Use of integrative epigenetic and cytogenetic analyses to identify novel tumor-suppressor genes in malignant melanoma
暂无分享,去创建一个
[1] T. Golub,et al. Integrative genomic analyses identify MITF as a lineage survival oncogene amplified in malignant melanoma , 2005, Nature.
[2] Long-Cheng Li,et al. MethPrimer: designing primers for methylation PCRs , 2002, Bioinform..
[3] C. O'brien,et al. Chordin-like 1, a bone morphogenetic protein-4 antagonist, is upregulated by hypoxia in human retinal pericytes and plays a role in regulating angiogenesis , 2008, Molecular vision.
[4] C. Croce,et al. Definition and refinement of chromosome 8p regions of loss of heterozygosity in gastric cancer. , 2000, Clinical cancer research : an official journal of the American Association for Cancer Research.
[5] Matty P. Weijenberg,et al. A genomic screen for genes upregulated by demethylation and histone deacetylase inhibition in human colorectal cancer , 2002, Nature Genetics.
[6] S. Nagpal,et al. Tazarotene-induced gene 1 (TIG1), a novel retinoic acid receptor-responsive gene in skin. , 1996, The Journal of investigative dermatology.
[7] Steven S. Chang,et al. Integrative Discovery of Epigenetically Derepressed Cancer Testis Antigens in NSCLC , 2009, PloS one.
[8] C. Ramana,et al. Differential Effects of Lipoprotein Lipase on Tumor Necrosis Factor-α and Interferon-γ-mediated Gene Expression in Human Endothelial Cells* , 2005, Journal of Biological Chemistry.
[9] R. Nussbaum,et al. Report of the third international workshop on human chromosome 22 mapping. , 1993, Cytogenetics and cell genetics.
[10] Y. Gao,et al. The Human KROX-26/ZNF22 Gene is Expressed at Sites of Tooth Formation and Maps to the Locus for Permanent Tooth Agenesis (He-Zhao Deficiency) , 2003, Journal of dental research.
[11] J. Krieglstein,et al. Protein phosphatase type 2Calpha and 2Cbeta are involved in fatty acid-induced apoptosis of neuronal and endothelial cells. , 2006, Apoptosis.
[12] T. Sugimura,et al. Concurrent suppression of hyperlipidemia and intestinal polyp formation by NO-1886, increasing lipoprotein lipase activity in Min mice. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[13] J. Mesirov,et al. Gene Expression Changes in an Animal Melanoma Model Correlate with Aggressiveness of Human Melanoma Metastases , 2008, Molecular Cancer Research.
[14] A. Eggermont,et al. Gene expression profiling of primary cutaneous melanoma and clinical outcome. , 2006, Journal of the National Cancer Institute.
[15] Suet Yi Leung,et al. Gene expression patterns of human colon tops and basal crypts and BMP antagonists as intestinal stem cell niche factors , 2007, Proceedings of the National Academy of Sciences.
[16] F. Guadagni,et al. Cytogenetic profiles as additional markers to pathological features in clinically localized prostate carcinoma. , 2006, Cancer letters.
[17] Yvonne Wallis,et al. The Wnt Antagonist sFRP1 in Colorectal Tumorigenesis , 2004, Cancer Research.
[18] Joachim Diebold,et al. Functional epigenomics identifies genes frequently silenced in prostate cancer. , 2005, Cancer research.
[19] Chun Jing,et al. Tazarotene-induced gene 1 (TIG1) expression in prostate carcinomas and its relationship to tumorigenicity. , 2002, Journal of the National Cancer Institute.
[20] Jianfeng Xu,et al. Genetic and epigenetic inactivation of LPL gene in human prostate cancer , 2009, International journal of cancer.
[21] P. O'Connell,et al. Report of the Third International Workshop on Human Chromosome 8 Mapping. San Antonio, Texas, October 25-27, 1996. , 1996, Cytogenetics and cell genetics.
[22] R. Lotan,et al. Hypermethylation and Silencing of the Putative Tumor Suppressor Tazarotene-Induced Gene 1 in Human Cancers , 2004, Cancer Research.
[23] D. Birnbaum,et al. WNT pathway and mammary carcinogenesis: Loss of expression of candidate tumor suppressor gene SFRP1 in most invasive carcinomas except of the medullary type , 2001, Oncogene.
[24] Yixin Wang,et al. Novel Genes Associated with Malignant Melanoma but not Benign Melanocytic Lesions , 2005, Clinical Cancer Research.
[25] Steven S. Chang,et al. Coordinated Activation of Candidate Proto-Oncogenes and Cancer Testes Antigens via Promoter Demethylation in Head and Neck Cancer and Lung Cancer , 2009, PloS one.
[26] M. Ladanyi,et al. Novel Markers of Subclinical Disease for Ewing Family Tumors from Gene Expression Profiling , 2007, Clinical Cancer Research.
[27] N. Oue,et al. DNA methylation of genes linked with retinoid signaling in gastric carcinoma , 2005, Cancer.
[28] M. Mahadevappa,et al. SARPs: a family of secreted apoptosis-related proteins. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[29] S. Baylin,et al. Deletions of chromosome 8p and loss of sFRP1 expression are progression markers of papillary bladder cancer , 2004, Laboratory Investigation.
[30] Ashton C. Berger,et al. "Lineage addiction" in human cancer: lessons from integrated genomics. , 2005, Cold Spring Harbor symposia on quantitative biology.
[31] Wei Dong Chen,et al. Epigenetic inactivation of SFRP genes allows constitutive WNT signaling in colorectal cancer , 2004, Nature Genetics.
[32] Irina Klaman,et al. Loss of SFRP1 is associated with breast cancer progression and poor prognosis in early stage tumors. , 2004, International journal of oncology.
[33] M. Bosenberg,et al. Epigenetic silencing of novel tumor suppressors in malignant melanoma. , 2006, Cancer research.
[34] W. Gerald,et al. Integrative genomics identifies distinct molecular classes of neuroblastoma and shows that multiple genes are targeted by regional alterations in DNA copy number. , 2006, Cancer research.
[35] J. Herman,et al. Methylation-specific PCR: a novel PCR assay for methylation status of CpG islands. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[36] J. Kim,et al. Human secreted frizzled-related protein is down-regulated and induces apoptosis in human cervical cancer. , 2002, Experimental cell research.
[37] C. Nguyen,et al. Differential expression assay of chromosome arm 8p genes identifies Frizzled-related (FRP1/FRZB) and Fibroblast Growth Factor Receptor 1 (FGFR1) as candidate breast cancer genes , 1999, Oncogene.
[38] M. Pujana,et al. Novel pheochromocytoma susceptibility loci identified by integrative genomics. , 2005, Cancer research.
[39] Yi Guo,et al. Drug sensitivity prediction by CpG island methylation profile in the NCI-60 cancer cell line panel. , 2007, Cancer research.
[40] X. Estivill,et al. Molecular characterization of a t(9;12)(p21;q13) balanced chromosome translocation in combination with integrative genomics analysis identifies C9orf14 as a candidate tumor‐suppressor , 2007, Genes, chromosomes & cancer.
[41] B. Strauss. Limits to the Human Cancer Genome Project? , 2007, Science.
[42] N. Hayward,et al. Genome-wide loss of heterozygosity and copy number analysis in melanoma using high-density single-nucleotide polymorphism arrays. , 2007, Cancer research.
[43] K. Gish,et al. Candidate tumor-suppressor genes on chromosome arm 8p in early-onset and high-grade breast cancers , 2004, Oncogene.
[44] A. Wyllie,et al. Deletion mapping in colorectal cancer of a putative tumour suppressor gene in 8p22-p21.3. , 1993, Oncogene.
[45] F. Chan,et al. Alterations of frizzled (FzE3) and secreted frizzled related protein (hsFRP) expression in gastric cancer. , 2001, Life sciences.
[46] Y. Zhao,et al. The Novel Gene Locus for Agenesis of Permanent Teeth (He-Zhao deficiency) Maps to Chromosome 10q11.2 , 2001, Journal of dental research.
[47] K. Wakabayashi,et al. Concomitant suppression of hyperlipidemia and intestinal polyp formation by increasing lipoprotein lipase activity in Apc-deficient mice , 2006, Biological chemistry.
[48] Akira Kato,et al. Ventroptin: A BMP-4 Antagonist Expressed in a Double-Gradient Pattern in the Retina , 2001, Science.
[49] Y. Taketani,et al. Methylation‐associated silencing of the Wnt antagonist SFRP1 gene in human ovarian cancers , 2004, Cancer science.
[50] W. Chng. Limits to the Human Cancer Genome Project? , 2007, Science.
[51] Takayuki Fukui,et al. Transcriptional silencing of secreted frizzled related protein 1 (SFRP1) by promoter hypermethylation in non-small-cell lung cancer , 2005, Oncogene.
[52] J. Krieglstein,et al. Protein phosphatase type 2Cα and 2Cβ are involved in fatty acid-induced apoptosis of neuronal and endothelial cells , 2006, Apoptosis.
[53] T. Venesio,et al. Altered molecular pathways in melanocytic lesions , 2010, International journal of cancer.
[54] N. Hayward,et al. Identification of candidate tumor suppressor genes inactivated by promoter methylation in melanoma , 2009, Genes, chromosomes & cancer.
[55] O. Fodstad,et al. Identification of novel epigenetically modified genes in human melanoma via promoter methylation gene profiling , 2008, Pigment cell & melanoma research.
[56] J. Fridlyand,et al. Distinct sets of genetic alterations in melanoma. , 2005, The New England journal of medicine.
[57] K. Hoek,et al. Whole-genome expression profiling of the melanoma progression pathway reveals marked molecular differences between nevi/melanoma in situ and advanced-stage melanomas , 2005, Cancer biology & therapy.
[58] F. Rambow,et al. Identification of differentially expressed genes in spontaneously regressing melanoma using the MeLiM Swine Model , 2008, Pigment cell & melanoma research.
[59] Shu-Chun Lin,et al. Array‐comparative genomic hybridization to detect genomewide changes in microdissected primary and metastatic oral squamous cell carcinomas , 2006, Molecular carcinogenesis.
[60] J. Sosman,et al. Aberrant DNA methylation in malignant melanoma , 2010, Melanoma research.