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A systems biological approach to identify key transcription factors and their genomic neighborhoods in human sarcomas 被引量:3

A systems biological approach to identify key transcription factors and their genomic neighborhoods in human sarcomas
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摘要 Identification of genetic signatures is the main objective for many computational oncology studies. The signature usually consists of numerous genes that are differentially expressed between two clinically distinct groups of samples, such as tumor subtypes. Prospectively, many signatures have been found to generalize poorly to other datasets and, thus, have rarely been accepted into clinical use. Recognizing the limited success of traditionally generated signatures, we developed a systems biology-based framework for robust identification of key transcription factors and their genomic regulatory neighborhoods. Application of the framework to study the differences between gastrointestinal stromal tumor (GIST) and leiomyosarcoma (LMS) resulted in the identification of nine transcription factors (SRF, NKX2-5, CCDC6, LEF1, VDR, ZNF250, TRIM63, MAF, and MYC). Functional annotations of the obtained neighborhoods identified the biological processes which the key transcription factors regulate differently between the tumor types. Analyzing the differences in the expression patterns using our approach resulted in a more robust genetic signature and more biological insight into the diseases compared to a traditional genetic signature. Identification of genetic signatures is the main objective for many computational oncology studies. The signature usually consists of numerous genes that are differentially expressed between two clinically distinct groups of samples, such as tumor subtypes. Prospectively, many signatures have been found to generalize poorly to other datasets and, thus, have rarely been accepted into clinical use. Recognizing the limited success of traditionally generated signatures, we developed a systems biology-based framework for robust identification of key transcription factors and their genomic regulatory neighborhoods. Application of the framework to study the differences between gastrointestinal stromal tumor (GIST) and leiomyosarcoma (LMS) resulted in the identification of nine transcription factors (SRF, NKX2-5, CCDC6, LEF1, VDR, ZNF250, TRIM63, MAF, and MYC). Functional annotations of the obtained neighborhoods identified the biological processes which the key transcription factors regulate differently between the tumor types. Analyzing the differences in the expression patterns using our approach resulted in a more robust genetic signature and more biological insight into the diseases compared to a traditional genetic signature.
出处 《Chinese Journal of Cancer》 SCIE CAS CSCD 北大核心 2011年第1期27-40,共14页
基金 supported by Project for the Biological Information and Information Processing Properties of Biological Systems from the Academy of Finland(No.122973) Project for the Structure-dynamics Relationships in Biological Network from the Academy of Finland(No.132877) Finnish Funding Agency for Technology and Innovation Finland Distinguished Professor program(No.1480/31/09)
关键词 转录因子 系统生物学 生物方法 肉瘤 居民区 基因组 人类 维生素D受体 Systems biology, transcription factor, gene regulation, binding motif, sarcoma
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