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Barea F and Bonatto D  (2009) Aging defined by a chronologic-replicative protein network in Saccharomyces cerevisiae: an interactome analysis. Mech Ageing Dev 130(7):444-60

Abstract: Aging is a multifactorial condition that results in the loss of an organism's fitness over time. Different theories have been formulated to explain the mechanisms of aging, but a synthesis of these theories has not been possible until now. In addition, the increase in molecular data gathered by proteomics projects utilizing different organisms has permitted a better picture of proteins that function in aging. In this sense, the yeast Saccharomyces cerevisiae is a biological model for aging, and it shows two distinct aging states: a replicative state termed the replicative lifespan (RLS) and a quiescent state known as the chronological lifespan (CLS). Interestingly, both RLS and CLS appear to share common groups of proteins, but a combined model of both aging mechanisms has not been defined. Thus, by applying systems biology tools that allow mining of the yeast proteins associated with aging, it was possible to obtain an interactome network in which both RLS and CLS are represented. In addition, four subgraphs comprising ubiquitin-dependent proteasome/regulation of cell growth, nucleic acid metabolism, carbohydrate metabolism/RNA metabolism, and carbohydrate-organic acid-amino acid/DNA metabolism were found within the interactome, defining a new model of aging for yeast termed the chronologic-replicative protein network (CRPN).

Status: Published Type: Journal Article PubMed ID: 19433103

Topics addressed in this paper

Number of different genes curated to this paper: 33

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Topics Topics not linked to Genes Genes linked to topics (#1 - 10 )
ABF1 BMH1 BMH2 CCR4 DAL80 GAC1 GAT1 GIP2 GLN3 GPH1
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Topics Genes linked to topics (#11 - 20 )
GZF3 HHF1 KIN28 NPR1 ORC1 PFK1 REG1 REG2 RPN12 SAM1
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Topics Genes linked to topics (#21 - 30 )
SEN1 SFG1 SLM2 SSU72 SUA7 SWD2 TFB1 TOR1 TOR2 TPK1
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Topics Genes linked to topics (#31 - 33 )
UBP6 URE2 YPI1
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