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Development and External Validation of Web-Based Models to Predict the Prognosis of Remnant Gastric Cancer after Surgery: A Multicenter Study

BACKGROUND: Remnant gastric cancer (RGC) is a rare malignant tumor with poor prognosis. There is no universally accepted prognostic model for RGC. METHODS: We analyzed data for 253 RGC patients who underwent radical gastrectomy from 6 centers. The prognosis prediction performances of the AJCC7th and...

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Autores principales: Chen, Qi-Yue, Zhong, Qing, Zhou, Jun-Feng, Qiu, Xian-Tu, Dang, Xue-Yi, Cai, Li-Sheng, Su, Guo-Qiang, Xu, Dong-Bo, Liu, Zhi-Yu, Li, Ping, Guo, Kai-Qing, Xie, Jian-Wei, Chen, Qiu-Xian, Wang, Jia-Bin, Li, Teng-Wen, Lin, Jian-Xian, Lin, Shuang-Ming, Lu, Jun, Cao, Long-Long, Lin, Mi, Tu, Ru-Hong, Huang, Ze-Ning, Lin, Ju-Li, Lin, Wei, He, Qing-Liang, Zheng, Chao-Hui, Huang, Chang-Ming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6481035/
https://www.ncbi.nlm.nih.gov/pubmed/31093283
http://dx.doi.org/10.1155/2019/6012826
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author Chen, Qi-Yue
Zhong, Qing
Zhou, Jun-Feng
Qiu, Xian-Tu
Dang, Xue-Yi
Cai, Li-Sheng
Su, Guo-Qiang
Xu, Dong-Bo
Liu, Zhi-Yu
Li, Ping
Guo, Kai-Qing
Xie, Jian-Wei
Chen, Qiu-Xian
Wang, Jia-Bin
Li, Teng-Wen
Lin, Jian-Xian
Lin, Shuang-Ming
Lu, Jun
Cao, Long-Long
Lin, Mi
Tu, Ru-Hong
Huang, Ze-Ning
Lin, Ju-Li
Lin, Wei
He, Qing-Liang
Zheng, Chao-Hui
Huang, Chang-Ming
author_facet Chen, Qi-Yue
Zhong, Qing
Zhou, Jun-Feng
Qiu, Xian-Tu
Dang, Xue-Yi
Cai, Li-Sheng
Su, Guo-Qiang
Xu, Dong-Bo
Liu, Zhi-Yu
Li, Ping
Guo, Kai-Qing
Xie, Jian-Wei
Chen, Qiu-Xian
Wang, Jia-Bin
Li, Teng-Wen
Lin, Jian-Xian
Lin, Shuang-Ming
Lu, Jun
Cao, Long-Long
Lin, Mi
Tu, Ru-Hong
Huang, Ze-Ning
Lin, Ju-Li
Lin, Wei
He, Qing-Liang
Zheng, Chao-Hui
Huang, Chang-Ming
author_sort Chen, Qi-Yue
collection PubMed
description BACKGROUND: Remnant gastric cancer (RGC) is a rare malignant tumor with poor prognosis. There is no universally accepted prognostic model for RGC. METHODS: We analyzed data for 253 RGC patients who underwent radical gastrectomy from 6 centers. The prognosis prediction performances of the AJCC7th and AJCC8th TNM staging systems and the TRM staging system for RGC patients were evaluated. Web-based prediction models based on independent prognostic factors were developed to predict the survival of the RGC patients. External validation was performed using a cohort of 49 Chinese patients. RESULTS: The predictive abilities of the AJCC8th and TRM staging systems were no better than those of the AJCC7th staging system (c-index: AJCC7th vs. AJCC8th vs. TRM, 0.743 vs. 0.732 vs. 0.744; P>0.05). Within each staging system, the survival of the two adjacent stages was not well discriminated (P>0.05). Multivariate analysis showed that age, tumor size, T stage, and N stage were independent prognostic factors. Based on the above variables, we developed 3 web-based prediction models, which were superior to the AJCC7th staging system in their discriminatory ability (c-index), predictive homogeneity (likelihood ratio chi-square), predictive accuracy (AIC, BIC), and model stability (time-dependent ROC curves). External validation showed predictable accuracies of 0.780, 0.822, and 0.700, respectively, in predicting overall survival, disease-specific survival, and disease-free survival. CONCLUSIONS: The AJCC TNM staging system and the TRM staging system did not enable good distinction among the RGC patients. We have developed and validated visual web-based prediction models that are superior to these staging systems.
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spelling pubmed-64810352019-05-15 Development and External Validation of Web-Based Models to Predict the Prognosis of Remnant Gastric Cancer after Surgery: A Multicenter Study Chen, Qi-Yue Zhong, Qing Zhou, Jun-Feng Qiu, Xian-Tu Dang, Xue-Yi Cai, Li-Sheng Su, Guo-Qiang Xu, Dong-Bo Liu, Zhi-Yu Li, Ping Guo, Kai-Qing Xie, Jian-Wei Chen, Qiu-Xian Wang, Jia-Bin Li, Teng-Wen Lin, Jian-Xian Lin, Shuang-Ming Lu, Jun Cao, Long-Long Lin, Mi Tu, Ru-Hong Huang, Ze-Ning Lin, Ju-Li Lin, Wei He, Qing-Liang Zheng, Chao-Hui Huang, Chang-Ming J Oncol Research Article BACKGROUND: Remnant gastric cancer (RGC) is a rare malignant tumor with poor prognosis. There is no universally accepted prognostic model for RGC. METHODS: We analyzed data for 253 RGC patients who underwent radical gastrectomy from 6 centers. The prognosis prediction performances of the AJCC7th and AJCC8th TNM staging systems and the TRM staging system for RGC patients were evaluated. Web-based prediction models based on independent prognostic factors were developed to predict the survival of the RGC patients. External validation was performed using a cohort of 49 Chinese patients. RESULTS: The predictive abilities of the AJCC8th and TRM staging systems were no better than those of the AJCC7th staging system (c-index: AJCC7th vs. AJCC8th vs. TRM, 0.743 vs. 0.732 vs. 0.744; P>0.05). Within each staging system, the survival of the two adjacent stages was not well discriminated (P>0.05). Multivariate analysis showed that age, tumor size, T stage, and N stage were independent prognostic factors. Based on the above variables, we developed 3 web-based prediction models, which were superior to the AJCC7th staging system in their discriminatory ability (c-index), predictive homogeneity (likelihood ratio chi-square), predictive accuracy (AIC, BIC), and model stability (time-dependent ROC curves). External validation showed predictable accuracies of 0.780, 0.822, and 0.700, respectively, in predicting overall survival, disease-specific survival, and disease-free survival. CONCLUSIONS: The AJCC TNM staging system and the TRM staging system did not enable good distinction among the RGC patients. We have developed and validated visual web-based prediction models that are superior to these staging systems. Hindawi 2019-04-10 /pmc/articles/PMC6481035/ /pubmed/31093283 http://dx.doi.org/10.1155/2019/6012826 Text en Copyright © 2019 Qi-Yue Chen et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Chen, Qi-Yue
Zhong, Qing
Zhou, Jun-Feng
Qiu, Xian-Tu
Dang, Xue-Yi
Cai, Li-Sheng
Su, Guo-Qiang
Xu, Dong-Bo
Liu, Zhi-Yu
Li, Ping
Guo, Kai-Qing
Xie, Jian-Wei
Chen, Qiu-Xian
Wang, Jia-Bin
Li, Teng-Wen
Lin, Jian-Xian
Lin, Shuang-Ming
Lu, Jun
Cao, Long-Long
Lin, Mi
Tu, Ru-Hong
Huang, Ze-Ning
Lin, Ju-Li
Lin, Wei
He, Qing-Liang
Zheng, Chao-Hui
Huang, Chang-Ming
Development and External Validation of Web-Based Models to Predict the Prognosis of Remnant Gastric Cancer after Surgery: A Multicenter Study
title Development and External Validation of Web-Based Models to Predict the Prognosis of Remnant Gastric Cancer after Surgery: A Multicenter Study
title_full Development and External Validation of Web-Based Models to Predict the Prognosis of Remnant Gastric Cancer after Surgery: A Multicenter Study
title_fullStr Development and External Validation of Web-Based Models to Predict the Prognosis of Remnant Gastric Cancer after Surgery: A Multicenter Study
title_full_unstemmed Development and External Validation of Web-Based Models to Predict the Prognosis of Remnant Gastric Cancer after Surgery: A Multicenter Study
title_short Development and External Validation of Web-Based Models to Predict the Prognosis of Remnant Gastric Cancer after Surgery: A Multicenter Study
title_sort development and external validation of web-based models to predict the prognosis of remnant gastric cancer after surgery: a multicenter study
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6481035/
https://www.ncbi.nlm.nih.gov/pubmed/31093283
http://dx.doi.org/10.1155/2019/6012826
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