Simulation of the Ras/cAMP/PKA pathway in budding yeast highlights the establishment of stable oscillatory states.
暂无分享,去创建一个
Giancarlo Mauri | Paolo Cazzaniga | Daniela Besozzi | Dario Pescini | Enzo Martegani | Sonia Colombo | E. Martegani | G. Mauri | D. Besozzi | P. Cazzaniga | D. Pescini | S. Colombo | Loredana Amigoni | Loredana Amigoni
[1] Attila Csikász-Nagy,et al. Computational systems biology of the cell cycle , 2009, Briefings Bioinform..
[2] Albert Goldbeter,et al. Stochastic modelling of nucleocytoplasmic oscillations of the transcription factor Msn2 in yeast , 2008, Journal of The Royal Society Interface.
[3] Haluk Resat,et al. Rapid and sustained nuclear–cytoplasmic ERK oscillations induced by epidermal growth factor , 2009, Molecular systems biology.
[4] Giancarlo Mauri,et al. BioSimWare: A Software for the Modeling, Simulation and Analysis of Biological Systems , 2010, Int. Conf. on Membrane Computing.
[5] Vipul Periwal,et al. System Modeling in Cellular Biology: From Concepts to Nuts and Bolts , 2006 .
[6] P. J. Bhat,et al. Integration of Global Signaling Pathways, cAMP-PKA, MAPK and TOR in the Regulation of FLO11 , 2008, PloS one.
[7] Kees Jalink,et al. Detecting cAMP‐induced Epac activation by fluorescence resonance energy transfer: Epac as a novel cAMP indicator , 2004, EMBO reports.
[8] A. Levchenko,et al. Signaling Diversity of PKA Achieved Via a Ca2+-cAMP-PKA Oscillatory Circuit , 2010, Nature chemical biology.
[9] S. Haney,et al. Cdc25p, the guanine nucleotide exchange factor for the Ras proteins of Saccharomyces cerevisiae, promotes exchange by stabilizing Ras in a nucleotide-free state. , 1994, The Journal of biological chemistry.
[10] M. Nakafuku,et al. S. cerevisiae genes IRA1 and IRA2 encode proteins that may be functionally equivalent to mammalian ras GTPase activating protein , 1990, Cell.
[11] Jongrae Kim,et al. Stochastic Noise and Synchronisation during Dictyostelium Aggregation Make cAMP Oscillations Robust , 2007, PLoS Comput. Biol..
[12] Enzo Martegani,et al. Activation State of the Ras2 Protein and Glucose-induced Signaling in Saccharomyces cerevisiae* , 2004, Journal of Biological Chemistry.
[13] C. Rao,et al. Control, exploitation and tolerance of intracellular noise , 2002, Nature.
[14] M. Zaccolo,et al. The Role of Type 4 Phosphodiesterases in Generating Microdomains of cAMP: Large Scale Stochastic Simulations , 2010, PloS one.
[15] Albert Goldbeter,et al. Oscillatory nucleocytoplasmic shuttling of the general stress response transcriptional activators Msn2 and Msn4 in Saccharomyces cerevisiae , 2003, The Journal of cell biology.
[16] Bai Xiaojia,et al. Feedback regulation of Ras2 guanine nucleotide exchange factor (Ras2‐GEF) activity of Cdc25p by Cdc25p phosphorylation in the yeast Saccharomyces cerevisiae , 2010, FEBS letters.
[17] Oliver Medvedik,et al. MSN2 and MSN4 Link Calorie Restriction and TOR to Sirtuin-Mediated Lifespan Extension in Saccharomyces cerevisiae , 2007, PLoS biology.
[18] P. Ma,et al. The PDE1-encoded low-affinity phosphodiesterase in the yeast Saccharomyces cerevisiae has a specific function in controlling agonist-induced cAMP signaling. , 1999, Molecular biology of the cell.
[19] Kwang-Hyun Cho,et al. Positive- and negative-feedback regulations coordinate the dynamic behavior of the Ras-Raf-MEK-ERK signal transduction pathway , 2009, Journal of Cell Science.
[20] L. Alberghina,et al. The overexpression of the 3' terminal region of the CDC25 gene of Saccharomyces cerevisiae causes growth inhibition and alteration of purine nucleotides pools. , 1991, Biochimica et biophysica acta.
[21] Katherine C. Chen,et al. Sniffers, buzzers, toggles and blinkers: dynamics of regulatory and signaling pathways in the cell. , 2003, Current opinion in cell biology.
[22] M. Wigler,et al. Rigorous feedback control of cAMP levels in Saccharomyces cerevisiae. , 1987, Genes & development.
[23] Axel Kowald,et al. Systems Biology - a Textbook , 2016 .
[24] S. V. Straub,et al. A Role for Phosphorylation of Inositol 1,4,5-Trisphosphate Receptors in Defining Calcium Signals Induced by Peptide Agonists in Pancreatic Acinar Cells* , 2002, The Journal of Biological Chemistry.
[25] E. Martegani,et al. Role of guanine nucleotides in the regulation of the Ras/cAMP pathway in Saccharomyces cerevisiae. , 2001, Biochimica et biophysica acta.
[26] B. Kholodenko,et al. Negative feedback and ultrasensitivity can bring about oscillations in the mitogen-activated protein kinase cascades. , 2000, European journal of biochemistry.
[27] David R. Gilbert,et al. Computational methodologies for modelling, analysis and simulation of signalling networks , 2006, Briefings Bioinform..
[28] A. Levitzki,et al. Phosphorylation of the S. cerevisiae Cdc25 in response to glucose results in its dissociation from Ras , 1992, Nature.
[29] M. Jacquet,et al. Stress induces depletion of Cdc25p and decreases the cAMP producing capability in Saccharomyces cerevisiae. , 2004, Microbiology.
[30] Albert Goldbeter,et al. Nucleocytoplasmic Oscillations of the Yeast Transcription Factor Msn2: Evidence for Periodic PKA Activation , 2007, Current Biology.
[31] M. Elowitz,et al. Frequency-modulated nuclear localization bursts coordinate gene regulation , 2008, Nature.
[32] Kwang-Hyun Cho,et al. Modeling and simulation of intracellular dynamics: choosing an appropriate framework , 2004, IEEE Transactions on NanoBioscience.
[33] E. Martegani,et al. Modeling and stochastic simulation of the Ras/cAMP/PKA pathway in the yeast Saccharomyces cerevisiae evidences a key regulatory function for intracellular guanine nucleotides pools. , 2008, Journal of biotechnology.
[34] J. D. de Winde,et al. Involvement of distinct G‐proteins, Gpa2 and Ras, in glucose‐ and intracellular acidification‐induced cAMP signalling in the yeast Saccharomyces cerevisiae , 1998, The EMBO journal.
[35] Linda R Petzold,et al. Efficient step size selection for the tau-leaping simulation method. , 2006, The Journal of chemical physics.
[36] J. D. de Winde,et al. Novel sensing mechanisms and targets for the cAMP–protein kinase A pathway in the yeast Saccharomyces cerevisiae , 1999, Molecular microbiology.