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A novel molecular-clinicopathologic nomogram to improve prognosis prediction of hepatocellular carcinoma

Background: Emerging evidence suggests that long non-coding RNA (lncRNA) plays a crucial part in the development and progress of hepatocellular carcinoma (HCC). The objective was to develop novel molecular-clinicopathological prediction methods for overall survival (OS) and recurrence of HCC. Result...

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Autores principales: Zhang, Zhongjing, Weng, Wanqing, Huang, Weiguo, Wu, Boda, Zhou, Yi, Zhang, Jie, Deng, Tuo, Ye, Wen, Zhang, Jiecheng, Ao, Jianyang, Zhang, Qiyu, Shi, Keqing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7377850/
https://www.ncbi.nlm.nih.gov/pubmed/32611831
http://dx.doi.org/10.18632/aging.103350
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author Zhang, Zhongjing
Weng, Wanqing
Huang, Weiguo
Wu, Boda
Zhou, Yi
Zhang, Jie
Deng, Tuo
Ye, Wen
Zhang, Jiecheng
Ao, Jianyang
Zhang, Qiyu
Shi, Keqing
author_facet Zhang, Zhongjing
Weng, Wanqing
Huang, Weiguo
Wu, Boda
Zhou, Yi
Zhang, Jie
Deng, Tuo
Ye, Wen
Zhang, Jiecheng
Ao, Jianyang
Zhang, Qiyu
Shi, Keqing
author_sort Zhang, Zhongjing
collection PubMed
description Background: Emerging evidence suggests that long non-coding RNA (lncRNA) plays a crucial part in the development and progress of hepatocellular carcinoma (HCC). The objective was to develop novel molecular-clinicopathological prediction methods for overall survival (OS) and recurrence of HCC. Results: An 8-lncRNA-based classifier for OS and a 14-lncRNA-based classifier for recurrence were developed by LASSO COX regression analysis, both of which had high accuracy. The tdROC of OS-nomogram and recurrence-nomogram indicates the satisfactory accuracy and predictive power. The classifiers and nomograms for predicting OS and recurrence of HCC were validated in the Test and GEO cohorts. Conclusions: These two lncRNA-based classifiers could be independent prognostic factors for OS and recurrence. The molecule-clinicopathological nomograms based on the classifiers could increase the prognostic value. Methods: HCC lncRNA expression profiles from the cancer genome atlas (TCGA) were randomly divided into 1:1 training and test cohorts. Based on least absolute shrinkage and selection operator method (LASSO) COX regression model, lncRNA-based classifiers were established to predict OS and recurrence, respectively. OS-nomogram and recurrence-nomogram were developed by combining lncRNA-based classifiers and clinicopathological characterization to predict OS and recurrence, respectively. The prognostic value was accessed by the time-dependent receiver operating characteristic (tdROC) and the concordance index (C-index).
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spelling pubmed-73778502020-07-31 A novel molecular-clinicopathologic nomogram to improve prognosis prediction of hepatocellular carcinoma Zhang, Zhongjing Weng, Wanqing Huang, Weiguo Wu, Boda Zhou, Yi Zhang, Jie Deng, Tuo Ye, Wen Zhang, Jiecheng Ao, Jianyang Zhang, Qiyu Shi, Keqing Aging (Albany NY) Research Paper Background: Emerging evidence suggests that long non-coding RNA (lncRNA) plays a crucial part in the development and progress of hepatocellular carcinoma (HCC). The objective was to develop novel molecular-clinicopathological prediction methods for overall survival (OS) and recurrence of HCC. Results: An 8-lncRNA-based classifier for OS and a 14-lncRNA-based classifier for recurrence were developed by LASSO COX regression analysis, both of which had high accuracy. The tdROC of OS-nomogram and recurrence-nomogram indicates the satisfactory accuracy and predictive power. The classifiers and nomograms for predicting OS and recurrence of HCC were validated in the Test and GEO cohorts. Conclusions: These two lncRNA-based classifiers could be independent prognostic factors for OS and recurrence. The molecule-clinicopathological nomograms based on the classifiers could increase the prognostic value. Methods: HCC lncRNA expression profiles from the cancer genome atlas (TCGA) were randomly divided into 1:1 training and test cohorts. Based on least absolute shrinkage and selection operator method (LASSO) COX regression model, lncRNA-based classifiers were established to predict OS and recurrence, respectively. OS-nomogram and recurrence-nomogram were developed by combining lncRNA-based classifiers and clinicopathological characterization to predict OS and recurrence, respectively. The prognostic value was accessed by the time-dependent receiver operating characteristic (tdROC) and the concordance index (C-index). Impact Journals 2020-06-30 /pmc/articles/PMC7377850/ /pubmed/32611831 http://dx.doi.org/10.18632/aging.103350 Text en Copyright © 2020 Zhang et al. http://creativecommons.org/licenses/by/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (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, Zhongjing
Weng, Wanqing
Huang, Weiguo
Wu, Boda
Zhou, Yi
Zhang, Jie
Deng, Tuo
Ye, Wen
Zhang, Jiecheng
Ao, Jianyang
Zhang, Qiyu
Shi, Keqing
A novel molecular-clinicopathologic nomogram to improve prognosis prediction of hepatocellular carcinoma
title A novel molecular-clinicopathologic nomogram to improve prognosis prediction of hepatocellular carcinoma
title_full A novel molecular-clinicopathologic nomogram to improve prognosis prediction of hepatocellular carcinoma
title_fullStr A novel molecular-clinicopathologic nomogram to improve prognosis prediction of hepatocellular carcinoma
title_full_unstemmed A novel molecular-clinicopathologic nomogram to improve prognosis prediction of hepatocellular carcinoma
title_short A novel molecular-clinicopathologic nomogram to improve prognosis prediction of hepatocellular carcinoma
title_sort novel molecular-clinicopathologic nomogram to improve prognosis prediction of hepatocellular carcinoma
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7377850/
https://www.ncbi.nlm.nih.gov/pubmed/32611831
http://dx.doi.org/10.18632/aging.103350
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