The utility of Apc-mutant rats in modeling human colon cancer
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J. Amos-Landgraf | T. Kuramoto | M. Hart | L. Clipson | W. Dove | K. Yoshimi | Taybor W. Parker | Madeline R Ford | Amy A. Irving
[1] Takuji Tanaka,et al. Utility of Apc-mutant rats with a colitis-associated colon carcinogenesis model for chemoprevention studies , 2015, European journal of cancer prevention : the official journal of the European Cancer Prevention Organisation.
[2] M. Sussman,et al. The Concentrations of EGFR, LRG1, ITIH4, and F5 in Serum Correlate with the Number of Colonic Adenomas in ApcPirc/+ Rats , 2014, Cancer Prevention Research.
[3] E. Wolf,et al. DRO1 Inactivation Drives Colorectal Carcinogenesis in ApcMin/+ Mice , 2014, Molecular Cancer Research.
[4] L. Zender,et al. Activation and repression by oncogenic MYC shape tumour-specific gene expression profiles , 2014, Nature.
[5] T. Mashimo,et al. Allele-specific genome editing and correction of disease-associated phenotypes in rats using the CRISPR–Cas platform , 2014, Nature Communications.
[6] R. Bronson,et al. Colon-specific tumorigenesis in mice driven by Cre-mediated inactivation of Apc and activation of mutant Kras. , 2014, Cancer letters.
[7] E. Bowman,et al. Biomarkers of coordinate metabolic reprogramming in colorectal tumors in mice and humans. , 2014, Gastroenterology.
[8] Thomas M. Keane,et al. A Strategy to Identify Dominant Point Mutant Modifiers of a Quantitative Trait , 2014, G3: Genes, Genomes, Genetics.
[9] T. Kosten,et al. Sex and litter effects on anxiety and DNA methylation levels of stress and neurotrophin genes in adolescent rats. , 2014, Developmental psychobiology.
[10] S. Rabot,et al. Absence of the gut microbiota enhances anxiety-like behavior and neuroendocrine response to acute stress in rats , 2014, Psychoneuroendocrinology.
[11] Michael W. Nonte,et al. A simple, quantitative method using alginate gel to determine rat colonic tumor volume in vivo. , 2014, Comparative medicine.
[12] L. Tesson,et al. Generation of TALEN-Mediated GRdim Knock-In Rats by Homologous Recombination , 2014, PloS one.
[13] F. Bäckhed,et al. Microbiota-Generated Metabolites Promote Metabolic Benefits via Gut-Brain Neural Circuits , 2014, Cell.
[14] D. Bikle. Vitamin D and cancer: the promise not yet fulfilled , 2014, Endocrine.
[15] T. Mashimo. Gene targeting technologies in rats: Zinc finger nucleases, transcription activator‐like effector nucleases, and clustered regularly interspaced short palindromic repeats , 2014, Development, growth & differentiation.
[16] A. Mohammad-Djafari,et al. A circadian clock transcription model for the personalization of cancer chronotherapy. , 2013, Cancer research.
[17] Lianfeng Zhang,et al. Generating rats with conditional alleles using CRISPR/Cas9 , 2013, Cell Research.
[18] Daniel C. Liebler,et al. Comparison of Protein Immunoprecipitation-Multiple Reaction Monitoring with ELISA for Assay of Biomarker Candidates in Plasma , 2013, Journal of proteome research.
[19] R. Greiner,et al. A Machine-Learned Predictor of Colonic Polyps Based on Urinary Metabolomics , 2013, BioMed research international.
[20] M. Newton,et al. Dynamic Tumor Growth Patterns in a Novel Murine Model of Colorectal Cancer , 2013, Cancer Prevention Research.
[21] H. Allawi,et al. Clinical performance of an automated stool DNA assay for detection of colorectal neoplasia. , 2013, Clinical gastroenterology and hepatology : the official clinical practice journal of the American Gastroenterological Association.
[22] Edward L. Huttlin,et al. Candidate serum biomarkers for early intestinal cancer using 15N metabolic labeling and quantitative proteomics in the ApcMin/+ mouse. , 2013, Journal of proteome research.
[23] Qi Zhou,et al. Simultaneous generation and germline transmission of multiple gene mutations in rat using CRISPR-Cas systems , 2013, Nature Biotechnology.
[24] Yongxiang Zhao,et al. Heritable gene targeting in the mouse and rat using a CRISPR-Cas system , 2013, Nature Biotechnology.
[25] Yingrui Li,et al. Whole-Genome Sequences of DA and F344 Rats with Different Susceptibilities to Arthritis, Autoimmunity, Inflammation and Cancer , 2013, Genetics.
[26] Perry J Pickhardt,et al. Assessment of volumetric growth rates of small colorectal polyps with CT colonography: a longitudinal study of natural history. , 2013, The Lancet. Oncology.
[27] M. Meaney,et al. Epigenetic Mechanisms for the Early Environmental Regulation of Hippocampal Glucocorticoid Receptor Gene Expression in Rodents and Humans , 2013, Neuropsychopharmacology.
[28] K. Neufeld,et al. Understanding phenotypic variation in rodent models with germline Apc mutations. , 2013, Cancer research.
[29] Takuji Tanaka,et al. Tumor suppressor APC protein is essential in mucosal repair from colonic inflammation through angiogenesis. , 2013, The American journal of pathology.
[30] A. Clarke,et al. What are the best routes to effectively model human colorectal cancer? , 2013, Molecular oncology.
[31] M. Washington,et al. Pathology of rodent models of intestinal cancer: progress report and recommendations. , 2013, Gastroenterology.
[32] Simon G. Coetzee,et al. Identification of Genetic Susceptibility Loci for Colorectal Tumors in a Genome-Wide Meta-analysis. , 2013, Gastroenterology.
[33] S. Nelson,et al. Interactions and functions of the adenomatous polyposis coli (APC) protein at a glance , 2013, Journal of Cell Science.
[34] T. Serikawa,et al. Efficient gene targeting by TAL effector nucleases coinjected with exonucleases in zygotes , 2013, Scientific Reports.
[35] Daniel R. Richards,et al. Genomic responses in mouse models poorly mimic human inflammatory diseases , 2013, Proceedings of the National Academy of Sciences.
[36] D. Hodgson,et al. Effect of Maternal Probiotic Intervention on HPA Axis, Immunity and Gut Microbiota in a Rat Model of Irritable Bowel Syndrome , 2012, PloS one.
[37] Takuji Tanaka,et al. Use of a chemically induced-colon carcinogenesis-prone Apc-mutant rat in a chemotherapeutic bioassay , 2012, BMC Cancer.
[38] Steven Gallinger,et al. Common variation near CDKN1A, POLD3 and SHROOM2 influences colorectal cancer risk , 2012, Nature Genetics.
[39] S. Hanash,et al. Increased Plasma Levels of the APC-Interacting Protein MAPRE1, LRG1, and IGFBP2 Preceding a Diagnosis of Colorectal Cancer in Women , 2012, Cancer Prevention Research.
[40] M. Newton,et al. Monoallelic silencing and haploinsufficiency in early murine intestinal neoplasms , 2012, Proceedings of the National Academy of Sciences.
[41] M. Oshima,et al. The inflammatory network in the gastrointestinal tumor microenvironment: lessons from mouse models , 2012, Journal of Gastroenterology.
[42] P. Rothwell,et al. Aspirin in the Chemoprevention of Colorectal Neoplasia: An Overview , 2011, Cancer Prevention Research.
[43] H. DeLuca,et al. Supplementation by vitamin D compounds does not affect colonic tumor development in vitamin D sufficient murine models. , 2011, Archives of biochemistry and biophysics.
[44] K. Neufeld,et al. A knock-in mouse model reveals roles for nuclear Apc in cell proliferation, Wnt signal inhibition and tumor suppression , 2011, Oncogene.
[45] A. Knudson,et al. A continuum model for tumour suppression , 2011, Nature.
[46] Tsutomu Yoshida,et al. Invasive behavior of ulcerative colitis-associated carcinoma is related to reduced expression of CD44 extracellular domain: comparison with sporadic colon carcinoma , 2011, Diagnostic pathology.
[47] K. McGlynn,et al. Sex disparities in colorectal cancer incidence by anatomic subsite, race and age , 2011, International journal of cancer.
[48] X. Cui,et al. Targeted integration in rat and mouse embryos with zinc-finger nucleases , 2011, Nature Biotechnology.
[49] C. Mathers,et al. Estimates of worldwide burden of cancer in 2008: GLOBOCAN 2008 , 2010, International journal of cancer.
[50] Kathryn Roeder,et al. Genome-wide association identifies multiple ulcerative colitis susceptibility loci , 2010, Nature Genetics.
[51] Tadao Serikawa,et al. Generation of Knockout Rats with X-Linked Severe Combined Immunodeficiency (X-SCID) Using Zinc-Finger Nucleases , 2010, PloS one.
[52] Umar Mahmood,et al. Development of a mouse model for sporadic and metastatic colon tumors and its use in assessing drug treatment , 2010, Proceedings of the National Academy of Sciences.
[53] O. Sansom,et al. Markedly enhanced colon tumorigenesis in ApcMin mice lacking glutathione S-transferase Pi , 2009, Proceedings of the National Academy of Sciences.
[54] Takuji Tanaka,et al. Enhanced colitis‐associated colon carcinogenesis in a novel Apc mutant rat , 2009, Cancer science.
[55] Edward L. Huttlin,et al. Discovery and validation of colonic tumor-associated proteins via metabolic labeling and stable isotopic dilution , 2009, Proceedings of the National Academy of Sciences.
[56] Ignacio Anegon,et al. Knockout Rats via Embryo Microinjection of Zinc-Finger Nucleases , 2009, Science.
[57] R. Aggarwal,et al. Mechanism of action of celecoxib on normal and acid-challenged gastric mucosa. , 2009, Experimental and toxicologic pathology : official journal of the Gesellschaft fur Toxikologische Pathologie.
[58] Nina M. Muñoz,et al. TGF-beta receptor inactivation and mutant Kras induce intestinal neoplasms in mice via a beta-catenin-independent pathway. , 2009, Gastroenterology.
[59] Xiaoming Yang,et al. Period 2 Mutation Accelerates ApcMin/+ Tumorigenesis , 2008, Molecular Cancer Research.
[60] S. Liyanarachchi,et al. Germline Allele-Specific Expression of TGFBR1 Confers an Increased Risk of Colorectal Cancer , 2008, Science.
[61] A. Derungs,et al. Functional definition of the mutation cluster region of adenomatous polyposis coli in colorectal tumours. , 2008, Human molecular genetics.
[62] J. Lubiński,et al. Familial adenomatous polyposis of the colon , 2008, Hereditary cancer in clinical practice.
[63] Tadao Serikawa,et al. An ENU-induced mutant archive for gene targeting in rats , 2008, Nature Genetics.
[64] Martin A. Nowak,et al. Comparative lesion sequencing provides insights into tumor evolution , 2008, Proceedings of the National Academy of Sciences.
[65] R. Poulsom,et al. The development of duodenal microadenomas in FAP patients: the human correlate of the Min mouse , 2008, The Journal of pathology.
[66] Kathleen R. Cho,et al. Mouse model of colonic adenoma-carcinoma progression based on somatic Apc inactivation. , 2007, Cancer research.
[67] M. Taborsky,et al. Generalized Reciprocity in Rats , 2007, PLoS biology.
[68] J. Crystal,et al. Metacognition in the Rat , 2007, Current Biology.
[69] J. Amos-Landgraf,et al. A target-selected Apc-mutant rat kindred enhances the modeling of familial human colon cancer , 2007, Proceedings of the National Academy of Sciences.
[70] H Brenner,et al. Gender differences in colorectal cancer: implications for age at initiation of screening , 2007, British Journal of Cancer.
[71] M. Nieuwenhuis,et al. Correlations between mutation site in APC and phenotype of familial adenomatous polyposis (FAP): a review of the literature. , 2007, Critical reviews in oncology/hematology.
[72] J. Reguła,et al. Colonoscopy in colorectal-cancer screening for detection of advanced neoplasia. , 2006, The New England journal of medicine.
[73] Edwin Cuppen,et al. Generation of gene knockouts and mutant models in the laboratory rat by ENU-driven target-selected mutagenesis , 2006, Pharmacogenetics and genomics.
[74] Christopher J Kemp,et al. Tumor suppressor genetics. , 2005, Carcinogenesis.
[75] Vikram Bhatia,et al. Stress and the gastrointestinal tract , 2005, Journal of gastroenterology and hepatology.
[76] Yusuke Nakamura,et al. Association analysis of SLC22A4, SLC22A5 and DLG5 in Japanese patients with Crohn disease , 2004, Journal of Human Genetics.
[77] Eric C. Holland,et al. Mouse models of human cancer , 2004 .
[78] A. Delcher,et al. Human, mouse, and rat genome large-scale rearrangements: stability versus speciation. , 2004, Genome research.
[79] J. Alexander,et al. Loss of heterozygosity and nonsense mutation in Apc in azoxymethane-induced colonic tumours in min mice. , 2004, Anticancer research.
[80] J. Vane,et al. The mechanism of action of aspirin. , 2003, Thrombosis research.
[81] R. Hu,et al. Production of knockout rats using ENU mutagenesis and a yeast-based screening assay , 2003, Nature Biotechnology.
[82] Takuji Tanaka,et al. Enhanced colon carcinogenesis induced by azoxymethane in min mice occurs via a mechanism independent of beta-catenin mutation. , 2002, Cancer letters.
[83] T. Jacks,et al. Analysis of lung tumor initiation and progression using conditional expression of oncogenic K-ras. , 2001, Genes & development.
[84] K. Abrams,et al. The risk of colorectal cancer in ulcerative colitis: a meta-analysis , 2001, Gut.
[85] W F Bodmer,et al. The ABC of APC. , 2001, Human molecular genetics.
[86] D. Largaespada. Haploinsufficiency for Tumor Suppression The Hazards of Being Single and Living a Long Time , 2001 .
[87] R. Burt. Colon cancer screening. , 2000, Gastroenterology.
[88] X. Lü,et al. Sublocalizing the centromeric region in linkage groups from three metacentric rat chromosomes by FISH , 1998, Mammalian Genome.
[89] K. Kinzler,et al. Lessons from Hereditary Colorectal Cancer , 1996, Cell.
[90] Kenneth H. Wolfe,et al. Mammalian gene evolution: Nucleotide sequence divergence between mouse and rat , 1993, Journal of Molecular Evolution.
[91] H. Pitot,et al. A dominant mutation that predisposes to multiple intestinal neoplasia in the mouse. , 1990, Science.
[92] L. Golberg,et al. Induction of intestinal tumors in rats by dextran sulfate sodium. , 1981, Journal of the National Cancer Institute.
[93] J. Spalding,et al. Toward a chronotherapy of neoplasia: Tolerance of treatment depends upon host rhythms , 1973, Experientia.
[94] E. Gardner. Follow-up study of a family group exhibiting dominant inheritance for a syndrome including intestinal polyps, osteomas, fibromas and epidermal cysts. , 1962, American journal of human genetics.
[95] R. Velsen,et al. Centrosema Mosaic: a Plant Virus Disease transmitted by both Aphids and Plant Bugs , 1961, Nature.
[96] J. Mossige,et al. A Dominant Gene for Renal Adenomas in the Rat , 1961, Nature.
[97] E. Gardner,et al. Hereditary pattern for multiple osteomas in a family group. , 1952, American journal of human genetics.
[98] Y. Gondo. Mouse Models for Human Diseases by Forward and Reverse Genetics , 2013 .
[99] C. Mathers,et al. GLOBOCAN 2012 v1.0, Cancer Incidence and Mortality Worldwide: IARC CancerBase No. 11 [Internet]. Lyon, France: International Agency for Research on Cancer , 2013 .
[100] E. Cuppen,et al. ENU mutagenesis to generate genetically modified rat models. , 2010, Methods in molecular biology.
[101] H. Jacob,et al. Sequencing of the rat genome and databases. , 2010, Methods in molecular biology.
[102] E. Feuer,et al. SEER Cancer Statistics Review, 1975-2003 , 2006 .
[103] K. Haigis,et al. A Robertsonian translocation suppresses a somatic recombination pathway to loss of heterozygosity , 2003, Nature Genetics.
[104] K. Kinzler,et al. Small changes in expression affect predisposition to tumorigenesis , 2002, Nature Genetics.
[105] E. Somers. International Agency for Research on Cancer. , 1985, CMAJ : Canadian Medical Association journal = journal de l'Association medicale canadienne.