How the rate of aging is determined is a fundamental problem in biology. Recently, tremendous progress has been made by identifying and characterizing genes that influence the aging of nematode C. elegans. This organism has a very rapid rate of aging and lives just a little over two weeks, making it very easy for investigators to identify and characterize mutations affecting aging. Studies in a number of labs, including ours, have shown that a pathway that is similar to the vertebrate insulin and IGF-1 signaling pathways controls the rate of aging in C. elegans. When a homolog of the insulin/IGF-1 receptor, DAF-2, is partially disabled, the animals live twice as long as normal, remaining active and healthy when normal worms are decrepit and still (nursing-home appearance). Since many biological processes in C. elegans have been shown to be conserved with higher organisms, studies of this pathway may ultimately allow us to devise strategies for improving the quality of old age in humans. My lab originally discovered that daf-2 mutations increase lifespan. During this funding period, we have shown that DAF-2 acts in signaling cells, which, in turn, must produce a second signal that directly controls the rate of aging. In addition, we have identified and cloned a transcription factor whose activity is required to extend the lifespans of daf-2 mutants. Here we propose to learn which cells in the animal require the activity of this transcription factor, and whether its activity can be sufficient to extend the lifespans of otherwise normal animals. Many mysteries remain. How DAF-2 influences the production of the secondary signal(s), the identity of this signal(s), the signal transduction pathway that must operate in target tissues, and the mechanism by which this pathway controls aging are all unknown. To find the missing genes, we carried out a large-scale mutant screen and isolated twenty new long- lived mutants. During this funding period, we will begin to learn what genes these mutations affect, and how these genes influence the aging process. We will also assemble a set of fluorescent molecular biomarkers of aging that can be observed in living animals. These markers will revolutionize the study of aging because they will allow us to describe the aging process more accurately in normal and long- lived animals, to identify new aging mutants extremely rapidly, and also to analyze mutants with accelerated aging. Understanding this pathway in detail will ultimately answer the two most important questions in the aging field: how the aging process itself takes place, and how it can be regulated by endocrine signaling.

Agency
National Institute of Health (NIH)
Institute
National Institute on Aging (NIA)
Type
Research Project (R01)
Project #
5R01AG011816-10
Application #
6629800
Study Section
Special Emphasis Panel (ZAG1-PKN-2 (J1))
Program Officer
Mccormick, Anna M
Project Start
1994-04-01
Project End
2004-03-31
Budget Start
2003-04-01
Budget End
2004-03-31
Support Year
10
Fiscal Year
2003
Total Cost
$338,284
Indirect Cost
Name
University of California San Francisco
Department
Biochemistry
Type
Schools of Medicine
DUNS #
094878337
City
San Francisco
State
CA
Country
United States
Zip Code
94143
Vohra, Mihir; Lemieux, George A; Lin, Lin et al. (2018) Kynurenic acid accumulation underlies learning and memory impairment associated with aging. Genes Dev 32:14-19
Chisnell, Peter; Parenteau, T Richard; Tank, Elizabeth et al. (2018) The mTOR Target S6 Kinase Arrests Development in Caenorhabditis elegans When the Heat-Shock Transcription Factor Is Impaired. Genetics 210:999-1009
Podshivalova, Katie; Kerr, Rex A; Kenyon, Cynthia (2017) How a Mutation that Slows Aging Can Also Disproportionately Extend End-of-Life Decrepitude. Cell Rep 19:441-450
Bohnert, K Adam; Kenyon, Cynthia (2017) A lysosomal switch triggers proteostasis renewal in the immortal C. elegans germ lineage. Nature 551:629-633
Roux, Antoine E; Langhans, Kelley; Huynh, Walter et al. (2016) Reversible Age-Related Phenotypes Induced during Larval Quiescence in C. elegans. Cell Metab 23:1113-1126
Heinrichs, Jessica; Bastian, David; Veerapathran, Anandharaman et al. (2016) Regulatory T-Cell Therapy for Graft-versus-host Disease. J Immunol Res Ther 1:1-14
Narayan, Vikram; Ly, Tony; Pourkarimi, Ehsan et al. (2016) Deep Proteome Analysis Identifies Age-Related Processes in C. elegans. Cell Syst 3:144-159
Judy, Meredith E; Nakamura, Ayumi; Huang, Anne et al. (2013) A shift to organismal stress resistance in programmed cell death mutants. PLoS Genet 9:e1003714
Gaglia, Marta M; Jeong, Dae-Eun; Ryu, Eun-A et al. (2012) Genes that act downstream of sensory neurons to influence longevity, dauer formation, and pathogen responses in Caenorhabditis elegans. PLoS Genet 8:e1003133
Tank, Elizabeth M H; Rodgers, Kasey E; Kenyon, Cynthia (2011) Spontaneous age-related neurite branching in Caenorhabditis elegans. J Neurosci 31:9279-88

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