Genetic alteration of normal aging processes is responsible for extended longevity in Drosophila
- 1 January 1990
- journal article
- research article
- Published by Wiley in Developmental Genetics
- Vol. 11 (2), 141-148
- https://doi.org/10.1002/dvg.1020110204
Abstract
The first step in a genetic analysis of aging is to identify and characterize the genetic mutants and their controls that will be used. Such mutants or strains are initially identified by their effect on the life span. Yet many genetic interventions are known to have some effect on the life span without necessarily affecting the aging process. It is therefore necessary to prove that one is actually dealing with an aging mutant before one draws strong inferences from the data. Casarett's rules provide an operational test for doing so, relying as they do on the comparison of aging biomarkers in the experimental and reference strains. We show that our previously described genetically based long‐lived NDC‐L strain and its normal‐lived NDC‐R control strain differ only in the chronological age of expression of two behavioral and three physiological functional age biomarkers. They do not differ in the sequence or the physiological age of expression of these biomarkers. These two strains comply with the Casarett rules and thereby comprise a valid tool with which to conduct a comparative genetic analysis of aging. The implications of the available data are discussed, including the possibility that aging in these strains of Drosophila melanogaster may be the result of a multiphasic developmental process.This publication has 17 references indexed in Scilit:
- Patterns of amino acid incorporation in long-lived genetic strains of Drosophila melanogasterExperimental Gerontology, 1989
- Constitutional genetic markers of agingExperimental Gerontology, 1988
- Genetic analyses of aging processes inDrosophilaExperimental Aging Research, 1988
- Model Systems for the Genetic Analysis of Mechanisms of AgingJournal of Gerontology, 1988
- Metabolic rates in genetically based long lived strains of DrosophilaExperimental Gerontology, 1988
- Successful selection for increased longevity in Drosophila: Analysis of the survival data and presentation of a hypothesis on the genetic regulation of longevityExperimental Gerontology, 1987
- The effects of gene-environment interaction on the expression of longevityHeredity, 1985
- A mutation in Drosophila that appears to accelerate agingDevelopmental Genetics, 1983
- On the relationship between senescence and age-related changes in two wild-type strains of Drosophila melanogasterExperimental Gerontology, 1978
- Aging: A Theory Based on Free Radical and Radiation ChemistryJournal of Gerontology, 1956