Oscillations and variability in the p53 system
暂无分享,去创建一个
R. Milo | U. Alon | N. Rosenfeld | S. Itzkovitz | E. Dekel | P. Polak | N. Geva-Zatorsky | A. Sigal | Y. Liron | G. Lahav | T. Yarnitzky | Yuvalal Liron | Nitzan Rosenfeld | Ron Milo | Alex Sigal | Talia Yarnitzky | Paz Polak | Uri Alon
[1] A. Novick,et al. ENZYME INDUCTION AS AN ALL-OR-NONE PHENOMENON. , 1957, Proceedings of the National Academy of Sciences of the United States of America.
[2] D. Koshland,et al. Non-genetic individuality: chance in the single cell , 1976, Nature.
[3] M. Savageau. Biochemical Systems Analysis: A Study of Function and Design in Molecular Biology , 1976 .
[4] Ronald W. Schafer,et al. Digital Processing of Speech Signals , 1978 .
[5] K. F. Tipton,et al. Biochemical systems analysis: A study of function and design in molecular biology , 1978 .
[6] R. Palmiter,et al. Regulation of metallothionein–thymidine kinase fusion plasmids injected into mouse eggs , 1982, Nature.
[7] P. Meltzer,et al. Amplification of a gene encoding a p53-associated protein in human sarcomas , 1992, Nature.
[8] A. Levine,et al. The p53-mdm-2 autoregulatory feedback loop. , 1993, Genes & development.
[9] D. Lane,et al. Regulation of p53 protein expression in human breast cancer cell lines. , 1993, Journal of cell science.
[10] M. Oren,et al. mdm2 expression is induced by wild type p53 activity. , 1993, The EMBO journal.
[11] Thomas Wilhelm,et al. Smallest chemical reaction system with Hopf bifurcation , 1995 .
[12] M. Oren,et al. Mdm2 promotes the rapid degradation of p53 , 1997, Nature.
[13] Stephen N. Jones,et al. Regulation of p53 stability by Mdm2 , 1997, Nature.
[14] S. Benchimol,et al. Participation of the human p53 3′UTR in translational repression and activation following γ‐irradiation , 1997, The EMBO journal.
[15] S. Leibler,et al. Robustness in simple biochemical networks , 1997, Nature.
[16] J. Piette,et al. Mdm2: keeping p53 under control , 1997, Oncogene.
[17] Yoichi Taya,et al. DNA Damage-Induced Phosphorylation of p53 Alleviates Inhibition by MDM2 , 1997, Cell.
[18] A. Arkin,et al. Stochastic mechanisms in gene expression. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[19] Y Taya,et al. Enhanced phosphorylation of p53 by ATM in response to DNA damage. , 1998, Science.
[20] C. Prives. Signaling to p53 Breaking the MDM2–p53 Circuit , 1998, Cell.
[21] M. Kubbutat,et al. Keeping an old friend under control: regulation of p53 stability. , 1998, Molecular medicine today.
[22] Alan G. Porter,et al. Caspase-3 Is Required for DNA Fragmentation and Morphological Changes Associated with Apoptosis* , 1998, The Journal of Biological Chemistry.
[23] A. Arkin,et al. It's a noisy business! Genetic regulation at the nanomolar scale. , 1999, Trends in genetics : TIG.
[24] A. Takahashi,et al. Low-dose-rate radiation attenuates the response of the tumor suppressor TP53. , 1999, Radiation research.
[25] S. Jackson,et al. Regulation of p53 in response to DNA damage , 1999, Oncogene.
[26] T. Unger,et al. Critical role for Ser20 of human p53 in the negative regulation of p53 by Mdm2 , 1999, The EMBO journal.
[27] C. Prives,et al. The p53 pathway , 1999, The Journal of pathology.
[28] U. Alon,et al. Robustness in bacterial chemotaxis , 2022 .
[29] J. Hopfield,et al. From molecular to modular cell biology , 1999, Nature.
[30] M. Elowitz,et al. A synthetic oscillatory network of transcriptional regulators , 2000, Nature.
[31] U Alon,et al. Generation of oscillations by the p53-Mdm2 feedback loop: a theoretical and experimental study. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[32] Hsiao-Huei Wu,et al. MDM2--master regulator of the p53 tumor suppressor protein. , 2000, Gene.
[33] L. Serrano,et al. Engineering stability in gene networks by autoregulation , 2000, Nature.
[34] George I. Mihalas,et al. POSSIBLE OSCILLATORY BEHAVIOR IN P53–MDM2 INTERACTION COMPUTER SIMULATION , 2000 .
[35] A. Levine,et al. Surfing the p53 network , 2000, Nature.
[36] J. Levine,et al. Surfing the p53 network , 2000, Nature.
[37] S. T. Kim,et al. ATM-dependent phosphorylation of Mdm2 on serine 395: role in p53 activation by DNA damage. , 2001, Genes & development.
[38] M. Thattai,et al. Intrinsic noise in gene regulatory networks , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[39] E. Appella,et al. Post-translational modifications and activation of p53 by genotoxic stresses. , 2001, European journal of biochemistry.
[40] K. Vousden,et al. Regulation and function of the p53 tumor suppressor protein. , 2001, Current opinion in cell biology.
[41] Y. Xiong,et al. Control of p53 ubiquitination and nuclear export by MDM2 and ARF. , 2001, Cell growth & differentiation : the molecular biology journal of the American Association for Cancer Research.
[42] K. Sneppen,et al. Time delay as a key to apoptosis induction in the p53 network , 2002, cond-mat/0207236.
[43] S. Shen-Orr,et al. Networks Network Motifs : Simple Building Blocks of Complex , 2002 .
[44] A. Hoffmann,et al. The I (cid:1) B –NF-(cid:1) B Signaling Module: Temporal Control and Selective Gene Activation , 2022 .
[45] Xin Lu,et al. Live or let die: the cell's response to p53 , 2002, Nature Reviews Cancer.
[46] S. Shen-Orr,et al. Network motifs in the transcriptional regulation network of Escherichia coli , 2002, Nature Genetics.
[47] Ertugrul M. Ozbudak,et al. Regulation of noise in the expression of a single gene , 2002, Nature Genetics.
[48] S. Leibler,et al. Mechanisms of noise-resistance in genetic oscillators , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[49] Nicola J. Rinaldi,et al. Transcriptional Regulatory Networks in Saccharomyces cerevisiae , 2002, Science.
[50] S. Shen-Orr,et al. Network motifs: simple building blocks of complex networks. , 2002, Science.
[51] J. Hasty,et al. Synthetic gene network for entraining and amplifying cellular oscillations. , 2002, Physical review letters.
[52] N. Barkai,et al. Robustness of the BMP morphogen gradient in Drosophila embryonic patterning , 2022 .
[53] A. Goldbeter. Computational approaches to cellular rhythms , 2002, Nature.
[54] Guillermina Lozano,et al. Pirh2, a p53-Induced Ubiquitin-Protein Ligase, Promotes p53 Degradation , 2003, Cell.
[55] 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.
[56] S. Mangan,et al. Structure and function of the feed-forward loop network motif , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[57] Eduardo Sontag,et al. Building a cell cycle oscillator: hysteresis and bistability in the activation of Cdc2 , 2003, Nature Cell Biology.
[58] Farren J. Isaacs,et al. Prediction and measurement of an autoregulatory genetic module , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[59] N. Monk. Oscillatory Expression of Hes1, p53, and NF-κB Driven by Transcriptional Time Delays , 2003, Current Biology.
[60] M. Kastan,et al. DNA damage activates ATM through intermolecular autophosphorylation and dimer dissociation , 2003, Nature.
[61] M. Oren,et al. Decision making by p53: life, death and cancer , 2003, Cell Death and Differentiation.
[62] M. Oren,et al. The p53-Mdm2 module and the ubiquitin system. , 2003, Seminars in cancer biology.
[63] W. Bonner,et al. Low-dose radiation: Thresholds, bystander effects, and adaptive responses , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[64] U. Alon. Biological Networks: The Tinkerer as an Engineer , 2003, Science.
[65] Mads Kærn,et al. Noise in eukaryotic gene expression , 2003, Nature.
[66] J. Paulsson. Summing up the noise in gene networks , 2004, Nature.
[67] D. Meek,et al. The p53 response to DNA damage. , 2004, DNA repair.
[68] R. Milo,et al. Network motifs in integrated cellular networks of transcription-regulation and protein-protein interaction. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[69] Uri Alon,et al. Using a Quantitative Blueprint to Reprogram the Dynamics of the Flagella Gene Network , 2004, Cell.
[70] L. Vassilev. Small-Molecule Antagonists of p53-MDM2 Binding: Research Tools and Potential Therapeutics , 2004, Cell cycle.
[71] C. Thummel,et al. Faculty Opinions recommendation of Circadian gene expression in individual fibroblasts: cell-autonomous and self-sustained oscillators pass time to daughter cells. , 2004 .
[72] Nicola J. Rinaldi,et al. Control of Pancreas and Liver Gene Expression by HNF Transcription Factors , 2004, Science.
[73] Patrick Dowd,et al. The ubiquitin ligase COP1 is a critical negative regulator of p53 , 2004, Nature.
[74] G. Wahl,et al. Accelerated MDM2 auto‐degradation induced by DNA‐damage kinases is required for p53 activation , 2004, The EMBO journal.
[75] D B Kell,et al. Oscillations in NF-kappaB signaling control the dynamics of gene expression. , 2004, Science.
[76] John J Tyson,et al. Monitoring p53's pulse , 2004, Nature Genetics.
[77] Hiroaki Kitano,et al. Biological robustness , 2008, Nature Reviews Genetics.
[78] A. Levine,et al. A Single Nucleotide Polymorphism in the MDM2 Promoter Attenuates the p53 Tumor Suppressor Pathway and Accelerates Tumor Formation in Humans , 2004, Cell.
[79] Galit Lahav,et al. The Strength of Indecisiveness: Oscillatory Behavior for Better Cell Fate Determination , 2004, Science's STKE.
[80] Stanislas Leibler,et al. Resilient circadian oscillator revealed in individual cyanobacteria , 2004, Nature.
[81] Uri Alon,et al. Dynamics of the p53-Mdm2 feedback loop in individual cells , 2004, Nature Genetics.
[82] Felix Naef,et al. Circadian Gene Expression in Individual Fibroblasts Cell-Autonomous and Self-Sustained Oscillators Pass Time to Daughter Cells , 2004, Cell.
[83] J. Raser,et al. Control of Stochasticity in Eukaryotic Gene Expression , 2004, Science.
[84] James R. Johnson,et al. Oscillations in NF-κB Signaling Control the Dynamics of Gene Expression , 2004, Science.
[85] Nir Friedman,et al. Precise Temporal Modulation in the Response of the SOS DNA Repair Network in Individual Bacteria , 2005, PLoS biology.
[86] P. Swain,et al. Gene Regulation at the Single-Cell Level , 2005, Science.
[87] Ji-Hoon Lee,et al. ATM Activation by DNA Double-Strand Breaks Through the Mre11-Rad50-Nbs1 Complex , 2005, Science.
[88] K. Sachs,et al. Causal Protein-Signaling Networks Derived from Multiparameter Single-Cell Data , 2005, Science.
[89] William J. Blake,et al. And the Noise Played on: Stochastic Gene Expression and HIV-1 Infection , 2005, Cell.
[90] A. Levine,et al. MDM2 is a central node in the p53 pathway: 12 years and counting. , 2005, Current cancer drug targets.
[91] Andrea Ciliberto,et al. Steady States and Oscillations in the p53/Mdm2 Network , 2005, Cell cycle.
[92] T. Elston,et al. Stochasticity in gene expression: from theories to phenotypes , 2005, Nature Reviews Genetics.
[93] Jared E. Toettcher,et al. Stochastic Gene Expression in a Lentiviral Positive-Feedback Loop: HIV-1 Tat Fluctuations Drive Phenotypic Diversity , 2005, Cell.
[94] J. Raser,et al. Noise in Gene Expression: Origins, Consequences, and Control , 2005, Science.
[95] William Arbuthnot Sir Lane,et al. ATM and Chk2‐dependent phosphorylation of MDMX contribute to p53 activation after DNA damage , 2005, The EMBO journal.
[96] C. Pesce,et al. Regulated cell-to-cell variation in a cell-fate decision system , 2005, Nature.
[97] Megan F. Cole,et al. Core Transcriptional Regulatory Circuitry in Human Embryonic Stem Cells , 2005, Cell.
[98] Sharad Ramanathan,et al. Tracing the sources of cellular variation. , 2005, Developmental cell.
[99] A. Levine,et al. p53-Mdm2 loop controlled by a balance of its feedback strength and effective dampening using ATM and delayed feedback. , 2005, Systems biology.
[100] E. Cox,et al. Real-Time Kinetics of Gene Activity in Individual Bacteria , 2005, Cell.
[101] Benjamin B. Kaufmann,et al. Contributions of low molecule number and chromosomal positioning to stochastic gene expression , 2005, Nature Genetics.
[102] John Jeremy Rice,et al. A plausible model for the digital response of p53 to DNA damage. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[103] Prahlad T. Ram,et al. Formation of Regulatory Patterns During Signal Propagation in a Mammalian Cellular Network , 2005, Science.
[104] A. Levine,et al. The p53 pathway: positive and negative feedback loops , 2005, Oncogene.
[105] U Alon,et al. The incoherent feed-forward loop accelerates the response-time of the gal system of Escherichia coli. , 2006, Journal of molecular biology.
[106] D. Volfson,et al. Origins of extrinsic variability in eukaryotic gene expression , 2006, Nature.
[107] Jinfu Wang,et al. Ex vivo expansion, adipogenesis and neurogenesis of cryopreserved human bone marrow mesenchymal stem cells , 2007, Cell biology international.
[108] Jeffrey W. Smith,et al. Stochastic Gene Expression in a Single Cell , 2022 .