Lifestyle‐associated serum metabolites profiling in relation to risk of late‐onset psoriasis

医学 银屑病 入射(几何) 仿形(计算机编程) 预测值 免疫学 生物信息学 风险评估 梅德林 遗传倾向 代谢物
作者
Xin Zhou,Yutong Wang,Zhao‐Jun Pan,Qinyu Chang,Yiqun Zhu,Guowei Zhou,Guanxiong Zhang,Yan Zhang,Xiang Chen,Hong Liu
出处
期刊:Journal of The European Academy of Dermatology and Venereology [Wiley]
卷期号:40 (2): 238-249 被引量:2
标识
DOI:10.1111/jdv.70045
摘要

Abstract Background Although healthy lifestyle behaviours are associated with a lower risk of psoriasis, the underlying metabolic mechanisms remain unclear. Objectives To investigate lifestyle‐related serum metabolites associated with late‐onset psoriasis risk and evaluate their predictive potential. Methods We analysed 190,692 participants (aged 38–73) from UK Biobank with complete data on lifestyle and serum metabolites. Healthy lifestyle was assessed based on diet, exercise, smoking and BMI. The association between lifestyle‐related metabolites and late‐onset psoriasis risk was identified by a sequential analytic strategy that combined the Cox regression and elastic net regression model. A machine learning model was developed to predict psoriasis risk using clinical features, polygenic risk scores (PRS) and critical metabolites. Results During a median of 14.6 years of follow‐up, 2114 incident late‐onset psoriasis cases were documented among 186,812 participants. Ideal lifestyle factors were significantly associated with reduced disease burden, with BMI showing the highest population attributable fractions (PAF) of 24.1%. We identified 11 of 134 lifestyle‐related metabolites that were significantly associated with the risk of late‐onset psoriasis. These predominantly mapped to lipid and glucose metabolism pathways, comprising seven lipoprotein subclasses, two ketones, unsaturation degree and phenylalanine. The addition of these metabolites into clinical characteristics and PRS could significantly improve the performance of predicting the risk of late‐onset psoriasis (AUC 0.860, 95% CI 0.857–0.863). Conclusions Multiple lifestyle‐related serum metabolites are associated with the incidence of late‐onset psoriasis, and their integration with traditional clinical features and genetic susceptibility shows promise in enhancing the predictive accuracy of late‐onset psoriasis using a machine learning–based model.
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