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Nomograms Combining PHI and PI-RADS in Detecting Prostate Cancer: A Multicenter Prospective Study

(1) Background: The study aimed to construct nomograms to improve the detection rates of prostate cancer (PCa) and clinically significant prostate cancer (CSPCa) in the Asian population. (2) Methods: This multicenter prospective study included a group of 293 patients from three hospitals. Univariabl...

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Autores principales: Zhou, Yongheng, Fu, Qiang, Shao, Zhiqiang, Zhang, Keqin, Qi, Wenqiang, Geng, Shangzhen, Wang, Wenfu, Cui, Jianfeng, Jiang, Xin, Li, Rongyang, Zhu, Yaofeng, Chen, Shouzhen, Shi, Benkang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9821430/
https://www.ncbi.nlm.nih.gov/pubmed/36615138
http://dx.doi.org/10.3390/jcm12010339
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author Zhou, Yongheng
Fu, Qiang
Shao, Zhiqiang
Zhang, Keqin
Qi, Wenqiang
Geng, Shangzhen
Wang, Wenfu
Cui, Jianfeng
Jiang, Xin
Li, Rongyang
Zhu, Yaofeng
Chen, Shouzhen
Shi, Benkang
author_facet Zhou, Yongheng
Fu, Qiang
Shao, Zhiqiang
Zhang, Keqin
Qi, Wenqiang
Geng, Shangzhen
Wang, Wenfu
Cui, Jianfeng
Jiang, Xin
Li, Rongyang
Zhu, Yaofeng
Chen, Shouzhen
Shi, Benkang
author_sort Zhou, Yongheng
collection PubMed
description (1) Background: The study aimed to construct nomograms to improve the detection rates of prostate cancer (PCa) and clinically significant prostate cancer (CSPCa) in the Asian population. (2) Methods: This multicenter prospective study included a group of 293 patients from three hospitals. Univariable and multivariable logistic regression analysis was performed to identify potential risk factors and construct nomograms. Discrimination, calibration, and clinical utility were used to assess the performance of the nomogram. The web-based dynamic nomograms were subsequently built based on multivariable logistic analysis. (3) Results: A total of 293 patients were included in our study with 201 negative and 92 positive results in PCa. Four independent predictive factors (age, prostate health index (PHI), prostate volume, and prostate imaging reporting and data system score (PI-RADS)) for PCa were included, and four factors (age, PHI, PI-RADS, and Log PSA Density) for CSPCa were included. The area under the ROC curve (AUC) for PCa was 0.902 in the training cohort and 0.869 in the validation cohort. The AUC for CSPCa was 0.896 in the training cohort and 0.890 in the validation cohort. (4) Conclusions: The combined diagnosis of PHI and PI-RADS can avoid more unnecessary biopsies and improve the detection rate of PCa and CSPCa. The nomogram with the combination of age, PHI, PV, and PI-RADS could improve the detection of PCa, and the nomogram with the combination of age, PHI, PI-RADS, and Log PSAD could improve the detection of CSPCa.
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spelling pubmed-98214302023-01-07 Nomograms Combining PHI and PI-RADS in Detecting Prostate Cancer: A Multicenter Prospective Study Zhou, Yongheng Fu, Qiang Shao, Zhiqiang Zhang, Keqin Qi, Wenqiang Geng, Shangzhen Wang, Wenfu Cui, Jianfeng Jiang, Xin Li, Rongyang Zhu, Yaofeng Chen, Shouzhen Shi, Benkang J Clin Med Article (1) Background: The study aimed to construct nomograms to improve the detection rates of prostate cancer (PCa) and clinically significant prostate cancer (CSPCa) in the Asian population. (2) Methods: This multicenter prospective study included a group of 293 patients from three hospitals. Univariable and multivariable logistic regression analysis was performed to identify potential risk factors and construct nomograms. Discrimination, calibration, and clinical utility were used to assess the performance of the nomogram. The web-based dynamic nomograms were subsequently built based on multivariable logistic analysis. (3) Results: A total of 293 patients were included in our study with 201 negative and 92 positive results in PCa. Four independent predictive factors (age, prostate health index (PHI), prostate volume, and prostate imaging reporting and data system score (PI-RADS)) for PCa were included, and four factors (age, PHI, PI-RADS, and Log PSA Density) for CSPCa were included. The area under the ROC curve (AUC) for PCa was 0.902 in the training cohort and 0.869 in the validation cohort. The AUC for CSPCa was 0.896 in the training cohort and 0.890 in the validation cohort. (4) Conclusions: The combined diagnosis of PHI and PI-RADS can avoid more unnecessary biopsies and improve the detection rate of PCa and CSPCa. The nomogram with the combination of age, PHI, PV, and PI-RADS could improve the detection of PCa, and the nomogram with the combination of age, PHI, PI-RADS, and Log PSAD could improve the detection of CSPCa. MDPI 2023-01-01 /pmc/articles/PMC9821430/ /pubmed/36615138 http://dx.doi.org/10.3390/jcm12010339 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhou, Yongheng
Fu, Qiang
Shao, Zhiqiang
Zhang, Keqin
Qi, Wenqiang
Geng, Shangzhen
Wang, Wenfu
Cui, Jianfeng
Jiang, Xin
Li, Rongyang
Zhu, Yaofeng
Chen, Shouzhen
Shi, Benkang
Nomograms Combining PHI and PI-RADS in Detecting Prostate Cancer: A Multicenter Prospective Study
title Nomograms Combining PHI and PI-RADS in Detecting Prostate Cancer: A Multicenter Prospective Study
title_full Nomograms Combining PHI and PI-RADS in Detecting Prostate Cancer: A Multicenter Prospective Study
title_fullStr Nomograms Combining PHI and PI-RADS in Detecting Prostate Cancer: A Multicenter Prospective Study
title_full_unstemmed Nomograms Combining PHI and PI-RADS in Detecting Prostate Cancer: A Multicenter Prospective Study
title_short Nomograms Combining PHI and PI-RADS in Detecting Prostate Cancer: A Multicenter Prospective Study
title_sort nomograms combining phi and pi-rads in detecting prostate cancer: a multicenter prospective study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9821430/
https://www.ncbi.nlm.nih.gov/pubmed/36615138
http://dx.doi.org/10.3390/jcm12010339
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