This application focuses on homeostatic coupling of intracellular copper (Cu) and iron (Fe) levels to gene expression in the yeast Saccharomyces cerevisiae. Metalloregulation of Cu uptake genes is controlled by the Mac1 transcriptional activator. Metalloregulation of Fe uptake genes is controlled by two related activators, Aft1 and Aft2. These three factors are transcriptional activators in metal-deficient cells, but specifically inhibited in metal-replete cells. The major objectives are to elucidate the mechanisms of Cu ion sensing by Mac1 and Fe ion sensing by Aft1 and Aft2. Many interconnections exist between Fe and Cu homeostasis in yeast. In the past grant cycle we provided evidence suggestive that Mac1 senses Cu ions within the yeast nucleus through direct binding of Cu(I) ions by Mac1. Cu(I) binding appears to induce an intramolecular interaction between the N-terminal DNA binding domain and C-terminal transactivation domain. Studies are proposed to verify direct sensing of Cu and to map the intramolecular interface that inhibits both DNA binding and transactivation. An important goal is to identify other yeast proteins important in either Cu shuttling to the nucleus or Cu inhibition of Mac1. Fe-homeostasis in yeast is regulated by Aft1 and Aft2. The mechanism of Fe inhibition of Aft1 and Aft2 function is unknown. The significance of these studies is that S. cerevisiae is the best model eukaryotic system to understand the mechanism of Fe sensing by a transcription regulator. We propose to determine whether Fe sensing occurs through direct Fe binding, Fe-mediated post-translational modification or through another protein? Aft1 and Aft2 exhibit limited functional redundancy in yeast. We propose to determine whether each exhibits a distinct physiological function. Mac1 and Aftl/Aft2 are excellent model eukaryotic systems to study nutritional control of gone expression. Information gleaned on the mechanism of Cu- and Fe-regulation may be applicable to other species.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Project (R01)
Project #
5R01CA061286-14
Application #
7159374
Study Section
Metallobiochemistry Study Section (BMT)
Program Officer
Poland, Alan P
Project Start
1993-12-15
Project End
2008-06-14
Budget Start
2006-12-01
Budget End
2008-06-14
Support Year
14
Fiscal Year
2007
Total Cost
$212,629
Indirect Cost
Name
University of Utah
Department
Internal Medicine/Medicine
Type
Schools of Medicine
DUNS #
009095365
City
Salt Lake City
State
UT
Country
United States
Zip Code
84112
Jouihan, Hani A; Cobine, Paul A; Cooksey, Robert C et al. (2008) Iron-mediated inhibition of mitochondrial manganese uptake mediates mitochondrial dysfunction in a mouse model of hemochromatosis. Mol Med 14:98-108
Bird, Amanda J (2008) Metallosensors, the ups and downs of gene regulation. Adv Microb Physiol 53:231-67
Leary, Scot C; Cobine, Paul A; Kaufman, Brett A et al. (2007) The human cytochrome c oxidase assembly factors SCO1 and SCO2 have regulatory roles in the maintenance of cellular copper homeostasis. Cell Metab 5:9-20
Yang, Mei; Cobine, Paul A; Molik, Sabine et al. (2006) The effects of mitochondrial iron homeostasis on cofactor specificity of superoxide dismutase 2. EMBO J 25:1775-83
Ojeda, Luis; Keller, Greg; Muhlenhoff, Ulrich et al. (2006) Role of glutaredoxin-3 and glutaredoxin-4 in the iron regulation of the Aft1 transcriptional activator in Saccharomyces cerevisiae. J Biol Chem 281:17661-9
Rutherford, Julian C; Ojeda, Luis; Balk, Janneke et al. (2005) Activation of the iron regulon by the yeast Aft1/Aft2 transcription factors depends on mitochondrial but not cytosolic iron-sulfur protein biogenesis. J Biol Chem 280:10135-40
Keller, Greg; Bird, Amanda; Winge, Dennis R (2005) Independent metalloregulation of Ace1 and Mac1 in Saccharomyces cerevisiae. Eukaryot Cell 4:1863-71
Chen, Opal S; Crisp, Robert J; Valachovic, Martin et al. (2004) Transcription of the yeast iron regulon does not respond directly to iron but rather to iron-sulfur cluster biosynthesis. J Biol Chem 279:29513-8
Rutherford, Julian C; Bird, Amanda J (2004) Metal-responsive transcription factors that regulate iron, zinc, and copper homeostasis in eukaryotic cells. Eukaryot Cell 3:1-13
Rutherford, Julian C; Jaron, Shulamit; Winge, Dennis R (2003) Aft1p and Aft2p mediate iron-responsive gene expression in yeast through related promoter elements. J Biol Chem 278:27636-43

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