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Purine metabolite-based machine learning models for risk prediction, prognosis, and diagnosis of coronary artery disease - 02/06/21

Doi : 10.1016/j.biopha.2021.111621 
Sunhee Jung a, 1, Eunyong Ahn a, 1, Sang Baek Koh b, Sang-Hak Lee c, Geum-Sook Hwang a, d,
a Integrated Metabolomics Research Group, Western Seoul Center, Korea Basic Science Institute, 150 Bugahyeon-ro, Seodaemun-gu, Seoul 03759, South Korea 
b Department of Preventive Medicine, Yonsei University Wonju College of Medicine, Wonju 26426, South Korea 
c Division of Cardiology, Department of Internal Medicine, Severance Hospital, Yonsei University College of Medicine, 134 Shinchon-dong, Seodaemun-gu, Seoul 03722, South Korea 
d Department of Chemistry and Nano Science, Ewha Womans University, 52 Ewhayeodae-gil, Seodaemun-gu, Seoul 03760, South Korea 

Corresponding author at: Integrated Metabolomics Research Group, Western Seoul Center, Korea Basic Science Institute, 150 Bugahyeon-ro, Seodaemun-gu, Seoul 03759, South Korea.Integrated Metabolomics Research Group, Western Seoul Center, Korea Basic Science Institute150 Bugahyeon-ro, Seodaemun-guSeoul03759South Korea

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Abstract

Alterations in xanthine oxidase activity are known to be pathologically influential on coronary artery disease (CAD), but the association between purine-related blood metabolites and CAD has only been partially elucidated. We performed global metabolomics profiling and network analysis on blood samples from the Wonju and Pyeongchang (WP) cohort study (n = 2055) to elucidate the importance of purine related metabolites associated with potential CAD risk. Then, 5 selected serum metabolites were quantified from the WP cohort, Shinchon cohort (n = 259), and Shinchon case control (n = 424) groups to develop machine learning models for 10-year risk prediction, relapse within 10 years and diagnosis of the disease via 100 repeated 5-fold cross-validations of logistic models. The combination of purine metabolite levels or only xanthine levels in blood could be applied for machine learning model development for major adverse cardiac and cerebrovascular event (MACCE, cerebrovascular death, nonfatal myocardial infarction, percutaneous transluminal coronary angioplasty, coronary artery bypass graft, and stroke) risk prediction, relapse of MACCEs among patients with myocardial infarction history and diagnosis of stable CAD. In particular, our research provided initial evidence that blood xanthine and uric acid levels play different roles in the development of machine learning models for primary/secondary prevention or diagnosis of CAD. In this research, we determined that purine-related metabolites in blood are applicable to machine learning model development for CAD risk prediction and diagnosis. Also, our work advances current CAD biomarker discovery strategies mainly relying on clinical features; emphasizes the differential biomarkers in first/secondary prevention or diagnosis studies.

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Highlights

Purine-related metabolites in blood are applicable to machine learning model for CAD risk prediction and diagnosis.
Xanthine and uric acid levels play different roles in the development of machine learning models for prevention or diagnosis of CAD.
There are possible changes in the role of metabolic features in machine learning model developments for prevention or diagnosis of diseases.

Il testo completo di questo articolo è disponibile in PDF.

Keywords : Coronary artery disease (CAD), Metabolomics, Machine learning model development, Purine metabolism, Biomarker


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