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LncRNA-screen: an interactive platform for computationally screening long non-coding RNAs in large genomics datasets.


ABSTRACT: Long non-coding RNAs (lncRNAs) have emerged as a class of factors that are important for regulating development and cancer. Computational prediction of lncRNAs from ultra-deep RNA sequencing has been successful in identifying candidate lncRNAs. However, the complexity of handling and integrating different types of genomics data poses significant challenges to experimental laboratories that lack extensive genomics expertise.To address this issue, we have developed lncRNA-screen, a comprehensive pipeline for computationally screening putative lncRNA transcripts over large multimodal datasets. The main objective of this work is to facilitate the computational discovery of lncRNA candidates to be further examined by functional experiments. lncRNA-screen provides a fully automated easy-to-run pipeline which performs data download, RNA-seq alignment, assembly, quality assessment, transcript filtration, novel lncRNA identification, coding potential estimation, expression level quantification, histone mark enrichment profile integration, differential expression analysis, annotation with other type of segmented data (CNVs, SNPs, Hi-C, etc.) and visualization. Importantly, lncRNA-screen generates an interactive report summarizing all interesting lncRNA features including genome browser snapshots and lncRNA-mRNA interactions based on Hi-C data.lncRNA-screen provides a comprehensive solution for lncRNA discovery and an intuitive interactive report for identifying promising lncRNA candidates. lncRNA-screen is available as open-source software on GitHub.

SUBMITTER: Gong Y 

PROVIDER: S-EPMC5458484 | biostudies-other | 2017 Jun

REPOSITORIES: biostudies-other

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lncRNA-screen: an interactive platform for computationally screening long non-coding RNAs in large genomics datasets.

Gong Yixiao Y   Huang Hsuan-Ting HT   Liang Yu Y   Trimarchi Thomas T   Aifantis Iannis I   Tsirigos Aristotelis A  

BMC genomics 20170605 1


<h4>Background</h4>Long non-coding RNAs (lncRNAs) have emerged as a class of factors that are important for regulating development and cancer. Computational prediction of lncRNAs from ultra-deep RNA sequencing has been successful in identifying candidate lncRNAs. However, the complexity of handling and integrating different types of genomics data poses significant challenges to experimental laboratories that lack extensive genomics expertise.<h4>Result</h4>To address this issue, we have develope  ...[more]

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