Guilt by rewiring: gene prioritization through network rewiring in genome wide association studies.
暂无分享,去创建一个
[1] Y. Moreau,et al. Computational tools for prioritizing candidate genes: boosting disease gene discovery , 2012, Nature Reviews Genetics.
[2] Christian Gieger,et al. Combined analysis of genome-wide association studies for Crohn disease and psoriasis identifies seven shared susceptibility loci. , 2012, American journal of human genetics.
[3] Eden R Martin,et al. Meta‐analysis of Parkinson's Disease: Identification of a novel locus, RIT2 , 2012, Annals of neurology.
[4] Jennifer Mulle,et al. A Genome-Wide Scan of Ashkenazi Jewish Crohn's Disease Suggests Novel Susceptibility Loci , 2012, PLoS genetics.
[5] Chuong B. Do,et al. Comprehensive Research Synopsis and Systematic Meta-Analyses in Parkinson's Disease Genetics: The PDGene Database , 2012, PLoS genetics.
[6] T. Ideker,et al. Differential network biology , 2012, Molecular systems biology.
[7] Xiaoli Li,et al. Inferring Gene-Phenotype Associations via Global Protein Complex Network Propagation , 2011, PloS one.
[8] E. Marcotte,et al. Prioritizing candidate disease genes by network-based boosting of genome-wide association data. , 2011, Genome research.
[9] Simon C. Potter,et al. A Two-Stage Meta-Analysis Identifies Several New Loci for Parkinson's Disease , 2011, PLoS genetics.
[10] Judy H. Cho,et al. Incorporating Biological Pathways via a Markov Random Field Model in Genome-Wide Association Studies , 2011, PLoS genetics.
[11] M. Daly,et al. Proteins Encoded in Genomic Regions Associated with Immune-Mediated Disease Physically Interact and Suggest Underlying Biology , 2011, PLoS genetics.
[12] Sourav Bandyopadhyay,et al. Rewiring of Genetic Networks in Response to DNA Damage , 2010, Science.
[13] Tariq Ahmad,et al. Genome-wide meta-analysis increases to 71 the number of confirmed Crohn's disease susceptibility loci , 2010, Nature Genetics.
[14] Dennis B. Troup,et al. NCBI GEO: archive for functional genomics data sets—10 years on , 2010, Nucleic Acids Res..
[15] Jack Satsangi,et al. Characterization of intestinal gene expression profiles in Crohn's disease by genome‐wide microarray analysis , 2010, Inflammatory bowel diseases.
[16] Judy H. Cho,et al. Pathway analysis comparison using Crohn's disease genome wide association studies , 2010, BMC Medical Genomics.
[17] Judy H. Cho,et al. Comparisons of multi‐marker association methods to detect association between a candidate region and disease , 2010, Genetic epidemiology.
[18] Roded Sharan,et al. Associating Genes and Protein Complexes with Disease via Network Propagation , 2010, PLoS Comput. Biol..
[19] Abbreviations , 2009, Genomic and Personalized Medicine.
[20] A. Singleton,et al. Genomewide association studies and human disease. , 2009, The New England journal of medicine.
[21] D. Goldstein. Common genetic variation and human traits. , 2009, The New England journal of medicine.
[22] Sonja W. Scholz,et al. Genome-Wide Association Study reveals genetic risk underlying Parkinson’s disease , 2009, Nature Genetics.
[23] Peilin Jia,et al. A multi-dimensional evidence-based candidate gene prioritization approach for complex diseases-schizophrenia as a case , 2009, Bioinform..
[24] F. Collins,et al. Potential etiologic and functional implications of genome-wide association loci for human diseases and traits , 2009, Proceedings of the National Academy of Sciences.
[25] Jing Chen,et al. ToppGene Suite for gene list enrichment analysis and candidate gene prioritization , 2009, Nucleic Acids Res..
[26] Antonio Reverter,et al. A Differential Wiring Analysis of Expression Data Correctly Identifies the Gene Containing the Causal Mutation , 2009, PLoS Comput. Biol..
[27] David Warde-Farley,et al. Dynamic modularity in protein interaction networks predicts breast cancer outcome , 2009, Nature Biotechnology.
[28] Xing Qiu,et al. Detecting intergene correlation changes in microarray analysis: a new approach to gene selection , 2009, BMC Bioinformatics.
[29] Lincoln Stein,et al. Reactome knowledgebase of human biological pathways and processes , 2008, Nucleic Acids Res..
[30] N. Schork,et al. Pathway analysis of seven common diseases assessed by genome-wide association. , 2008, Genomics.
[31] Scott F. Saccone,et al. Systematic biological prioritization after a genome-wide association study: an application to nicotine dependence , 2008, Bioinform..
[32] Michael Q. Zhang,et al. Network-based global inference of human disease genes , 2008, Molecular systems biology.
[33] Francis S Collins,et al. A HapMap harvest of insights into the genetics of common disease. , 2008, The Journal of clinical investigation.
[34] Judy H Cho,et al. Genome-wide association study identifies new susceptibility loci for Crohn disease and implicates autophagy in disease pathogenesis , 2007, Nature Genetics.
[35] M. Oti,et al. The modular nature of genetic diseases , 2006, Clinical genetics.
[36] C. Wijmenga,et al. Reconstruction of a functional human gene network, with an application for prioritizing positional candidate genes. , 2006, American journal of human genetics.
[37] L. Moran,et al. Whole genome expression profiling of the medial and lateral substantia nigra in Parkinson’s disease , 2006, Neurogenetics.
[38] M. Gerstein,et al. Genomic analysis of regulatory network dynamics reveals large topological changes , 2004, Nature.
[39] T. Macdonald,et al. Blocking Smad7 restores TGF-beta1 signaling in chronic inflammatory bowel disease. , 2001, The Journal of clinical investigation.
[40] Ji Ming Wang,et al. β-Defensins: Linking Innate and Adaptive Immunity Through Dendritic and T Cell CCR6 , 1999 .
[41] A. Roberts,et al. Targeted disruption of SMAD3 results in impaired mucosal immunity and diminished T cell responsiveness to TGF‐β , 1999, The EMBO journal.
[42] R. Quatrano. Genomics , 1998, Plant Cell.
[43] J. Besag. On the Statistical Analysis of Dirty Pictures , 1986 .
[44] Judy H. Cho. Host-microbe interactions have shaped the genetic architecture of inflammatory bowel disease , 2016 .
[45] J. Shogan,et al. Beta-defensins: linking innate and adaptive immunity through dendritic and T cell CCR6. , 1999, Science.