Combining metabolomics and experimental evolution reveals key mechanisms underlying longevity differences in laboratory evolved Drosophila melanogaster populations
Combining metabolomics and experimental evolution reveals key mechanisms underlying longevity differences in laboratory evolved Drosophila melanogaster populations
Abstract Experimental evolution with Drosophila melanogaster has been used extensively for decades to study aging and longevity. In recent years, the addition of DNA and RNA sequencing to this framework has allowed researchers to leverage the statistical power inherent to experimental evolution study the genetic basis of longevity itself. Here we incorporated metabolomic data into to this framework to generate even deeper insights into the physiological and genetic mechanisms underlying longevity differences in three groups of experimentally evolved D. melanogaster populations with different aging and longevity patterns. Our metabolomic analysis found that aging alters mitochondrial metabolism through increased consumption of NAD+ and increased usage of the TCA cycle. Combining our genomic and metabolomic data produced a list of biologically relevant candidate genes. Among these candidates, we found significant enrichment for genes and pathways associated with neurological development and function, and carbohydrate metabolism. While we do not explicitly find enrichment for aging canonical genes, neurological dysregulation and carbohydrate metabolism are both known to be associated with accelerated aging and reduced longevity. Taken together, our results provide very plausible genetic mechanisms for what might be driving longevity differences in this experimental system. More broadly, our findings demonstrate the value of combining multiple types of omic data with experimental evolution when attempting to dissect mechanisms underlying complex and highly polygenic traits like aging.
Marshall Andrea G.、Barter Thomas T.、Hinton Antentor Jr.、Beasley Heather K.、Phillips Mark A.、Arnold Kenneth R.、Vue Zer、McReynolds Melanie R.、Morton Derrick J.、Lopez Edgar Garza
Department of Molecular Physiology and Biophysics, Vanderbilt UniversityDepartment of Ecology and Evolutionary Biology, University of CaliforniaDepartment of Molecular Physiology and Biophysics, Vanderbilt University||Hinton and Garza Lopez Family Consulting CompanyDepartment of Molecular Physiology and Biophysics, Vanderbilt UniversityDepartment of Integrative Biology, Oregon State UniversityDepartment of Ecology and Evolutionary Biology, University of CaliforniaDepartment of Molecular Physiology and Biophysics, Vanderbilt UniversityDepartment of Biochemistry and Molecular Biology, Huck Institute of the Life Sciences, Pennsylvania State UniversityDepartment of Biological Sciences, University of Southern CaliforniaHinton and Garza Lopez Family Consulting Company
生物科学研究方法、生物科学研究技术遗传学生物化学
metabolomicsagingevolve and resequenceDrosophila melanogasterexperimental evolutionlife history traitsgenomics
Marshall Andrea G.,Barter Thomas T.,Hinton Antentor Jr.,Beasley Heather K.,Phillips Mark A.,Arnold Kenneth R.,Vue Zer,McReynolds Melanie R.,Morton Derrick J.,Lopez Edgar Garza.Combining metabolomics and experimental evolution reveals key mechanisms underlying longevity differences in laboratory evolved Drosophila melanogaster populations[EB/OL].(2025-03-28)[2025-05-16].https://www.biorxiv.org/content/10.1101/2021.10.16.464668.点此复制
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