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Science 16 May 2003:
Vol. 300. no. 5622, pp. 1142 - 1145
DOI: 10.1126/science.1083701

Reports

Regulation of Aging and Age-Related Disease by DAF-16 and Heat-Shock Factor

Ao-Lin Hsu, Coleen T. Murphy, Cynthia Kenyon*

The Caenorhabditis elegans transcription factor HSF-1, which regulates the heat-shock response, also influences aging. Reducing hsf-1 activity accelerates tissue aging and shortens life-span, and we show that hsf-1 overexpression extends lifespan. We find that HSF-1, like the transcription factor DAF-16, is required for daf-2–insulin/IGF-1 receptor mutations to extend life-span. Our findings suggest this is because HSF-1 and DAF-16 together activate expression of specific genes, including genes encoding small heat-shock proteins, which in turn promote longevity. The small heat-shock proteins also delay the onset of polyglutamine-expansion protein aggregation, suggesting that these proteins couple the normal aging process to this type of age-related disease.

Department of Biochemistry and Biophysics, University of California, San Francisco, CA 94143–2200, USA.

* To whom correspondence should be addressed. E-mail: ckenyon{at}biochem.ucsf.edu

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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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J. R. Speakman (2005)
J. Exp. Biol. 208, 1717-1730
   Abstract »    Full Text »    PDF »
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J. Halaschek-Wiener, J. S. Khattra, S. McKay, A. Pouzyrev, J. M. Stott, G. S. Yang, R. A. Holt, S. J.M. Jones, M. A. Marra, A. R. Brooks-Wilson, et al. (2005)
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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G. Morrow, S. Battistini, P. Zhang, and R. M. Tanguay (2004)
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »
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   Abstract »    Full Text »    PDF »
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E. V. Kuzmin, O. V. Karpova, T. E. Elthon, and K. J. Newton (2004)
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   Abstract »    Full Text »    PDF »
Lack of Peroxisomal Catalase Causes a Progeric Phenotype in Caenorhabditis elegans.
O. I. Petriv and R. A. Rachubinski (2004)
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   Abstract »    Full Text »    PDF »
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E. A. A. Nollen, S. M. Garcia, G. van Haaften, S. Kim, A. Chavez, R. I. Morimoto, and R. H. A. Plasterk (2004)
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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   Abstract »    Full Text »    PDF »
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