Down-Regulating Sphingolipid Synthesis Increases Yeast Lifespan

被引:83
作者
Huang, Xinhe [1 ,2 ]
Liu, Jun [1 ,2 ,3 ]
Dickson, Robert C. [1 ,2 ]
机构
[1] Univ Kentucky, Coll Med, Dept Mol & Cellular Biochem, Lexington, KY 40536 USA
[2] Univ Kentucky, Coll Med, Lucille Markey Canc Ctr, Lexington, KY USA
[3] Sichuan Univ, Coll Life Sci, Minist Educ, Key Lab Bioresources & Ecoenvironm, Chengdu 610064, Peoples R China
基金
美国国家卫生研究院;
关键词
PROTEIN-KINASE-A; LONG-CHAIN BASES; SACCHAROMYCES-CEREVISIAE; BUDDING YEAST; TOR PATHWAY; CALORIC RESTRICTION; STRESS RESISTANCE; ANTIAGING DRUGS; HEAT-STRESS; AGC KINASES;
D O I
10.1371/journal.pgen.1002493
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Knowledge of the mechanisms for regulating lifespan is advancing rapidly, but lifespan is a complex phenotype and new features are likely to be identified. Here we reveal a novel approach for regulating lifespan. Using a genetic or a pharmacological strategy to lower the rate of sphingolipid synthesis, we show that Saccharomyces cerevisiae cells live longer. The longer lifespan is due in part to a reduction in Sch9 protein kinase activity and a consequent reduction in chromosomal mutations and rearrangements and increased stress resistance. Longer lifespan also arises in ways that are independent of Sch9 or caloric restriction, and we speculate on ways that sphingolipids might mediate these aspects of increased lifespan. Sch9 and its mammalian homolog S6 kinase work downstream of the target of rapamycin, TOR1, protein kinase, and play evolutionarily conserved roles in regulating lifespan. Our data establish Sch9 as a focal point for regulating lifespan by integrating nutrient signals from TOR1 with growth and stress signals from sphingolipids. Sphingolipids are found in all eukaryotes and our results suggest that pharmacological down-regulation of one or more sphingolipids may provide a means to reduce age-related diseases and increase lifespan in other eukaryotes.
引用
收藏
页数:16
相关论文
共 76 条
  • [1] Level of M(IP)2C sphingolipid affects plant defensin sensitivity, oxidative stress resistance and chronological life-span in yeast
    Aerts, AM
    François, IEJA
    Bammens, L
    Cammue, BPA
    Smets, B
    Winderickx, J
    Accardo, S
    De Vos, DE
    Thevissen, K
    [J]. FEBS LETTERS, 2006, 580 (07) : 1903 - 1907
  • [2] Metabolic reprogramming, caloric restriction and aging
    Anderson, Rozalyn M.
    Weindruch, Richard
    [J]. TRENDS IN ENDOCRINOLOGY AND METABOLISM, 2010, 21 (03) : 134 - 141
  • [3] Role for Sit4p-dependent mitochondrial dysfunction in mediating the shortened chronological lifespan and oxidative stress sensitivity of Isc1p-deficient cells
    Barbosa, Antonio Daniel
    Osorio, Hugo
    Sims, Kellie J.
    Almeida, Teresa
    Alves, Mariana
    Bielawski, Jacek
    Amorim, Maria Amelia
    Moradas-Ferreira, Pedro
    Hannun, Yusuf A.
    Costa, Vitor
    [J]. MOLECULAR MICROBIOLOGY, 2011, 81 (02) : 515 - 527
  • [4] Mechanisms of Life Span Extension by Rapamycin in the Fruit Fly Drosophila melanogaster
    Bjedov, Ivana
    Toivonen, Janne M.
    Kerr, Fiona
    Slack, Cathy
    Jacobson, Jake
    Foley, Andrea
    Partridge, Linda
    [J]. CELL METABOLISM, 2010, 11 (01) : 35 - 46
  • [5] Validation of anti-aging drugs by treating age-related diseases
    Blagosklonny, Mikhail V.
    [J]. AGING-US, 2009, 1 (03): : 281 - 288
  • [6] Membranes in Balance: Mechanisms of Sphingolipid Homeostasis
    Breslow, David K.
    Weissman, Jonathan S.
    [J]. MOLECULAR CELL, 2010, 40 (02) : 267 - 279
  • [7] CLONING AND CHARACTERIZATION OF LCB1, A SACCHAROMYCES GENE REQUIRED FOR BIOSYNTHESIS OF THE LONG-CHAIN BASE COMPONENT OF SPHINGOLIPIDS
    BUEDE, R
    RINKERSCHAFFER, C
    PINTO, WJ
    LESTER, RL
    DICKSON, RC
    [J]. JOURNAL OF BACTERIOLOGY, 1991, 173 (14) : 4325 - 4332
  • [8] A genomic analysis of chronological longevity factors in budding yeast
    Burtner, Christopher R.
    Murakami, Christopher J.
    Olsen, Brady
    Kennedy, Brian K.
    Kaeberlein, Matt
    [J]. CELL CYCLE, 2011, 10 (09) : 1385 - 1396
  • [9] A molecular mechanism of chronological aging in yeast
    Burtner, Christopher R.
    Murakami, Christopher J.
    Kennedy, Brian K.
    Kaeberlein, Matt
    [J]. CELL CYCLE, 2009, 8 (08) : 1256 - 1270
  • [10] Gross chromosomal rearrangements in Saccharomyces cerevisiae replication and recombination defective mutants
    Chen, C
    Kolodner, RD
    [J]. NATURE GENETICS, 1999, 23 (01) : 81 - 85