Signatures of co-deregulated genes and their transcriptional regulators in colorectal cancer
暂无分享,去创建一个
[1] C. Coltman,et al. Phase I experience with emetine hydrochloride (NSC 33669) as an antitumor agent , 1971, Cancer.
[2] Luis Carrasco,et al. Enzymic and nonenzymic translocation by yeast polysomes. Site of action of a number of inhibitors. , 1977, Biochemistry.
[3] J. Stewart,et al. The tumour promoter 12-O-tetradecanoylphorbol-13-acetate increases the activities of some peroxisome-associated enzymes in in vitro cell culture. , 1986, British Journal of Cancer.
[4] K. Sikora,et al. c‐myc oncogene expression in colorectal cancer , 1987, Cancer.
[5] H. Iishi,et al. Inhibition by isoproterenol and neostigmine of experimental carcinogenesis in rat colon by azoxymethane. , 1988, British Journal of Cancer.
[6] H. Goh,et al. c-myc Oncogene expression in colorectal cancer: its use in prognosis and role in colorectal carcinogenesis. , 1990, Annals of the Academy of Medicine, Singapore.
[7] Biochemical pharmacology of the atypical neuroleptic remoxipride , 1990 .
[8] Z. Darżynkiewicz,et al. The S-phase cytotoxicity of camptothecin. , 1991, Experimental cell research.
[9] T. Taguchi,et al. Phase II study of CPT-11, a new camptothecin derivative, in metastatic colorectal cancer. CPT-11 Gastrointestinal Cancer Study Group. , 1993, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[10] E. El-Omar,et al. Omeprazole inhibits colorectal carcinogenesis induced by azoxymethane in rats. , 1993, Gut.
[11] L. Li,et al. A study of c-myc oncogene expression and amplification in colorectal cancer. , 1994, Chinese medical sciences journal = Chung-kuo i hsueh k'o hsueh tsa chih.
[12] J. Champoux,et al. Crystal structures of human topoisomerase I in covalent and noncovalent complexes with DNA. , 1998, Science.
[13] M. Kimmey,et al. Neostigmine for the treatment of acute colonic pseudo-obstruction. , 1998, The New England journal of medicine.
[14] P. Polakis. Wnt signaling and cancer. , 2000, Genes & development.
[15] F. Praz,et al. The role of the DNA mismatch repair system in the cytotoxicity of the topoisomerase inhibitors camptothecin and etoposide to human colorectal cancer cells. , 2001, Cancer research.
[16] Hans Clevers,et al. T‐cell factors: turn‐ons and turn‐offs , 2002, The EMBO journal.
[17] T. Ørntoft,et al. Gene expression in colorectal cancer. , 2002, Cancer research.
[18] K. McMasters,et al. E2F-1 overexpression sensitizes colorectal cancer cells to camptothecin , 2003, Cancer Gene Therapy.
[19] L. Saltz,et al. The camptothecins , 2003, The Lancet.
[20] Andrew J. Wilson,et al. c-Myc overexpression sensitises colon cancer cells to camptothecin-induced apoptosis , 2003, British Journal of Cancer.
[21] K. Kohn,et al. Repair of and checkpoint response to topoisomerase I-mediated DNA damage. , 2003, Mutation research.
[22] A. Concha,et al. Promyelocytic leukemia (PML) nuclear bodies are disorganized in colorectal tumors with total loss of major histocompatibility complex class I expression and LMP7 downregulation. , 2004, Tissue antigens.
[23] F. Bertucci,et al. Gene expression profiling of colon cancer by DNA microarrays and correlation with histoclinical parameters , 2004, Oncogene.
[24] David C. Atkins,et al. Gene expression profiles and molecular markers to predict recurrence of Dukes' B colon cancer. , 2004, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[25] R. Nusse,et al. Convergence of Wnt, ß-Catenin, and Cadherin Pathways , 2004, Science.
[26] P. Pandolfi,et al. Cytoplasmic PML function in TGF-β signalling , 2004, Nature.
[27] M. Roh,et al. Gene Expression Profiling in Lymph Node-Positive and Lymph Node-Negative Colorectal Cancer , 2004, Diseases of the colon and rectum.
[28] M. Dewhirst,et al. Camptothecin analogs with enhanced activity against human breast cancer cells. II. Impact of the tumor pH gradient , 2005, Cancer Chemotherapy and Pharmacology.
[29] J. Astola,et al. Gene-expression profiling predicts recurrence in Dukes' C colorectal cancer. , 2005, Gastroenterology.
[30] Paul A Clemons,et al. The Connectivity Map: Using Gene-Expression Signatures to Connect Small Molecules, Genes, and Disease , 2006, Science.
[31] Z. Trajanoski,et al. Type, Density, and Location of Immune Cells Within Human Colorectal Tumors Predict Clinical Outcome , 2006, Science.
[32] I. Tomlinson,et al. Colorectal cancer and genetic alterations in the Wnt pathway , 2006, Oncogene.
[33] P. Cole,et al. TRRAP and GCN5 are used by c-Myc to activate RNA polymerase III transcription , 2007, Proceedings of the National Academy of Sciences.
[34] John Quackenbush,et al. Sources of variation in baseline gene expression levels from toxicogenomics study control animals across multiple laboratories , 2008, BMC Genomics.
[35] Seth I. Berger,et al. Genes2Networks: connecting lists of gene symbols using mammalian protein interactions databases , 2007, BMC Bioinformatics.
[36] Julie A. Wilkins,et al. Myc deletion rescues Apc deficiency in the small intestine , 2007, Nature.
[37] J. Xu,et al. Ribosomal proteins and colorectal cancer. , 2007, Current genomics.
[38] John D. Storey,et al. Capturing Heterogeneity in Gene Expression Studies by Surrogate Variable Analysis , 2007, PLoS genetics.
[39] Avi Ma'ayan,et al. KEA: kinase enrichment analysis , 2009, Bioinform..
[40] Guanghui Hu,et al. Human Disease-Drug Network Based on Genomic Expression Profiles , 2009, PloS one.
[41] C. Dang,et al. MYC-Induced Cancer Cell Energy Metabolism and Therapeutic Opportunities , 2009, Clinical Cancer Research.
[42] Sheng-Cai Lin,et al. ChIP-seq and functional analysis of the SOX2 gene in colorectal cancers. , 2010, Omics : a journal of integrative biology.
[43] K. Khuenl-Brady,et al. Neostigmine injected 5 minutes after low-dose rocuronium accelerates the recovery of neuromuscular function. , 2010, Journal of clinical anesthesia.
[44] R. Tagliaferri,et al. Discovery of drug mode of action and drug repositioning from transcriptional responses , 2010, Proceedings of the National Academy of Sciences.
[45] D. di Bernardo,et al. Identification of small molecules enhancing autophagic function from drug network analysis. , 2010, Autophagy.
[46] M. Kloor,et al. Immune evasion of microsatellite unstable colorectal cancers , 2010, International journal of cancer.
[47] P. Sandy,et al. Targeting MYC dependence in cancer by inhibiting BET bromodomains , 2011, Proceedings of the National Academy of Sciences.
[48] Alexander A. Morgan,et al. Computational Repositioning of the Anticonvulsant Topiramate for Inflammatory Bowel Disease , 2011, Science Translational Medicine.
[49] D. Bumann,et al. Salmonella-Induced Mucosal Lectin RegIIIβ Kills Competing Gut Microbiota , 2011, PloS one.
[50] A. Satelli,et al. Galectin-1 is silenced by promoter hypermethylation and its re-expression induces apoptosis in human colorectal cancer cells. , 2011, Cancer letters.
[51] J. Neumann,et al. SOX2 expression correlates with lymph-node metastases and distant spread in right-sided colon cancer , 2011, BMC Cancer.
[52] Avi Ma'ayan,et al. Expression2Kinases: mRNA profiling linked to multiple upstream regulatory layers , 2012, Bioinform..
[53] E. Fuchs,et al. Function of Wnt/β-catenin in counteracting Tcf3 repression through the Tcf3–β-catenin interaction , 2012, Development.
[54] V. Steele,et al. Anti-carcinogenic properties of omeprazole against human colon cancer cells and azoxymethane-induced colonic aberrant crypt foci formation in rats. , 2011, International journal of oncology.
[55] A. Russo,et al. PML as a potential predictive factor of oxaliplatin/fluoropyrimidine‐based first line chemotherapy efficacy in colorectal cancer patients , 2012, Journal of cellular physiology.
[56] L. Montanaro,et al. Changes in ribosome biogenesis may induce cancer by down-regulating the cell tumor suppressor potential. , 2012, Biochimica et biophysica acta.
[57] Tesshi Yamada,et al. β-catenin inhibits promyelocytic leukemia protein tumor suppressor function in colorectal cancer cells. , 2012, Gastroenterology.
[58] S. Grivennikov. Inflammation and colorectal cancer: colitis-associated neoplasia , 2012, Seminars in Immunopathology.
[59] U. Manne,et al. Prognostic Significance and Gene Expression Profiles of p53 Mutations in Microsatellite-Stable Stage III Colorectal Adenocarcinomas , 2012, PloS one.
[60] Avi Ma'ayan,et al. The characteristic direction: a geometrical approach to identify differentially expressed genes , 2014, BMC Bioinformatics.
[61] Elspeth A. Bruford,et al. Genenames.org: the HGNC resources in 2013 , 2012, Nucleic Acids Res..
[62] Vinod Kumar Verma,et al. OncomiRdbB: a comprehensive database of microRNAs and their targets in breast cancer , 2014, BMC Bioinformatics.
[63] Laura F. Landweber,et al. LUCApedia: a database for the study of ancient life , 2012, Nucleic Acids Res..
[64] David S. Wishart,et al. DrugBank 4.0: shedding new light on drug metabolism , 2013, Nucleic Acids Res..
[65] R. Palmqvist,et al. SOX2 Expression Is Regulated by BRAF and Contributes to Poor Patient Prognosis in Colorectal Cancer , 2014, PloS one.
[66] H. de Thé,et al. PML nuclear bodies: Assembly and oxidative stress-sensitive sumoylation , 2014, Nucleus.
[67] T. Foltynie,et al. Ambroxol improves lysosomal biochemistry in glucocerebrosidase mutation-linked Parkinson disease cells , 2014, Brain : a journal of neurology.
[68] K. Arga,et al. The role of protein interaction networks in systems biomedicine , 2014, Computational and structural biotechnology journal.
[69] S. Markowitz,et al. The Molecular Pathogenesis of Colorectal Cancer and Its Potential Application to Colorectal Cancer Screening , 2015, Digestive Diseases and Sciences.
[70] Hui Zhou,et al. Attacking c-Myc: targeted and combined therapies for cancer. , 2014, Current pharmaceutical design.
[71] Jonathan M. Hernandez,et al. The interplay between histone deacetylases and c-Myc in the transcriptional suppression of HPP1 in colon cancer , 2014, Cancer biology & therapy.
[72] M. Krausová,et al. Wnt signaling in adult intestinal stem cells and cancer. , 2014, Cellular signalling.
[73] M. Mehndiratta,et al. Acetylcholinesterase inhibitor treatment for myasthenia gravis. , 2014, The Cochrane database of systematic reviews.
[74] R. Sears,et al. MYC degradation. , 2014, Cold Spring Harbor perspectives in medicine.
[75] L. Andĕra,et al. Emetine enhances the tumor necrosis factor-related apoptosis-inducing ligand-induced apoptosis of pancreatic cancer cells by downregulation of myeloid cell leukemia sequence-1 protein. , 2014, Oncology reports.
[76] Y. Akao,et al. Colorectal cancer cell-derived microvesicles containing microRNA-1246 promote angiogenesis by activating Smad 1/5/8 signaling elicited by PML down-regulation in endothelial cells. , 2014, Biochimica et biophysica acta.
[77] Yinglin Xia,et al. Salmonella‐infected crypt‐derived intestinal organoid culture system for host–bacterial interactions , 2014, Physiological reports.
[78] K. Abbott,et al. Elevated levels of glycosylphosphatidylinositol (GPI) anchored proteins in plasma from human cancers detected by C. septicum alpha toxin. , 2014, Cancer biomarkers : section A of Disease markers.
[79] Jeffrey S. Morris,et al. The Consensus Molecular Subtypes of Colorectal Cancer , 2015, Nature Medicine.
[80] M. Pornour,et al. New perspective therapy of breast cancer based on selective dopamine receptor D2 agonist and antagonist effects on MCF-7 cell line. , 2015, Recent patents on anti-cancer drug discovery.
[81] Elspeth A. Bruford,et al. Genenames.org: the HGNC resources in 2015 , 2014, Nucleic Acids Res..
[82] Meera Shah,et al. A dynamic exchange of TCF3 and TCF4 transcription factors controls MYC expression in colorectal cancer cells , 2015, Cell cycle.
[83] Matthew E. Ritchie,et al. limma powers differential expression analyses for RNA-sequencing and microarray studies , 2015, Nucleic acids research.
[84] L. Larsson,et al. Targeting MYC Translation in Colorectal Cancer. , 2015, Cancer discovery.
[85] V. Steele,et al. Abstract 2820: Omeprazole alone, or in combination with Aspirin inhibits azoxymethane-induced colon adenoma progression to adenocarcinoma and carcinoma invasion in F344 rat model , 2015 .
[86] Andrew D. Rouillard,et al. GEO2Enrichr: browser extension and server app to extract gene sets from GEO and analyze them for biological functions , 2015, Bioinform..
[87] Jinkun Liu,et al. [Mechanism of thioridazine-induced apoptosis of human colorectal cancer SW480 cells]. , 2015, Nan fang yi ke da xue xue bao = Journal of Southern Medical University.
[88] P. Wierzbicki,et al. The Hippo pathway in colorectal cancer. , 2015, Folia histochemica et cytobiologica.
[89] G. von Heijne,et al. Tissue-based map of the human proteome , 2015, Science.
[90] Chunfa Huang,et al. Lipid Metabolism, Apoptosis and Cancer Therapy , 2015, International journal of molecular sciences.
[91] Gang Fu,et al. Disease Ontology 2015 update: an expanded and updated database of human diseases for linking biomedical knowledge through disease data , 2014, Nucleic Acids Res..
[92] C. Mathers,et al. Cancer incidence and mortality worldwide: Sources, methods and major patterns in GLOBOCAN 2012 , 2015, International journal of cancer.
[93] G. Inghirami,et al. Stromal contribution to the colorectal cancer transcriptome , 2015, Nature Genetics.
[94] H. Stunnenberg,et al. c-Myc Modulation and Acetylation Is a Key HDAC Inhibitor Target in Cancer , 2016, Clinical Cancer Research.
[95] E. Frangou,et al. Somatic POLE proofreading domain mutation, immune response, and prognosis in colorectal cancer: a retrospective, pooled biomarker study. , 2016, The lancet. Gastroenterology & hepatology.
[96] S. Baserga,et al. Probing the mechanisms underlying human diseases in making ribosomes. , 2016, Biochemical Society transactions.
[97] Ivo L. Hofacker,et al. AREsite2: an enhanced database for the comprehensive investigation of AU/GU/U-rich elements , 2015, Nucleic Acids Res..
[98] R. Palmqvist,et al. SOX2 expression is associated with a cancer stem cell state and down-regulation of CDX2 in colorectal cancer , 2016, BMC Cancer.
[99] Andrew D. Rouillard,et al. Enrichr: a comprehensive gene set enrichment analysis web server 2016 update , 2016, Nucleic Acids Res..
[100] Kathleen M Jagodnik,et al. Extraction and analysis of signatures from the Gene Expression Omnibus by the crowd , 2016, Nature Communications.
[101] P. Farnham,et al. Effects on the transcriptome upon deletion of a distal element cannot be predicted by the size of the H3K27Ac peak in human cells , 2016, Nucleic acids research.
[102] C. Kuo,et al. Wnt pathway regulation of intestinal stem cells , 2016, The Journal of physiology.
[103] K. Shirahige,et al. ASBEL–TCF3 complex is required for the tumorigenicity of colorectal cancer cells , 2016, Proceedings of the National Academy of Sciences.
[104] Marc Hafner,et al. L1000CDS2: LINCS L1000 characteristic direction signatures search engine , 2016, npj Systems Biology and Applications.
[105] M. Salto‐Tellez,et al. Standardising RNA profiling based biomarker application in cancer-The need for robust control of technical variables. , 2017, Biochimica et biophysica acta. Reviews on cancer.
[106] A. Ramírez de Molina,et al. Complementary ACSL isoforms contribute to a non-Warburg advantageous energetic status characterizing invasive colon cancer cells , 2017, Scientific Reports.
[107] K. Shokat,et al. Drugging the 'undruggable' cancer targets , 2017, Nature Reviews Cancer.
[108] S. Fröhling,et al. Prospective identification of resistance mechanisms to HSP90 inhibition in KRAS mutant cancer cells , 2016, Oncotarget.
[109] R. Green,et al. Ribosomopathies: There’s strength in numbers , 2017, Science.
[110] Angela N. Brooks,et al. A Next Generation Connectivity Map: L1000 Platform and the First 1,000,000 Profiles , 2017, Cell.
[111] P. Stepnowski,et al. Hyper-Elongation in Colorectal Cancer Tissue – Cerotic Acid is a Potential Novel Serum Metabolic Marker of Colorectal Malignancies , 2017, Cellular Physiology and Biochemistry.
[112] M. Tomita,et al. Global metabolic reprogramming of colorectal cancer occurs at adenoma stage and is induced by MYC , 2017, Proceedings of the National Academy of Sciences.
[113] Wancai Yang,et al. Identification of Key Candidate Genes and Pathways in Colorectal Cancer by Integrated Bioinformatical Analysis , 2017, International journal of molecular sciences.
[114] A. Al-majed,et al. Clenbuterol Hydrochloride. , 2017, Profiles of drug substances, excipients, and related methodology.
[115] O. Namy,et al. Characterization of new-generation aminoglycoside promoting premature termination codon readthrough in cancer cells , 2017, RNA biology.
[116] R. Guillevin,et al. Interactions between TGF-β1, canonical WNT/β-catenin pathway and PPAR γ in radiation-induced fibrosis , 2017, Oncotarget.
[117] G. Pentheroudakis,et al. Current and future biomarkers in colorectal cancer , 2017, Annals of gastroenterology.
[118] C. Punt,et al. From tumour heterogeneity to advances in precision treatment of colorectal cancer , 2017, Nature Reviews Clinical Oncology.
[119] X. Sha,et al. Ambroxol enhances anti-cancer effect of microtubule-stabilizing drug to lung carcinoma through blocking autophagic flux in lysosome-dependent way. , 2017, American journal of cancer research.
[120] P. Liu,et al. Thioridazine elicits potent antitumor effects in colorectal cancer stem cells. , 2017, Oncology reports.
[121] Hui-Yun Wang,et al. Effects of omeprazole in improving concurrent chemoradiotherapy efficacy in rectal cancer , 2017, World journal of gastroenterology.
[122] Hanchen Xu,et al. RNA-Seq profiling of circular RNAs in human colorectal Cancer liver metastasis and the potential biomarkers , 2019, Molecular Cancer.
[123] R. Wolff,et al. The TGFβ-signaling pathway and colorectal cancer: associations between dysregulated genes and miRNAs , 2018, Journal of Translational Medicine.
[124] N. Smirnoff. Ascorbic acid metabolism and functions: A comparison of plants and mammals , 2018, Free radical biology & medicine.
[125] Denis Torre,et al. eXpression2Kinases (X2K) Web: linking expression signatures to upstream cell signaling networks , 2018, Nucleic Acids Res..
[126] An-Shun Tai,et al. Decomposing the subclonal structure of tumors with two-way mixture models on copy number aberrations , 2018, bioRxiv.
[127] Christodoulos Efstathiades,et al. The Expression and Prognostic Impact of Immune Cytolytic Activity-Related Markers in Human Malignancies: A Comprehensive Meta-analysis , 2018, Front. Oncol..
[128] Hui Li,et al. Genome-Wide Profiling of Prognostic Alternative Splicing Signature in Colorectal Cancer , 2018, Front. Oncol..
[129] Verteporfin , 2018, Reactions Weekly.
[130] S. Cui,et al. BRD4 promotes gastric cancer progression through the transcriptional and epigenetic regulation of c‐MYC , 2018, Journal of cellular biochemistry.
[131] R. Wolff,et al. The MAPK-Signaling Pathway in Colorectal Cancer: Dysregulated Genes and Their Association With MicroRNAs , 2018, Cancer informatics.
[132] Jun Sun,et al. Salmonella Infection in Chronic Inflammation and Gastrointestinal Cancer , 2019, Diseases.
[133] G. Konstantinidou,et al. Targeting Long Chain Acyl-CoA Synthetases for Cancer Therapy , 2019, International journal of molecular sciences.
[134] Xiaopeng Cui,et al. Identification of novel biomarkers and small molecule drugs in human colorectal cancer by microarray and bioinformatics analysis , 2019, Molecular genetics & genomic medicine.
[135] P. Beale,et al. Dose and Sequence Dependent Synergism from the Combination of Oxaliplatin with Emetine and Patulin against Colorectal Cancer. , 2019, Anti-cancer agents in medicinal chemistry.
[136] Qiang Xu,et al. Targeting HIBCH to reprogram valine metabolism for the treatment of colorectal cancer , 2019, Cell Death & Disease.
[137] S. Zhang,et al. KAT5 promotes invasion and metastasis through C-MYC stabilization in ATC. , 2019, Endocrine-related cancer.
[138] Samik Ghosh,et al. Multi-dimensional computational pipeline for large-scale deep screening of compound effect assessment: an in silico case study on ageing-related compounds , 2019, npj Systems Biology and Applications.
[139] H. Kitano,et al. Multi-dimensional computational pipeline for large-scale deep screening of compound effect assessment: an in silico case study on ageing-related compounds. , 2019, NPJ systems biology and applications.
[140] Brendan F. Kohrn,et al. Extensive subclonal mutational diversity in human colorectal cancer and its significance , 2019, Proceedings of the National Academy of Sciences.
[141] L. Montanaro,et al. The Ribosome Biogenesis—Cancer Connection , 2019, Cells.
[142] Zemin Zhang,et al. GEPIA2: an enhanced web server for large-scale expression profiling and interactive analysis , 2019, Nucleic Acids Res..
[143] Md. Nurul Haque Mollah,et al. Identification of Prognostic Biomarker Signatures and Candidate Drugs in Colorectal Cancer: Insights from Systems Biology Analysis , 2018, Medicina.
[144] Christodoulos Efstathiades,et al. Cytolytic activity correlates with the mutational burden and deregulated expression of immune checkpoints in colorectal cancer , 2019, Journal of Experimental & Clinical Cancer Research.
[145] P. Stepnowski,et al. Changes in lipids composition and metabolism in colorectal cancer: a review , 2019, Lipids in Health and Disease.
[146] R. Hohl,et al. The Dopamine D2 Receptor Contributes to the Spheroid Formation Behavior of U87 Glioblastoma Cells , 2019, Pharmacology.
[147] H. Yamawaki,et al. Emerging Roles of C-Myc in Cancer Stem Cell-Related Signaling and Resistance to Cancer Chemotherapy: A Potential Therapeutic Target Against Colorectal Cancer , 2019, International journal of molecular sciences.
[148] Charles M. Perou,et al. Unlocking the transcriptomic potential of formalin-fixed paraffin embedded clinical tissues: comparison of gene expression profiling approaches , 2020, BMC Bioinformatics.