Multistage analysis method for detection of effective herb prescription from clinical data

药方 草本植物 医学 观察研究 倾向得分匹配 传统医学 草药 内科学 药理学
作者
Kuo Yang,Runshun Zhang,Liyun He,Yubing Li,Wenwen Liu,Changhe Yu,Yanhong Zhang,Xinlong Li,Yan Liu,Weiming Xu,Xuezhong Zhou,Baoyan Liu
出处
期刊:Frontiers of Medicine [Springer Nature]
卷期号:12 (2): 206-217 被引量:13
标识
DOI:10.1007/s11684-017-0525-8
摘要

Determining effective traditional Chinese medicine (TCM) treatments for specific disease conditions or particular patient groups is a difficult issue that necessitates investigation because of the complicated personalized manifestations in real-world patients and the individualized combination therapies prescribed in clinical settings. In this study, a multistage analysis method that integrates propensity case matching, complex network analysis, and herb set enrichment analysis was proposed to identify effective herb prescriptions for particular diseases (e.g., insomnia). First, propensity case matching was applied to match clinical cases. Then, core network extraction and herb set enrichment were combined to detect core effective herb prescriptions. Effectiveness-based mutual information was used to detect strong herb-symptom relationships. This method was applied on a TCM clinical data set with 955 patients collected from well-designed observational studies. Results revealed that groups of herb prescriptions with higher effectiveness rates (76.9% vs. 42.8% for matched samples; 94.2% vs. 84.9% for all samples) compared with the original prescriptions were found. Particular patient groups with symptom manifestations were also identified to help investigate the indications of the effective herb prescriptions.
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