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Impact of Nutrient Intake on Hydration Biomarkers Following Exercise and Rehydration Using a Clustering-Based Approach

机译:基于聚类的方法在运动和补液后营养摄入对水合生物标志物的影响

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摘要

We investigated the impact of nutrient intake on hydration biomarkers in cyclists before and after a 161 km ride, including one hour after a 650 mL water bolus consumed post-ride. To control for multicollinearity, we chose a clustering-based, machine learning statistical approach. Five hydration biomarkers (urine color, urine specific gravity, plasma osmolality, plasma copeptin, and body mass change) were configured as raw- and percent change. Linear regressions were used to test for associations between hydration markers and eight predictor terms derived from 19 nutrients merged into a reduced-dimensionality dataset through serial k-means clustering. Most predictor groups showed significant association with at least one hydration biomarker: (1) Glycemic Load + Carbohydrates + Sodium, (2) Protein + Fat + Zinc, (3) Magnesium + Calcium, (4) Pinitol, (5) Caffeine, (6) Fiber + Betaine, and (7) Water; potassium + three polyols, and mannitol + sorbitol showed no significant associations with any hydration biomarker. All five hydration biomarkers were associated with at least one nutrient predictor in at least one configuration. We conclude that in a real-life scenario, some nutrients may serve as mediators of body water, and urine-specific hydration biomarkers may be more responsive to nutrient intake than measures derived from plasma or body mass.
机译:我们调查了161公里骑行前后(包括骑乘后650 mL水推注消耗一小时后)养分摄入对骑自行车者水合生物标志物的影响。为了控制多重共线性,我们选择了一种基于聚类的机器学习统计方法。将五个水合生物标记物(尿液颜色,尿比重,血浆渗透压,血浆肽素和体重变化)配置为原始变化和百分比变化。线性回归用于检验水合标记和通过19种营养素通过序列k均值聚类合并到19维营养素中的8个预测因子之间的关联。大多数预测因子组与至少一种水合生物标记物显示出显着关联:(1)血糖负荷+碳水化合物+钠,(2)蛋白质+脂肪+锌,(3)镁+钙,(4)松醇,(5)咖啡因,( 6)纤维+甜菜碱,以及(7)水;钾+三种多元醇和甘露醇+山梨醇与任何水合生物标志物均无显着关联。所有五个水合生物标志物都与至少一种构型的至少一种营养预测因子相关联。我们得出的结论是,在现实生活中,某些营养素可能充当人体水的介质,而尿液特异性水合生物标记物可能比源自血浆或体重的测量值对营养素吸收更敏感。

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