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Metabotyping for the development of tailored dietary advice solutions in a European population: the Food4Me study

机译:在欧洲人口中定制饮食建议解决方案的开发:食品4ME研究

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Traditionally, personalised nutrition was delivered at an individual level. However, the concept of delivering tailored dietary advice at a group level through the identification of metabotypes or groups of metabolically similar individuals has emerged. Although this approach to personalised nutrition looks promising, further work is needed to examine this concept across a wider population group. Therefore, the objectives of this study are to: (1) identify metabotypes in a European population and (2) develop targeted dietary advice solutions for these metabotypes. Using data from the Food4Me study (n 1607), k-means cluster analysis revealed the presence of three metabolically distinct clusters based on twenty-seven metabolic markers including cholesterol, individual fatty acids and carotenoids. Cluster 2 was identified as a metabolically healthy metabotype as these individuals had the highest Omega-3 Index (6·56 (sd 1·29) %), carotenoids (2·15 (sd 0·71) μm) and lowest total saturated fat levels. On the basis of its fatty acid profile, cluster 1 was characterised as a metabolically unhealthy cluster. Targeted dietary advice solutions were developed per cluster using a decision tree approach. Testing of the approach was performed by comparison with the personalised dietary advice, delivered by nutritionists to Food4Me study participants (n 180). Excellent agreement was observed between the targeted and individualised approaches with an average match of 82 % at the level of delivery of the same dietary message. Future work should ascertain whether this proposed method could be utilised in a healthcare setting, for the rapid and efficient delivery of tailored dietary advice solutions.
机译:传统上,个性化营养在个人层面提供。然而,通过鉴定群体在群体水平上提供量身定制的饮食建议的概念出现了鉴定代谢类似的人群。虽然这种对个性化营养的方法看起来很有希望,但需要进一步的工作来检查跨越更广泛的人口群体的这个概念。因此,本研究的目标是:(1)鉴定欧洲人口中的术语,(2)为这些代购型开发有针对性的饮食咨询解决方案。使用来自Food4Me研究的数据(N 1607),K-Means簇分析显示,基于二十七种代谢标志物的三种代谢不同簇存在三种代谢标志物,包括胆固醇,单个脂肪酸和类胡萝卜素。簇2被鉴定为代谢健康的代谢型,因为这些个体具有最高的ω-3指数(6·56(SD 1·29)%),类胡萝卜素(2·15(SD 0·71)μm)和最低总饱和脂肪水平。在其脂肪酸型材的基础上,簇1的特征在于代谢不健康的聚类。每个群集使用决策树方法开发了有针对性的饮食建议解决方案。通过与个性化饮食建议进行比较来测试该方法,由营养学家提供给食品4ME学习参与者(N 180)。在相同饮食信息的交付水平时,目标和个性化方法之间观察到卓越的协议,平均匹配为82%。未来的工作应确定这一提出的方法是否可以在医疗保健环境中使用,以便快速高效地提供定制膳食咨询解决方案。

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