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Metabolomics and Machine Learning Identify Metabolic Differences and Potential Biomarkers for Frequent versus Infrequent Gout Flares | |
2023-06 | |
发表期刊 | ARTHRITIS & RHEUMATOLOGY (IF:11.4[JCR-2023],11.4[5-Year]) |
ISSN | 2326-5191 |
发表状态 | 已发表 |
DOI | 10.1002/art.42635 |
摘要 | ObjectivesTo discover differential metabolites and pathways underlying infrequent gout flares (InGF) and frequent gout flares (FrGF) using metabolomics and establish a predictive model by machine learning (ML) algorithms. MethodsSerum samples from a discovery cohort with 163 InGF and 239 FrGF patients were analyzed by mass spectrometry-based untargeted metabolomics to profile differential metabolites and explore dysregulated metabolic pathways using pathway enrichment analysis and network propagation-based algorithms. ML algorithms were performed to establish a predictive model based on selected metabolites, which was further optimized by a quantitative targeted metabolomics method and validated in an independent validation cohort with 97 participants with InGF and 139 participants with FrGF. Results439 differential metabolites between InGF and FrGF groups were identified. Top dysregulated pathways included carbohydrates, amino acids, bile acids, and nucleotide metabolism. Subnetworks with maximum disturbances in the global metabolic networks featured cross-talk between purine metabolism and caffeine metabolism, as well as interactions among pathways involving primary bile acid biosynthesis, taurine and hypotaurine metabolism, alanine, aspartate and glutamate metabolism, suggesting epigenetic modifications and gut microbiome in metabolic alterations underlying InGF and FrGF. Potential metabolite biomarkers were identified using ML-based multivariable selection and further validated by targeted metabolomics. Area under receiver operating characteristics curve for differentiating InGF and FrGF achieved 0.88 and 0.67 for the discovery and validation cohorts, respectively. ConclusionsSystematic metabolic alterations underlie InGF and FrGF, and distinct profiles are associated with differences in gout flare frequencies. Predictive modeling based on selected metabolites from metabolomics can differentiate InGF and FrGF. |
关键词 | gout gout flare metabolomics biomarkers machine learning algorithm |
学科门类 | 理学::生物学 |
URL | 查看原文 |
收录类别 | SCI |
语种 | 英语 |
引用统计 | 正在获取...
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文献类型 | 期刊论文 |
条目标识符 | https://kms.shanghaitech.edu.cn/handle/2MSLDSTB/329054 |
专题 | 生命科学与技术学院 生命科学与技术学院_博士生 |
共同第一作者 | Rui Li |
通讯作者 | Huiyong Yin; Changgui Li |
作者单位 | 1.Department of Endocrinology and Metabolism, the Affiliated Hospital of Qingdao University, Qingdao, China 2.School of Life Science and Technology, ShanghaiTech University, Shanghai 3.Department of Endocrinology and Metabo lism, the Affiliated Hospital of Qingdao University, Qingdao, China 4.CAS Key Labo ratory of Nutrition, Metabolism and Food Safety, Shanghai Institute of Nutri tion and Health, CAS, Shanghai, China 5.CAS Key Laboratory of Nutrition, Metabolism and Food Safety, Shanghai Institute of Nutrition and Health, CAS, Shanghai, China 6.Department of Medicine, Faculty of Medical and Health Sciences, University of Auckland, Auckland, New Zealand 7.Department of Biochemistry, University of Otago, Dunedin, New Zealand 8.VA San Diego Healthcare System, San Diego, California 9.Department of Biomedical Sciences, City University of Hong Kong, Hong Kong SAR, China |
推荐引用方式 GB/T 7714 | Ming Wang,Rui Li,Han Qi,et al. Metabolomics and Machine Learning Identify Metabolic Differences and Potential Biomarkers for Frequent versus Infrequent Gout Flares[J]. ARTHRITIS & RHEUMATOLOGY,2023. |
APA | Ming Wang.,Rui Li.,Han Qi.,Lei Pang.,Lingling Cuii.,...&Changgui Li.(2023).Metabolomics and Machine Learning Identify Metabolic Differences and Potential Biomarkers for Frequent versus Infrequent Gout Flares.ARTHRITIS & RHEUMATOLOGY. |
MLA | Ming Wang,et al."Metabolomics and Machine Learning Identify Metabolic Differences and Potential Biomarkers for Frequent versus Infrequent Gout Flares".ARTHRITIS & RHEUMATOLOGY (2023). |
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