Identification of novel targets for breast cancer by exploring gene switches on a genome scale
暂无分享,去创建一个
[1] Douglas G Altman,et al. Key Issues in Conducting a Meta-Analysis of Gene Expression Microarray Datasets , 2008, PLoS medicine.
[2] M. Rubio-Texeira,et al. A comparative analysis of the GAL genetic switch between not-so-distant cousins: Saccharomyces cerevisiae versus Kluyveromyces lactis. , 2005, FEMS yeast research.
[3] A. Amsterdam,et al. DTL/CDT2 is essential for both CDT1 regulation and the early G2/M checkpoint. , 2006, Genes & development.
[4] D. Botstein,et al. Genomic expression programs in the response of yeast cells to environmental changes. , 2000, Molecular biology of the cell.
[5] Rohaizak Muhammad,et al. Gene expression patterns distinguish breast carcinomas from normal breast tissues: the Malaysian context. , 2010, Pathology, research and practice.
[6] Galit Lahav,et al. The ups and downs of p53: understanding protein dynamics in single cells , 2009, Nature Reviews Cancer.
[7] A. E. Hirsh,et al. Noise Minimization in Eukaryotic Gene Expression , 2004, PLoS biology.
[8] B. Müller-Hill. The lac Operon: A Short History of a Genetic Paradigm , 1996 .
[9] Keith M. Ashman,et al. Detecting Bimodality in Astronomical Datasets , 1994 .
[10] Mads Kærn,et al. Noise in eukaryotic gene expression , 2003, Nature.
[11] M. Brini,et al. Calcium Signalling and Disease , 2007 .
[12] Oscar P. Kuipers,et al. Phenotypic variation in bacteria: the role of feedback regulation , 2006, Nature Reviews Microbiology.
[13] R Margreiter,et al. TROP2 expression as prognostic marker for gastric carcinoma , 2008, Journal of Clinical Pathology.
[14] Kazuyuki Aihara,et al. Modeling genetic switches with positive feedback loops. , 2003, Journal of theoretical biology.
[15] O. Witte,et al. Trop2 identifies a subpopulation of murine and human prostate basal cells with stem cell characteristics , 2008, Proceedings of the National Academy of Sciences.
[16] Özlem Demir,et al. An integrated model of glucose and galactose metabolism regulated by the GAL genetic switch , 2006, Comput. Biol. Chem..
[17] J. Derisi,et al. Single-cell proteomic analysis of S. cerevisiae reveals the architecture of biological noise , 2006, Nature.
[18] Alexander L. Muratov,et al. MODELING THE METALLICITY DISTRIBUTION OF GLOBULAR CLUSTERS , 2010, 1002.1325.
[19] Tae J. Lee,et al. A bistable Rb–E2F switch underlies the restriction point , 2008, Nature Cell Biology.
[20] M. Pascual. Understanding nonlinear dynamics , 1996 .
[21] A. Naderi,et al. A feedback loop between BEX2 and ErbB2 mediated by c‐Jun signaling in breast cancer , 2012, International journal of cancer.
[22] M. West,et al. Gene expression predictors of breast cancer outcomes , 2003, The Lancet.
[23] James E. Ferrell,et al. Bistability in cell signaling: How to make continuous processes discontinuous, and reversible processes irreversible. , 2001, Chaos.
[24] Yiyu Dong,et al. Identification of Trop-2 as an oncogene and an attractive therapeutic target in colon cancers , 2008, Molecular Cancer Therapeutics.
[25] P. M. Hartigan,et al. Computation of the Dip Statistic to Test for Unimodality , 1985 .
[26] Hiroaki Kitano,et al. Large-Scale Analysis of Network Bistability for Human Cancers , 2010, PLoS Comput. Biol..
[27] P. R. ten Wolde,et al. Chemical models of genetic toggle switches. , 2004, The journal of physical chemistry. B.
[28] M. Brini,et al. Calcium signalling and disease : molecular pathology of calcium , 2007 .
[29] Jun Zhu,et al. Simultaneous Clustering of Multiple Gene Expression and Physical Interaction Datasets , 2010, PLoS Comput. Biol..
[30] T. Katagiri,et al. Involvement of elevated expression of multiple cell-cycle regulator, DTL/RAMP (denticleless/RA-regulated nuclear matrix associated protein), in the growth of breast cancer cells , 2008, Oncogene.
[31] Daniel B. Forger,et al. Rate constants rather than biochemical mechanism determine behaviour of genetic clocks , 2008, Journal of The Royal Society Interface.
[32] Hung-Wei Pan,et al. Role of L2DTL, Cell Cycle-Regulated Nuclear and Centrosome Protein, in Aggressive HepatocellularCarcinoma , 2006, Cell cycle.
[33] A. Ochab-Marcinek. Predicting the asymmetric response of a genetic switch to noise. , 2008, Journal of theoretical biology.
[34] R. Milo,et al. Oscillations and variability in the p53 system , 2006, Molecular systems biology.
[35] Robert L. Sutherland,et al. Biological determinants of endocrine resistance in breast cancer , 2009, Nature Reviews Cancer.
[36] Ibrahim Emam,et al. ArrayExpress update—from an archive of functional genomics experiments to the atlas of gene expression , 2008, Nucleic Acids Res..
[37] Yosef Yarden,et al. Molecular mechanisms underlying ErbB2/HER2 action in breast cancer , 2000, Oncogene.
[38] Daniela Corda,et al. Human TROP‐2 is a tumor‐associated calcium signal transducer , 1998, International journal of cancer.
[39] Hannah H. Chang,et al. Multistable and multistep dynamics in neutrophil differentiation , 2006, BMC Cell Biology.
[40] Ertugrul M. Ozbudak,et al. Multistability in the lactose utilization network of Escherichia coli , 2004, Nature.
[41] Martin Fussenegger,et al. Hysteresis in a synthetic mammalian gene network. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[42] Russ B. Altman,et al. Using Pre-existing Microarray Datasets to Increase Experimental Power: Application to Insulin Resistance , 2010, PLoS Comput. Biol..
[43] Alexandre P. Francisco,et al. YEASTRACT: providing a programmatic access to curated transcriptional regulatory associations in Saccharomyces cerevisiae through a web services interface , 2010, Nucleic Acids Res..
[44] A. Mochizuki. An analytical study of the number of steady states in gene regulatory networks. , 2005, Journal of theoretical biology.
[45] G. Lahav,et al. Recurrent initiation: a mechanism for triggering p53 pulses in response to DNA damage. , 2008, Molecular cell.
[46] B. Kholodenko,et al. Signaling switches and bistability arising from multisite phosphorylation in protein kinase cascades , 2004, The Journal of cell biology.
[47] S. Schnitt,et al. Bimodal frequency distribution of estrogen receptor immunohistochemical staining results in breast cancer: an analysis of 825 cases. , 2005, American journal of clinical pathology.
[48] B. De Moor,et al. Comparison and meta-analysis of microarray data: from the bench to the computer desk. , 2003, Trends in genetics : TIG.
[49] J. R. Pomerening,et al. Uncovering mechanisms of bistability in biological systems. , 2008, Current opinion in biotechnology.
[50] Michael Ruogu Zhang,et al. Comprehensive identification of cell cycle-regulated genes of the yeast Saccharomyces cerevisiae by microarray hybridization. , 1998, Molecular biology of the cell.
[51] Jayajit Das,et al. Digital Signaling and Hysteresis Characterize Ras Activation in Lymphoid Cells , 2009, Cell.
[52] Li Liu,et al. cAMP initiates early phase neuron-like morphology changes and late phase neural differentiation in mesenchymal stem cells , 2011, Cellular and Molecular Life Sciences.
[53] Reka Albert,et al. Biological switches and clocks , 2008, Journal of The Royal Society Interface.
[54] J. Cerhan,et al. Gene networks and microRNAs implicated in aggressive prostate cancer. , 2009, Cancer research.
[55] Nan Li,et al. Ca2+/Calmodulin-dependent Protein Kinase II Promotes Cell Cycle Progression by Directly Activating MEK1 and Subsequently Modulating p27 Phosphorylation* , 2009, Journal of Biological Chemistry.
[56] Sheng Zhang,et al. Trop2 expression contributes to tumor pathogenesis by activating the ERK MAPK pathway , 2010, Molecular Cancer.
[57] Gabriel S. Eichler,et al. Cell fates as high-dimensional attractor states of a complex gene regulatory network. , 2005, Physical review letters.
[58] Michael Rasse,et al. TROP2: a novel prognostic marker in squamous cell carcinoma of the oral cavity , 2008, Modern Pathology.
[59] R Margreiter,et al. High expression of TROP2 correlates with poor prognosis in pancreatic cancer , 2008, British Journal of Cancer.
[60] C. Croce,et al. Epigenetically deregulated microRNA-375 is involved in a positive feedback loop with estrogen receptor alpha in breast cancer cells. , 2010, Cancer research.
[61] Christopher A. Voigt,et al. Environmental signal integration by a modular AND gate , 2007, Molecular systems biology.
[62] J. Collins,et al. Construction of a genetic toggle switch in Escherichia coli , 2000, Nature.
[63] J E Ferrell,et al. The biochemical basis of an all-or-none cell fate switch in Xenopus oocytes. , 1998, Science.
[64] Sarat Chandarlapaty,et al. Cyclin E amplification/overexpression is a mechanism of trastuzumab resistance in HER2+ breast cancer patients , 2011, Proceedings of the National Academy of Sciences.
[65] Yoshiko Kamiya,et al. Potential hepatic stem cells reside in EpCAM+ cells of normal and injured mouse liver , 2009, Development.
[66] Katsuhiko Yanaga,et al. Clinical Significance of TROP2 Expression in Colorectal Cancer , 2006, Clinical Cancer Research.
[67] J. Nevins,et al. The Rb/E2F pathway and cancer. , 2001, Human molecular genetics.
[68] D R Parks,et al. Human trophoblast cell-surface antigens defined by monoclonal antibodies. , 1981, Proceedings of the National Academy of Sciences of the United States of America.
[69] 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.
[70] H. Kitano,et al. Integrated Quantitative Analysis of the Phosphoproteome and Transcriptome in Tamoxifen-resistant Breast Cancer* , 2010, The Journal of Biological Chemistry.
[71] Roderick Edwards,et al. Dynamics in high-dimensional model gene networks , 2003, Signal Process..
[72] R. Hansen,et al. Auto-regulation of the estrogen receptor promoter , 1997, The Journal of Steroid Biochemistry and Molecular Biology.
[73] M. Barenco,et al. Ranked prediction of p53 targets using hidden variable dynamic modeling , 2006, Genome Biology.
[74] R. Riggins,et al. Pathways to tamoxifen resistance. , 2007, Cancer letters.