34 results on '"Bhat, Paike Jayadeva"'
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2. Role of Noise-Induced Cellular Variability in Saccharomyces cerevisiae During Metabolic Adaptation: Causes, Consequences and Ramifications
3. Multiple Conformations of Gal3 Protein Drive the Galactose-Induced Allosteric Activation of the GAL Genetic Switch of Saccharomyces cerevisiae
4. Fermentative metabolism impedes p53-dependent apoptosis in a Crabtree-positive but not in Crabtree-negative yeast
5. KRH1 and KRH2 are functionally non-redundant in signaling for pseudohyphal differentiation in Saccharomyces cerevisiae
6. Perturbation of the interaction between Gal4p and Gal80p of the Saccharomyces cerevisiae GAL switch results in altered responses to galactose and glucose
7. Epigenetics of the yeast galactose genetic switch
8. Stochastic galactokinase expression underlies GAL gene induction in a GAL3 mutant of Saccharomyces cerevisiae
9. Pseudohyphal differentiation defect due to mutations in GPCR and ammonium signaling is suppressed by low glucose concentration: a possible integrated role for carbon and nitrogen limitation
10. Replacement of a conserved tyrosine by tryptophan in Gal3p of Saccharomyces cerevisiae reduces constitutive activity: implications for signal transduction in the GAL regulon
11. Disruption of MRG19 results in altered nitrogen metabolic status and defective pseudohyphal development in Saccharomyces cerevisiae
12. Biological significance of autoregulation through steady state analysis of genetic networks
13. Molecular characterization of MRG19 of Saccharomyces cerevisiae: Implication in the regulation of galactose and nonfermentable carbon source utilization
14. Quantitative Analysis of GAL Genetic Switch of Saccharomyces cerevisiae Reveals That Nucleocytoplasmic Shuttling of Gal80p Results in a Highly Sensitive Response to Galactose
15. Galactose-1-phosphate is a regulator of inositol monophosphatase: a fact or a fiction?
16. Expression of human inositol monophosphatase suppresses galactose toxicity in Saccharomyces cerevisiae: possible implications in galactosemia
17. The binary response of the GAL/MEL genetic switch of Saccharomyces cerevisiae is critically dependent on Gal80p-Gal4p interaction.
18. Paradigmatic Role of Galactose Switch.
19. Versatile Galactose Genetic Switch.
20. Signal Transduction Revisited.
21. Molecular Genetics of GAL Regulon.
22. Genetic Analysis GAL Genetic Switch.
23. Adaptation to Environment.
24. Introduction.
25. Genetic Dissection of Galactose Metabolism.
26. Perturbation of the interaction between Gal4p and Gal80p of the S accharomyces cerevisiae GAL switch results in altered responses to galactose and glucose.
27. Stochastic variation in the concentration of a repressor activates GAL genetic switch: implications in evolution of regulatory network
28. Systems biology of GAL regulon in Saccharomyces cerevisiae.
29. Molecular characterization of MRG19 ofSaccharomyces cerevisiae: Implication in the regulation of galactose and nonfermentable carbon source utilization.
30. Erratum for Densi et al., "Synonymous and Nonsynonymous Substitutions in Dictyostelium discoideum Ammonium Transporter amtA Are Necessary for Functional Complementation in Saccharomyces cerevisiae".
31. Synonymous and Nonsynonymous Substitutions in Dictyostelium discoideum Ammonium Transporter amtA Are Necessary for Functional Complementation in Saccharomyces cerevisiae.
32. Can metabolic plasticity be a cause for cancer? Warburg-Waddington legacy revisited.
33. Systems biology of GAL regulon in Saccharomyces cerevisiae.
34. Expression of GAL genes in a mutant strain of Saccharomyces cerevisiae lacking GAL80: quantitative model and experimental verification.
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