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August 25, 2006Aging Cell237 citations

Progressive loss of SIRT1 with cell cycle withdrawal

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TSTsutomu SasakiKyoto UniversityBMBernhard MaierIndiana University HealthABAndrzej BartkeSouthern Illinois University School of Medicine

Key Points

  • Investigate the regulation and dynamics of SIRT1 protein and mRNA expression during cellular senescence, cell cycle withdrawal, and aging in human and murine systems.
  • Assessed SIRT1 protein and mRNA levels across serial passages in human lung fibroblasts (IMR90) and mouse embryonic fibroblasts (MEFs) from wild-type, accelerated aging (p44 Tg), and delayed aging (Igf-1r-/-) mice.
  • Evaluated SIRT1 recovery during spontaneous immortalization and measured correlations with senescence-activated beta-galactosidase (SA-betaGal) activity and proliferating cell nuclear antigen (PCNA) expression.
  • Quantified SIRT1 and PCNA levels across dividing (thymus, testis) and non-dividing (brain) tissues in young, old, accelerated-aging, and long-lived growth hormone receptor knockout mice.
  • SIRT1 protein, but not mRNA, declined progressively with serial passage in human and mouse fibroblasts, correlated negatively with SA-betaGal, and recovered following spontaneous immortalization.
  • SIRT1 levels showed a significant positive correlation with PCNA expression in vitro and in vivo.
  • Age-related SIRT1 decline occurred in proliferative tissues (thymus, testis) and accelerated-aging mice, but was absent in brain tissue and long-lived growth hormone receptor knockout mice.

Abstract

Sir2 is an NAD+-dependent deacetylase that regulates lifespan in yeast, worms and flies. The mammalian orthologs of Sir2 include SIRT1 in humans and mice. In this study, we analyzed the level of SIRT1 in human lung fibroblasts (IMR90) and mouse embryonic fibroblasts (MEFs) from mice with normal, accelerated, and delayed aging. SIRT1 protein, but not mRNA, decreased significantly with serial cell passage in both human and murine cells. Mouse SIRT1 decreased rapidly in prematurely senescent (p44 Tg) MEFs, remained high in MEFs with delayed senescence (Igf-1r-/-), and was inversely correlated with senescence-activated beta-galactosidase (SA-betaGal) activity. Reacquisition of mitotic capability following spontaneous immortalization of serially passaged wild-type MEFs restored the level of SIRT1 to that of early passage, highly proliferative MEFs. In mouse and human fibroblasts, we found a significant positive correlation between the levels of SIRT1 and proliferating cell nuclear antigen (PCNA), a DNA processing factor expressed during S-phase. In the animal, we found that SIRT1 decreased with age in tissues in which mitotic activity also declines, such as the thymus and testis, but not in tissues such as the brain in which there is little change in mitotic activity throughout life. Again, the decreases in SIRT1 were highly correlated with decreases in PCNA. Finally, loss of SIRT1 with age was accelerated in mice with accelerated aging but was not observed in long-lived growth hormone-receptor knockout mice. Thus, as mitotic activity ceases in mouse and human cells in the normal environment of the animal or in the culture dish, there is a concomitant decline in the level of SIRT1.

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Cite This Study

Sasaki et al. (2006) studied this question.

synapsesocial.com/papers/69ffcfdb2ff633f36577b26bhttps://doi.org/10.1111/j.1474-9726.2006.00235.x
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