Gene Review:
PHO80 - Cyclin, interacts with cyclin-dependent...
Saccharomyces cerevisiae S288c
Synonyms:
AGS3, TUP7, VAC5
- Negative regulators of the PHO system of Saccharomyces cerevisiae: characterization of PHO80 and PHO85. Uesono, Y., Tokai, M., Tanaka, K., Tohe, A. Mol. Gen. Genet. (1992)
- Nucleosome disruption at the yeast PHO5 promoter upon PHO5 induction occurs in the absence of DNA replication. Schmid, A., Fascher, K.D., Hörz, W. Cell (1992)
- The receptor Msn5 exports the phosphorylated transcription factor Pho4 out of the nucleus. Kaffman, A., Rank, N.M., O'Neill, E.M., Huang, L.S., O'Shea, E.K. Nature (1998)
- Phosphorylation of the transcription factor PHO4 by a cyclin-CDK complex, PHO80-PHO85. Kaffman, A., Herskowitz, I., Tjian, R., O'Shea, E.K. Science (1994)
- Absence of Gcn5 HAT activity defines a novel state in the opening of chromatin at the PHO5 promoter in yeast. Gregory, P.D., Schmid, A., Zavari, M., Lui, L., Berger, S.L., Hörz, W. Mol. Cell (1998)
- Regulation of G0 entry by the Pho80-Pho85 cyclin-CDK complex. Wanke, V., Pedruzzi, I., Cameroni, E., Dubouloz, F., De Virgilio, C. EMBO J. (2005)
- Regulation of repressible acid phosphatase gene transcription in Saccharomyces cerevisiae. Lemire, J.M., Willcocks, T., Halvorson, H.O., Bostian, K.A. Mol. Cell. Biol. (1985)
- The Pho80-like cyclin of Aspergillus nidulans regulates development independently of its role in phosphate acquisition. Wu, D., Dou, X., Hashmi, S.B., Osmani, S.A. J. Biol. Chem. (2004)
- Cloning and sequencing of the PHO80 gene and CEN15 of Saccharomyces cerevisiae. Toh-e, A., Shimauchi, T. Yeast (1986)
- Function of the PHO regulatory genes for repressible acid phosphatase synthesis in Saccharomyces cerevisiae. Yoshida, K., Ogawa, N., Oshima, Y. Mol. Gen. Genet. (1989)
- A truncated form of the Pho80 cyclin redirects the Pho85 kinase to disrupt vacuole inheritance in S. cerevisiae. Nicolson, T.A., Weisman, L.S., Payne, G.S., Wickner, W.T. J. Cell Biol. (1995)
- Influence of cytosolic AGS3 on receptor--G protein coupling. Ma, H., Peterson, Y.K., Bernard, M.L., Lanier, S.M., Graber, S.G. Biochemistry (2003)
- Mutations in the pho80 gene confer permeability to 5'-mononucleotides in Saccharomyces cerevisiae. Bisson, L.F., Thorner, J. Genetics (1982)
- Possible cross-regulation of phosphate and sulfate metabolism in Saccharomyces cerevisiae. O'Connell, K.F., Baker, R.E. Genetics (1992)
- Exogenous dTMP utilization by a novel tup mutant of Saccharomyces cerevisiae. Bisson, L.F., Thorner, J. J. Bacteriol. (1982)
- Isolation of a Saccharomyces cerevisiae mutant strain deficient in deoxycytidylate deaminase activity and partial characterization of the enzyme. McIntosh, E.M., Haynes, R.H. J. Bacteriol. (1984)
- AGS3 inhibits GDP dissociation from galpha subunits of the Gi family and rhodopsin-dependent activation of transducin. Natochin, M., Lester, B., Peterson, Y.K., Bernard, M.L., Lanier, S.M., Artemyev, N.O. J. Biol. Chem. (2000)
- Functional analysis of the cyclin-dependent kinase inhibitor Pho81 identifies a novel inhibitory domain. Huang, S., Jeffery, D.A., Anthony, M.D., O'Shea, E.K. Mol. Cell. Biol. (2001)
- Regulation of the Pcl7-Pho85 cyclin-cdk complex by Pho81. Lee, M., O'Regan, S., Moreau, J.L., Johnson, A.L., Johnston, L.H., Goding, C.R. Mol. Microbiol. (2000)
- Regulation by phosphorylation of Pho81p, a cyclin-dependent kinase inhibitor in Saccharomyces cerevisiae. Knight, J.P., Daly, T.M., Bergman, L.W. Curr. Genet. (2004)
- Molecular and expression analysis of the negative regulators involved in the transcriptional regulation of acid phosphatase production in Saccharomyces cerevisiae. Madden, S.L., Johnson, D.L., Bergman, L.W. Mol. Cell. Biol. (1990)
- A small protein (Ags1p) and the Pho80p-Pho85p kinase complex contribute to aminoglycoside antibiotic resistance of the yeast Saccharomyces cerevisiae. Wickert, S., Finck, M., Herz, B., Ernst, J.F. J. Bacteriol. (1998)
- Function of hybrid human-yeast cyclin-dependent kinases in Saccharomyces cerevisiae. Bitter, G.A. Mol. Gen. Genet. (1998)
- Molecular analysis of the PHO81 gene of Saccharomyces cerevisiae. Creasy, C.L., Madden, S.L., Bergman, L.W. Nucleic Acids Res. (1993)
- Reciprocal mitotic recombination is the predominant mechanism for the loss of a heterozygous gene in Saccharomyces cerevisiae. Acuña, G., Würgler, F.E., Sengstag, C. Environ. Mol. Mutagen. (1994)
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