4.8 Article

KnockTF: a comprehensive human gene expression profile database with knockdown/knockout of transcription factors

期刊

NUCLEIC ACIDS RESEARCH
卷 48, 期 D1, 页码 D93-D100

出版社

OXFORD UNIV PRESS
DOI: 10.1093/nar/gkz881

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资金

  1. National Natural Science Foundation of China [81572341, 61601150]
  2. National Science Foundation of Heilongjiang Province [YQ2019C013]
  3. Yu Weihan Outstanding Youth Training Fund of Harbin Medical University
  4. Wu Liande Youth Science Research Fund of Harbin Medical University (Daqing) [DQWLD201703]
  5. Scientific Research Fund of Harbin Medical University (Daqing) [DQXN201707]

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Transcription factors (TFs) and their target genes have important functions in human diseases and biological processes. Gene expression profile analysis before and after knockdown or knockout is one of the most important strategies for obtaining target genes of TFs and exploring TF functions. Human gene expression profile datasets with TF knockdown and knockout are accumulating rapidly. Based on the urgent need to comprehensively and effectively collect and process these data, we developed KnockTF (http://www.licpathway.net/KnockTF/index.html), a comprehensive human gene expression profile database of TF knockdown and knockout. KnockTF provides a number of resources for human gene expression profile datasets associated with TF knockdown and knockout and annotates TFs and their target genes in a tissue/cell type-specific manner. The current version of KnockTF has 570 manually curated RNA-seq and microarray datasets associated with 308 TFs disrupted by different knock-down and knockout techniques and across multiple tissue/cell types. KnockTF collects upstream pathway information of TFs and functional annotation results of downstream target genes. It provides details about TFs binding to promoters, super-enhancers and typical enhancers of target genes. KnockTF constructs a TF-differentially expressed gene network and performs network analyses for genes of interest. KnockTF will help elucidate TF-related functions and potential biological effects.

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