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Establishing and validating a pathway prognostic signature in pancreatic cancer based on miRNA and mRNA sets using GSVA

Pancreatic cancer (PC) is a severe disease with the highest mortality rate among various cancers. It is urgent to find an effective and accurate way to predict the survival of PC patients. Gene set variation analysis (GSVA) was used to establish and validate a miRNA set-based pathway prognostic sign...

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Autores principales: Zhang, Junfeng, Gu, Jianyou, Guo, Shixiang, Huang, Wenjie, Zheng, Yao, Wang, Xianxing, Zhang, Tao, Zhao, Weibo, Ni, Bing, Fan, Yingfang, Wang, Huaizhi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7746356/
https://www.ncbi.nlm.nih.gov/pubmed/33197892
http://dx.doi.org/10.18632/aging.103965
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author Zhang, Junfeng
Gu, Jianyou
Guo, Shixiang
Huang, Wenjie
Zheng, Yao
Wang, Xianxing
Zhang, Tao
Zhao, Weibo
Ni, Bing
Fan, Yingfang
Wang, Huaizhi
author_facet Zhang, Junfeng
Gu, Jianyou
Guo, Shixiang
Huang, Wenjie
Zheng, Yao
Wang, Xianxing
Zhang, Tao
Zhao, Weibo
Ni, Bing
Fan, Yingfang
Wang, Huaizhi
author_sort Zhang, Junfeng
collection PubMed
description Pancreatic cancer (PC) is a severe disease with the highest mortality rate among various cancers. It is urgent to find an effective and accurate way to predict the survival of PC patients. Gene set variation analysis (GSVA) was used to establish and validate a miRNA set-based pathway prognostic signature for PC (miPPSPC) and a mRNA set-based pathway prognostic signature for PC (mPPSPC) in independent datasets. An optimized miPPSPC was constructed by combining clinical parameters. The miPPSPC, optimized miPPSPC and mPPSPC were established and validated to predict the survival of PC patients and showed excellent predictive ability. Four metabolic pathways and one oxidative stress pathway were identified in the miPPSPC, whereas linoleic acid metabolism and the pentose phosphate pathway were identified in the mPPSPC. Key factors of the pentose phosphate pathway and linoleic acid metabolism, G6PD and CYP2C8/9/18/19, respectively, are related to the survival of PC patients according to our tissue microarray. Thus, the miPPSPC, optimized miPPSPC and mPPSPC can predict the survival of PC patients efficiently and precisely. The metabolic and oxidative stress pathways may participate in PC progression.
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spelling pubmed-77463562021-01-04 Establishing and validating a pathway prognostic signature in pancreatic cancer based on miRNA and mRNA sets using GSVA Zhang, Junfeng Gu, Jianyou Guo, Shixiang Huang, Wenjie Zheng, Yao Wang, Xianxing Zhang, Tao Zhao, Weibo Ni, Bing Fan, Yingfang Wang, Huaizhi Aging (Albany NY) Research Paper Pancreatic cancer (PC) is a severe disease with the highest mortality rate among various cancers. It is urgent to find an effective and accurate way to predict the survival of PC patients. Gene set variation analysis (GSVA) was used to establish and validate a miRNA set-based pathway prognostic signature for PC (miPPSPC) and a mRNA set-based pathway prognostic signature for PC (mPPSPC) in independent datasets. An optimized miPPSPC was constructed by combining clinical parameters. The miPPSPC, optimized miPPSPC and mPPSPC were established and validated to predict the survival of PC patients and showed excellent predictive ability. Four metabolic pathways and one oxidative stress pathway were identified in the miPPSPC, whereas linoleic acid metabolism and the pentose phosphate pathway were identified in the mPPSPC. Key factors of the pentose phosphate pathway and linoleic acid metabolism, G6PD and CYP2C8/9/18/19, respectively, are related to the survival of PC patients according to our tissue microarray. Thus, the miPPSPC, optimized miPPSPC and mPPSPC can predict the survival of PC patients efficiently and precisely. The metabolic and oxidative stress pathways may participate in PC progression. Impact Journals 2020-11-10 /pmc/articles/PMC7746356/ /pubmed/33197892 http://dx.doi.org/10.18632/aging.103965 Text en Copyright: © 2020 Zhang et al. https://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/3.0/) (CC BY 3.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Zhang, Junfeng
Gu, Jianyou
Guo, Shixiang
Huang, Wenjie
Zheng, Yao
Wang, Xianxing
Zhang, Tao
Zhao, Weibo
Ni, Bing
Fan, Yingfang
Wang, Huaizhi
Establishing and validating a pathway prognostic signature in pancreatic cancer based on miRNA and mRNA sets using GSVA
title Establishing and validating a pathway prognostic signature in pancreatic cancer based on miRNA and mRNA sets using GSVA
title_full Establishing and validating a pathway prognostic signature in pancreatic cancer based on miRNA and mRNA sets using GSVA
title_fullStr Establishing and validating a pathway prognostic signature in pancreatic cancer based on miRNA and mRNA sets using GSVA
title_full_unstemmed Establishing and validating a pathway prognostic signature in pancreatic cancer based on miRNA and mRNA sets using GSVA
title_short Establishing and validating a pathway prognostic signature in pancreatic cancer based on miRNA and mRNA sets using GSVA
title_sort establishing and validating a pathway prognostic signature in pancreatic cancer based on mirna and mrna sets using gsva
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7746356/
https://www.ncbi.nlm.nih.gov/pubmed/33197892
http://dx.doi.org/10.18632/aging.103965
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