A patient-oriented clinical decision support system for CRC risk assessment and preventative care

Abstract Background Colorectal Cancer (CRC) is the third leading cause of cancer death among men and women in the United States. Research has shown that the risk of CRC associates with genetic and lifestyle factors. It is possible to prevent or minimize certain CRC risks by adopting a healthy lifest...

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Main Authors: Jiannan Liu, Chenyang Li, Jing Xu, Huanmei Wu
Format: Article
Language:English
Published: BMC 2018-12-01
Series:BMC Medical Informatics and Decision Making
Subjects:
Online Access:http://link.springer.com/article/10.1186/s12911-018-0691-x
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spelling doaj-5b945526464f489298d25565c1b5dba12020-11-25T01:34:24ZengBMCBMC Medical Informatics and Decision Making1472-69472018-12-0118S5455310.1186/s12911-018-0691-xA patient-oriented clinical decision support system for CRC risk assessment and preventative careJiannan Liu0Chenyang Li1Jing Xu2Huanmei Wu3Department of BioHealth Informatics, School of Informatics and Computing, Indiana University Purdue University Indianapolis (IUPUI)Department of BioHealth Informatics, School of Informatics and Computing, Indiana University Purdue University Indianapolis (IUPUI)Department of BioHealth Informatics, School of Informatics and Computing, Indiana University Purdue University Indianapolis (IUPUI)Department of BioHealth Informatics, School of Informatics and Computing, Indiana University Purdue University Indianapolis (IUPUI)Abstract Background Colorectal Cancer (CRC) is the third leading cause of cancer death among men and women in the United States. Research has shown that the risk of CRC associates with genetic and lifestyle factors. It is possible to prevent or minimize certain CRC risks by adopting a healthy lifestyle. Existing Clinical Decision Support Systems (CDSS) mainly targeted physicians as the CDSS users. As a result, the availability of patient-oriented CDSS is limited. Our project is to develop patient-oriented CDSS for active CRC management. Methods We implemented an online patient-oriented CRC CDSS for the public to learn about CRC, assess CRC risk levels, understand personalized CRC risk factors, and seek professional advices for people with CRC concerns. The system is implemented based on the Django Model-View-Controller (MVC) framework with an extensible background MySQL database. A CRC absolute risk prediction model is applied to calculate the personalized CRC risk score with a user-friendly web survey. An interactive dashboard using advanced data visualization technics will display and interpret the risk scores and factors. Based on the risk assessment, a structured decision tree algorithm will provide the recommendations on customized CRC screening methods. The CDSS also provides a search function for preferred providers and hospitals based on geographical information and patient preferences. Results A prototype of the patient-oriented CRC CDSS has been developed. It provides an open assessment of potential CRC risks via an online survey. The CRC risk predictive model has been implemented. The prediction outcomes of risk levels and factors are presented to the users through a personalized interactive visualization interface, to guide the public on how to reduce the CRC risks by changing their living styles (such as smoking and drinking) and diet characteristics (such as consumptions of red meat and milk). The CDSS will also provide customized recommendations on screening methods based on the corresponding risk factors. For users seeking professional clinicians, the CDSS also provides a convenient tool for searching nearby hospitals and available doctors based on the location preferences and providers characteristics (such as gender, language, and specialty). Conclusions This CRC CDSS prototype provides a patient-friendly interface for CRC risk assessment and gives a personalized interpretation on important CRC risk factors. It is a useful tool to educate the public on CRC, to provide guidance on minimizing CRC risks, and to promote early CRC screening that reduces the CRC occurrences.http://link.springer.com/article/10.1186/s12911-018-0691-xColorectal CancerCDSSRisk factorsVisualization
collection DOAJ
language English
format Article
sources DOAJ
author Jiannan Liu
Chenyang Li
Jing Xu
Huanmei Wu
spellingShingle Jiannan Liu
Chenyang Li
Jing Xu
Huanmei Wu
A patient-oriented clinical decision support system for CRC risk assessment and preventative care
BMC Medical Informatics and Decision Making
Colorectal Cancer
CDSS
Risk factors
Visualization
author_facet Jiannan Liu
Chenyang Li
Jing Xu
Huanmei Wu
author_sort Jiannan Liu
title A patient-oriented clinical decision support system for CRC risk assessment and preventative care
title_short A patient-oriented clinical decision support system for CRC risk assessment and preventative care
title_full A patient-oriented clinical decision support system for CRC risk assessment and preventative care
title_fullStr A patient-oriented clinical decision support system for CRC risk assessment and preventative care
title_full_unstemmed A patient-oriented clinical decision support system for CRC risk assessment and preventative care
title_sort patient-oriented clinical decision support system for crc risk assessment and preventative care
publisher BMC
series BMC Medical Informatics and Decision Making
issn 1472-6947
publishDate 2018-12-01
description Abstract Background Colorectal Cancer (CRC) is the third leading cause of cancer death among men and women in the United States. Research has shown that the risk of CRC associates with genetic and lifestyle factors. It is possible to prevent or minimize certain CRC risks by adopting a healthy lifestyle. Existing Clinical Decision Support Systems (CDSS) mainly targeted physicians as the CDSS users. As a result, the availability of patient-oriented CDSS is limited. Our project is to develop patient-oriented CDSS for active CRC management. Methods We implemented an online patient-oriented CRC CDSS for the public to learn about CRC, assess CRC risk levels, understand personalized CRC risk factors, and seek professional advices for people with CRC concerns. The system is implemented based on the Django Model-View-Controller (MVC) framework with an extensible background MySQL database. A CRC absolute risk prediction model is applied to calculate the personalized CRC risk score with a user-friendly web survey. An interactive dashboard using advanced data visualization technics will display and interpret the risk scores and factors. Based on the risk assessment, a structured decision tree algorithm will provide the recommendations on customized CRC screening methods. The CDSS also provides a search function for preferred providers and hospitals based on geographical information and patient preferences. Results A prototype of the patient-oriented CRC CDSS has been developed. It provides an open assessment of potential CRC risks via an online survey. The CRC risk predictive model has been implemented. The prediction outcomes of risk levels and factors are presented to the users through a personalized interactive visualization interface, to guide the public on how to reduce the CRC risks by changing their living styles (such as smoking and drinking) and diet characteristics (such as consumptions of red meat and milk). The CDSS will also provide customized recommendations on screening methods based on the corresponding risk factors. For users seeking professional clinicians, the CDSS also provides a convenient tool for searching nearby hospitals and available doctors based on the location preferences and providers characteristics (such as gender, language, and specialty). Conclusions This CRC CDSS prototype provides a patient-friendly interface for CRC risk assessment and gives a personalized interpretation on important CRC risk factors. It is a useful tool to educate the public on CRC, to provide guidance on minimizing CRC risks, and to promote early CRC screening that reduces the CRC occurrences.
topic Colorectal Cancer
CDSS
Risk factors
Visualization
url http://link.springer.com/article/10.1186/s12911-018-0691-x
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