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Identification of prognostic splicing factors and exploration of their potential regulatory mechanisms in pancreatic adenocarcinoma.


ABSTRACT: Pancreatic adenocarcinoma (PAAD), the most common subtype of pancreatic cancer, is a highly lethal disease. In this study, we integrated the expression profiles of splicing factors (SFs) of PAAD from RNA-sequencing data to provide a comprehensive view of the clinical significance of SFs. A prognostic index (PI) based on SFs was developed using the least absolute shrinkage and selection operator (LASSO) COX analysis. The PI exhibited excellent performance in predicting the status of overall survival of PAAD patients. We also used the percent spliced in (PSI) value obtained from SpliceSeq software to quantify different types of alternative splicing (AS). The prognostic value of AS events was explored using univariate COX and LASSO COX analyses; AS-based PIs were also proposed. The integration of prognosis-associated SFs and AS events suggested the potential regulatory mechanisms of splicing processes in PAAD. This study defined the markedly clinical significance of SFs and provided novel insight into their potential regulatory mechanisms.

SUBMITTER: Rong MH 

PROVIDER: S-EPMC7020824 | biostudies-literature | 2020

REPOSITORIES: biostudies-literature

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Identification of prognostic splicing factors and exploration of their potential regulatory mechanisms in pancreatic adenocarcinoma.

Rong Min-Hua MH   Zhu Zhan-Hui ZH   Guan Ying Y   Li Mei-Wei MW   Zheng Jia-Shuo JS   Huang Yue-Qi YQ   Wei Dan-Ming DM   Li Ying-Mei YM   Wu Xiao-Ju XJ   Bu Hui-Ping HP   Peng Hui-Liu HL   Wei Xiao-Lin XL   Li Guo-Sheng GS   Li Ming-Xuan MX   Chen Ming-Hui MH   Huang Su-Ning SN  

PeerJ 20200211


Pancreatic adenocarcinoma (PAAD), the most common subtype of pancreatic cancer, is a highly lethal disease. In this study, we integrated the expression profiles of splicing factors (SFs) of PAAD from RNA-sequencing data to provide a comprehensive view of the clinical significance of SFs. A prognostic index (PI) based on SFs was developed using the least absolute shrinkage and selection operator (LASSO) COX analysis. The PI exhibited excellent performance in predicting the status of overall survi  ...[more]

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