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GOMA:functional enrichment analysis tool based on GO modules
  • ISSN号:1000-467X
  • 期刊名称:《癌症:英文版》
  • 分类:R73[医药卫生—肿瘤;医药卫生—临床医学]
  • 作者机构:[1]National Center for Mathematics and Interdisciplinary Sciences, Institute of Applied Mathematics, Academy of Mathematics and Systems Science, Chinese Academy of Sciences
  • 相关基金:supported by grants from the National Natural Science Foundation of China(No.60970091, 61171007, 11131009)
中文摘要:

Analyzing the function of gene sets is a critical step in interpreting the results of high-throughput experiments in systems biology. A variety of enrichment analysis tools have been developed in recent years, but most output a long list of significantly enriched terms that are often redundant, making it difficult to extract the most meaningful functions. In this paper, we present GOMA, a novel enrichment analysis method based on the new concept of enriched functional Gene Ontology (GO) modules. With this method, we systematically revealed functional GO modules, i.e., groups of functionally similar GO terms, via an optimization model and then ranked them by enrichment scores. Our new method simplifies enrichment analysis results by reducing redundancy, thereby preventing inconsistent enrichment results among functionally similar terms and providing more biologically meaningful results.

英文摘要:

Analyzing the function of gene sets is a critical step in interpreting the results of high-throughput experiments in systems biology. A variety of enrichment analysis tools have been developed in recent years, but most output a long list of significantly enriched terms that are often redundant, making it difficult to extract the most meaningful functions. In this paper, we present GOMA, a novel enrichment analysis method based on the new concept of enriched functional Gene Ontology (GO) modules. With this method, we systematically revealed functional GO modules, i.e., groups of functionally similar GO terms, via an optimization model and then ranked them by enrichment scores. Our new method simplifies enrichment analysis results by reducing redundancy, thereby preventing inconsistent enrichment results among functionally similar terms and providing more biologically meaningful results.

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期刊信息
  • 《癌症:英文版》
  • 北大核心期刊(2008版)
  • 主管单位:教育部
  • 主办单位:中山大学肿瘤防治中心
  • 主编:曾益新
  • 地址:中国广州市东风东路651号
  • 邮编:510060
  • 邮箱:cjc@cjcsysu.cn
  • 电话:020-87345651
  • 国际标准刊号:ISSN:1000-467X
  • 国内统一刊号:ISSN:44-1195/R
  • 邮发代号:46-21
  • 获奖情况:
  • 广东省优秀期刊鼓励奖,1991年,2009、2010、2011年百杰期刊,2011-2014年RCCSE中国权威期刊,2012年中国国际影响力优秀学术期刊
  • 国内外数据库收录:
  • 美国化学文摘(网络版),荷兰文摘与引文数据库,荷兰医学文摘,美国生物医学检索系统,美国剑桥科学文摘,美国科学引文索引(扩展库),日本日本科学技术振兴机构数据库,中国中国科技核心期刊,中国北大核心期刊(2004版),中国北大核心期刊(2008版),瑞典开放获取期刊指南,中国北大核心期刊(2000版)
  • 被引量:30766