Body composition subphenotypes, cardiometabolic risk and incident outcomes: validation in the population-based NAKO and UK Biobank imaging cohorts

医学 生命银行 脂肪组织 人体测量学 队列 疾病 内科学 星团(航天器) 队列研究 生理学 磁共振成像 流行病学 共病 肌学 肥胖的分类 作文(语言) 肌萎缩 代谢综合征 糖尿病 2型糖尿病 体脂分布
作者
Elena Grune,Tobias Haueise,Marc-Nicolas von Itter,Matthias Jung,Fabian Bamberg,Saima Bibi,Christoph M. Friedrich,Patricia Fromherz,Hans‐Ulrich Kauczor,Elias Kellner,Anna Köttgen,Lilian Krist,Thomas Kroencke,Wolfgang Lieb,Jürgen Machann,Johanna Nattenmüller,Fiona Niedermayer,Thoralf Niendorf,Tobias Nonnenmacher,Tobias Norajitra
出处
期刊:medRxiv
标识
DOI:10.64898/2026.06.18.26355957
摘要

Summary Background Anthropometric measures do not adequately capture heterogeneity in body fat distribution and corresponding cardiometabolic risk, whereas magnetic resonance imaging (MRI) enables precise differentiation and quantification of adipose tissue compartments and ectopic fat. We aimed to validate previously derived MRI-based body composition subphenotypes and their cardiometabolic risk profiles in two independent European cohorts. Methods Using deep learning–based image analysis, we quantified bone marrow, visceral, subcutaneous, cardiac, renal sinus, hepatic, skeletal muscle, and pancreatic fat in the imaging substudies of two population-based cohorts: the German National Cohort (NAKO, N=29,314, age range 19-74 years) and the UK Biobank (N=36,109, age range 40-69 years). Body composition subphenotypes, previously identified by k-means clustering, were evaluated using a rigorous statistical cluster validation framework with method-based and results-based approaches. In NAKO, cross-sectional associations between subphenotypes and estimated cardiovascular disease risk scores were examined using linear regression. In UK Biobank, longitudinal associations between subphenotypes and incident cardiometabolic outcomes, ascertained through hospital record linkage, were analysed using Cox regression. Findings All five body composition subphenotypes were robustly validated across both cohorts, and showed distinct fat distribution patterns and cardiometabolic risk profiles: I “lean”, II “average adiposity”, III “bone and muscle adiposity”, IV “hepato-abdominal adiposity”, and V “general and pancreatic adiposity”. Subphenotypes I–III showed progressive adipose tissue remodelling patterns likely reflecting ageing trajectories. The “hepato-abdominal adiposity” subphenotype showed highest risk of incident diabetes, whereas the “general and pancreatic adiposity” subphenotype showed highest overall cardiovascular disease burden and metabolic impairment. Interpretation MRI-derived body composition subphenotypes represent distinct fat distribution patterns that reflect ageing- and disease-related processes, which supports the potential of body composition phenotyping for improved cardiometabolic risk stratification and targeted prevention.
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