GAL3/YDR009W Literature Guide Help

Other names published for GAL3: transcriptional regulator GAL3, YDR009W

GAL3 - Mutants/Phenotypes (44)

ReferenceOther Genes Addressed
Ang K, et al.  (2012) Mediator acts upstream of the transcriptional activator gal4. PLoS Biol 10(3):e1001290
Hsu C, et al.  (2012) Stochastic signalling rewires the interaction map of a multiple feedback network during yeast evolution. Nat Commun 3():682
Lavy T, et al.  (2012) The Gal3p transducer of the GAL regulon interacts with the Gal80p repressor in its ligand-induced closed conformation. Genes Dev 26(3):294-303
Venturelli OS, et al.  (2012) Synergistic dual positive feedback loops established by molecular sequestration generate robust bimodal response. Proc Natl Acad Sci U S A 109(48):E3324-33
Cubillos FA, et al.  (2011) Assessing the complex architecture of polygenic traits in diverged yeast populations. Mol Ecol 20(7):1401-13
Phenix H, et al.  (2011) Quantitative epistasis analysis and pathway inference from genetic interaction data. PLoS Comput Biol 7(5):e1002048
Warringer J, et al.  (2011) Trait variation in yeast is defined by population history. PLoS Genet 7(6):e1002111
Fendt SM, et al.  (2010) Unraveling condition-dependent networks of transcription factors that control metabolic pathway activity in yeast. Mol Syst Biol 6():432
Kundu S and Peterson CL  (2010) Dominant role for signal transduction in the transcriptional memory of yeast GAL genes. Mol Cell Biol 30(10):2330-40
Li Y, et al.  (2010) Multiple metabolic signals influence GAL gene activation by modulating the interaction of Gal80p with the transcriptional activator Gal4p. Mol Microbiol 78(2):414-28
Sellick CA, et al.  (2009) The effect of ligand binding on the galactokinase activity of yeast gal1p and its ability to activate transcription. J Biol Chem 284(1):229-36
Diep CQ, et al.  (2008) Genetic Evidence for Sites of Interaction Between the Gal3 and Gal80 Proteins of the Saccharomyces cerevisiae GAL Gene Switch. Genetics 178(2):725-36
Hittinger CT and Carroll SB  (2007) Gene duplication and the adaptive evolution of a classic genetic switch. Nature 449(7163):677-81
Maclean RC  (2007) Pleiotropy and GAL pathway degeneration in yeast. J Evol Biol 20(4):1333-8
Zacharioudakis I, et al.  (2007) A yeast catabolic enzyme controls transcriptional memory. Curr Biol 17(23):2041-6
Diep CQ, et al.  (2006) Intragenic suppression of Gal3C interaction with Gal80 in the Saccharomyces cerevisiae GAL gene switch. Genetics 172(1):77-87
Hawkins KM and Smolke CD  (2006) The regulatory roles of the galactose permease and kinase in the induction response of the GAL network in Saccharomyces cerevisiae. J Biol Chem 281(19):13485-92
Ramsey SA, et al.  (2006) Dual feedback loops in the GAL regulon suppress cellular heterogeneity in yeast. Nat Genet 38(9):1082-7
Sellick CA and Reece RJ  (2006) Contribution of amino acid side chains to sugar binding specificity in a galactokinase, Gal1p, and a transcriptional inducer, Gal3p. J Biol Chem 281(25):17150-5
Bhat PJ and Venkatesh KV  (2005) Stochastic variation in the concentration of a repressor activates GAL genetic switch: implications in evolution of regulatory network. FEBS Lett 579(3):597-603
Lakshminarasimhan A and Bhat PJ  (2005) Replacement of a conserved tyrosine by tryptophan in Gal3p of Saccharomyces cerevisiae reduces constitutive activity: implications for signal transduction in the GAL regulon. Mol Genet Genomics 274(4):384-93
Melcher K  (2005) Mutational hypersensitivity of a gene regulatory protein: Saccharomyces cerevisiae Gal80p. Genetics 171(2):469-76
Stagoj MN, et al.  (2005) Fluorescence based assay of GAL system in yeast Saccharomyces cerevisiae. FEMS Microbiol Lett 244(1):105-10
Braun E and Brenner N  (2004) Transient responses and adaptation to steady state in a eukaryotic gene regulation system. Phys Biol 1(1-2):67-76
Khanday FA, et al.  (2002) Molecular characterization of MRG19 of Saccharomyces cerevisiae. Implication in the regulation of galactose and nonfermentable carbon source utilization. Eur J Biochem 269(23):5840-50
Murthy TV and Jayadeva Bhat P  (2000) Disruption of galactokinase signature sequence in gal3p of Saccharomyces cerevisiae does not lead to loss of signal transduction function. Biochem Biophys Res Commun 273(3):824-8
Rohde JR, et al.  (2000) Multiple signals regulate GAL transcription in yeast. Mol Cell Biol 20(11):3880-6
Sil AK, et al.  (1999) The Gal3p-Gal80p-Gal4p transcription switch of yeast: Gal3p destabilizes the Gal80p-Gal4p complex in response to galactose and ATP. Mol Cell Biol 19(11):7828-40
Blank TE, et al.  (1997) Novel Gal3 proteins showing altered Gal80p binding cause constitutive transcription of Gal4p-activated genes in Saccharomyces cerevisiae. Mol Cell Biol 17(5):2566-75
Dutra MB, et al.  (1996) Regulation of UDPG-pyrophosphorylase isoforms in Saccharomyces cerevisiae and their roles in trehalose metabolism. Biochim Biophys Acta 1289(2):261-9