extension in Drosophilareveals a species-general network of aging and metabolic genes
Christina Curtis, Gary N. Landis, Donna G. Folk, Nancy B. Wehr, Nicholas Hoe, Morris Waskar, Diana Abdueva, Dmitriy Skvortsov, Daniel Ford, Allan Luu, Ananth Badrinath, Rodney L. Levine, Timothy J. Bradley, Simon Tavaré, John Tower
Genome biology · 2007 · ▲ 143 citations
Mitochondrial dysfunction
Cellular senescence
Altered intercellular communication
Caloric restriction
Drosophila
C. elegans
Abstract
BACKGROUND: Several interventions increase lifespan in model organisms, including reduced insulin/insulin-like growth factor-like signaling (IIS), FOXO transcription factor activation, dietary restriction, and superoxide dismutase (SOD) over-expression. One question is whether these manipulations function through different mechanisms, or whether they intersect on common processes affecting aging. RESULTS: A doxycycline-regulated system was used to over-express manganese-SOD (MnSOD) in adult Drosophila, yielding increases in mean and maximal lifespan of 20%. Increased lifespan resulted from lowered initial mortality rate and required MnSOD over-expression in the adult. Transcriptional profiling indicated that the expression of specific genes was altered by MnSOD in a manner opposite to their pattern during normal aging, revealing a set of candidate biomarkers of aging enriched for carbohydrate metabolism and electron transport genes and suggesting a true delay in physiological aging, rather than a novel phenotype. Strikingly, cross-dataset comparisons indicated that the pattern of gene expression caused by MnSOD was similar to that observed in long-lived Caenorhabditis elegans insulin-like signaling mutants and to the xenobiotic stress response, thus exposing potential conserved longevity promoting genes and implicating detoxification in Drosophila longevity. CONCLUSION: The data suggest that MnSOD up-regulation and a retrograde signal of reactive oxygen species from the mitochondria normally function as an intermediate step in the extension of lifespan caused by reduced insulin-like signaling in various species. The results implicate a species-conserved net of coordinated genes that affect the rate of senescence(definition) by modulating energetic efficiency, purine biosynthesis, apoptotic pathways, endocrine signals, and the detoxification and excretion of metabolites.
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- 10.1186/gb-2007-8-12-r262
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- 2026-06-13 MST
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APA
Curtis, C., Landis, G.N., Folk, D.G., Wehr, N.B., Hoe, N., Waskar, M., Abdueva, D., Skvortsov, D., Ford, D., Luu, A., Badrinath, A., Levine, R.L., Bradley, T.J., Tavaré, S., & Tower, J. (2007). Transcriptional profiling of MnSOD-mediated lifespan extension in Drosophilareveals a species-general network of aging and metabolic genes. <em>Genome biology</em>. https://doi.org/10.1186/gb-2007-8-12-r262
Vancouver
Curtis C, Landis GN, Folk DG, Wehr NB, Hoe N, Waskar M, et al. Transcriptional profiling of MnSOD-mediated lifespan extension in Drosophilareveals a species-general network of aging and metabolic genes. Genome biology. 2007. doi:10.1186/gb-2007-8-12-r262.
BibTeX
@article{christina2007Transc,
title = {Transcriptional profiling of MnSOD-mediated lifespan extension in Drosophilareveals a species-general network of aging and metabolic genes},
author = {Christina Curtis and Gary N. Landis and Donna G. Folk and Nancy B. Wehr and Nicholas Hoe and Morris Waskar and Diana Abdueva and Dmitriy Skvortsov and Daniel Ford and Allan Luu and Ananth Badrinath and Rodney L. Levine and Timothy J. Bradley and Simon Tavaré and John Tower},
journal = {Genome biology},
year = {2007},
doi = {10.1186/gb-2007-8-12-r262},
}
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