GeneAnalytics: An Integrative Gene Set Analysis Tool for Next Generation Sequencing, RNAseq and Microarray Data

被引:189
作者
Ben-Ari Fuchs, Shani [1 ]
Lieder, Iris [1 ]
Stelzer, Gil [1 ,2 ]
Mazor, Yaron [1 ]
Buzhor, Ella [3 ]
Kaplan, Sergey [1 ]
Bogoch, Yoel [4 ]
Plaschkes, Inbar [1 ]
Shitrit, Alina [2 ]
Rappaport, Noa [2 ]
Kohn, Asher [5 ]
Edgar, Ron [6 ]
Shenhav, Liraz [1 ]
Safran, Marilyn [2 ]
Lancet, Doron [2 ]
Guan-Golan, Yaron [5 ]
Warshawsky, David [5 ]
Shtrichman, Ronit [7 ]
机构
[1] LifeMap Sci Ltd, Tel Aviv, Israel
[2] Weizmann Inst Sci, Mol Genet, Herzl St 234, IL-7610001 Rehovot, Israel
[3] Sheba Med Ctr, Inst Oncol, Tel Hashomer, Israel
[4] Sourasky Med Ctr, Dept Surg, Tel Aviv, Israel
[5] LifeMap Sci Inc, Marshfield, MA USA
[6] Venividi Solut LLC, Rockville, MD USA
[7] Bonus BioGrp Ltd, Haifa, Israel
关键词
KNOWLEDGEBASE; VISUALIZATION; INFORMATION; ANNOTATION; EXPRESSION; GENECARDS; ONLINE; LISTS;
D O I
10.1089/omi.2015.0168
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 [微生物学]; 090105 [作物生产系统与生态工程];
摘要
Postgenomics data are produced in large volumes by life sciences and clinical applications of novel omics diagnostics and therapeutics for precision medicine. To move from "data-to-knowledge-to-innovation," a crucial missing step in the current era is, however, our limited understanding of biological and clinical contexts associated with data. Prominent among the emerging remedies to this challenge are the gene set enrichment tools. This study reports on GeneAnalytics (TM) (geneanalytics.genecards.org), a comprehensive and easy-to-apply gene set analysis tool for rapid contextualization of expression patterns and functional signatures embedded in the postgenomics Big Data domains, such as Next Generation Sequencing (NGS), RNAseq, and microarray experiments. GeneAnalytics' differentiating features include in-depth evidence-based scoring algorithms, an intuitive user interface and proprietary unified data. GeneAnalytics employs the LifeMap Science's GeneCards suite, including the GeneCards (R)-the human gene database; the MalaCards-the human diseases database; and the PathCards-the biological pathways database. Expression-based analysis in GeneAnalytics relies on the LifeMap Discovery (R)-the embryonic development and stem cells database, which includes manually curated expression data for normal and diseased tissues, enabling advanced matching algorithm for gene-tissue association. This assists in evaluating differentiation protocols and discovering biomarkers for tissues and cells. Results are directly linked to gene, disease, or cell "cards" in the GeneCards suite. Future developments aim to enhance the GeneAnalytics algorithm as well as visualizations, employing varied graphical display items. Such attributes make GeneAnalytics a broadly applicable postgenomics data analyses and interpretation tool for translation of data to knowledge-based innovation in various Big Data fields such as precision medicine, ecogenomics, nutrigenomics, pharmacogenomics, vaccinomics, and others yet to emerge on the postgenomics horizon.
引用
收藏
页码:139 / 151
页数:13
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