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体质量指数和腰臀比递增的纵向代谢组学揭示了肥胖流行的两种动态模式。

Longitudinal metabolomics of increasing body-mass index and waist-hip ratio reveals two dynamic patterns of obesity pandemic.

机构信息

Systems Epidemiology, Faculty of Medicine, University of Oulu, Oulu, Finland.

Research Unit of Population Health, Faculty of Medicine, University of Oulu, Oulu, Finland.

出版信息

Int J Obes (Lond). 2023 Jun;47(6):453-462. doi: 10.1038/s41366-023-01281-w. Epub 2023 Feb 23.

Abstract

BACKGROUND/OBJECTIVE: This observational study dissects the complex temporal associations between body-mass index (BMI), waist-hip ratio (WHR) and circulating metabolomics using a combination of longitudinal and cross-sectional population-based datasets and new systems epidemiology tools.

SUBJECTS/METHODS: Firstly, a data-driven subgrouping algorithm was employed to simplify high-dimensional metabolic profiling data into a single categorical variable: a self-organizing map (SOM) was created from 174 metabolic measures from cross-sectional surveys (FINRISK, n = 9708, ages 25-74) and a birth cohort (NFBC1966, n = 3117, age 31 at baseline, age 46 at follow-up) and an expert committee defined four subgroups of individuals based on visual inspection of the SOM. Secondly, the subgroups were compared regarding BMI and WHR trajectories in an independent longitudinal dataset: participants of the Young Finns Study (YFS, n = 1286, ages 24-39 at baseline, 10 years follow-up, three visits) were categorized into the four subgroups and subgroup-specific age-dependent trajectories of BMI, WHR and metabolic measures were modelled by linear regression.

RESULTS

The four subgroups were characterised at age 39 by high BMI, WHR and dyslipidemia (designated TG-rich); low BMI, WHR and favourable lipids (TG-poor); low lipids in general (Low lipid) and high low-density-lipoprotein cholesterol (High LDL-C). Trajectory modelling of the YFS dataset revealed a dynamic BMI divergence pattern: despite overlapping starting points at age 24, the subgroups diverged in BMI, fasting insulin (three-fold difference at age 49 between TG-rich and TG-poor) and insulin-associated measures such as triglyceride-cholesterol ratio. Trajectories also revealed a WHR progression pattern: despite different starting points at the age of 24 in WHR, LDL-C and cholesterol-associated measures, all subgroups exhibited similar rates of change in these measures, i.e. WHR progression was uniform regardless of the cross-sectional metabolic profile.

CONCLUSIONS

Age-associated weight variation in adults between 24 and 49 manifests as temporal divergence in BMI and uniform progression of WHR across metabolic health strata.

摘要

背景/目的:本观察性研究通过结合纵向和横断面人群数据集以及新的系统流行病学工具,剖析了体重指数 (BMI)、腰臀比 (WHR) 和循环代谢组学之间复杂的时间关联。

受试者/方法:首先,采用数据驱动的分组算法将高维代谢谱数据简化为单一分类变量:从横断面调查(FINRISK,n=9708,年龄 25-74 岁)和一个出生队列(NFBC1966,n=3117,基线年龄 31 岁,随访年龄 46 岁)的 174 项代谢测量值中创建一个自组织图 (SOM),然后由一个专家委员会根据 SOM 的直观检查定义了个体的四个亚组。其次,在一个独立的纵向数据集(青年芬兰人研究,YFS,n=1286,基线年龄 24-39 岁,随访 10 年,三次访视)中比较了亚组的 BMI 和 WHR 轨迹,将 YFS 研究的参与者分为四个亚组,并通过线性回归为每个亚组建模 BMI、WHR 和代谢指标的年龄依赖性轨迹。

结果

四个亚组在 39 岁时的特征为 BMI、WHR 和血脂异常高(命名为 TG 丰富);BMI、WHR 和血脂良好低(命名为 TG 缺乏);总体血脂低(命名为低血脂);低密度脂蛋白胆固醇高(命名为高 LDL-C)。YFS 数据集的轨迹建模显示出 BMI 动态分歧模式:尽管在 24 岁时的起点重叠,但亚组在 BMI、空腹胰岛素(49 岁时 TG 丰富和 TG 缺乏之间相差三倍)和胰岛素相关指标如甘油三酯胆固醇比值方面存在差异。轨迹还揭示了 WHR 进展模式:尽管在 24 岁时 WHR、LDL-C 和胆固醇相关指标的起点不同,但所有亚组在这些指标上的变化率相似,即 WHR 进展在不同的代谢健康水平下都是均匀的。

结论

24 至 49 岁成年人的年龄相关体重变化表现为 BMI 的时间发散和 WHR 在所有代谢健康亚组中的均匀进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d805/10212764/a2992df2da8d/41366_2023_1281_Fig1_HTML.jpg

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