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Personalized Nutrition by Prediction of Glycemic Responses

机译:通过预测血糖反应个性化营养

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Elevated postprandial blood glucose levels constitute a global epidemic and a major risk factor for prediabetes and type II diabetes, but existing dietary methods for controlling them have limited efficacy. Here, we continuously monitored week-long glucose levels in an 800-person cohort, measured responses to 46,898 meals, and found high variability in the response to identical meals, suggesting that universal dietary recommendations may have limited utility. We devised a machine-learning algorithm that integrates blood parameters, dietary habits, anthropometrics, physical activity, and gut microbiota measured in this cohort and showed that it accurately predicts personalized postprandial glycemic response to real-life meals. We validated these predictions in an independent 100-person cohort. Finally, a blinded randomized controlled dietary intervention based on this algorithm resulted in significantly lower postprandial responses and consistent alterations to gut microbiota configuration. Together, our results suggest that personalized diets may successfully modify elevated postprandial blood glucose and its metabolic consequences.
机译:餐后血糖水平升高是全球流行病,是糖尿病前期和II型糖尿病的主要危险因素,但是控制它们的现有饮食方法疗效有限。在这里,我们连续监测了800人队列中为期一周的血糖水平,测量了对46,898顿饭的反应,发现对相同顿饭的反应存在很大差异,这表明普遍的饮食建议可能用途有限。我们设计了一种机器学习算法,该算法集成了该队列中测量的血液参数,饮食习惯,人体测量学,体育锻炼和肠道菌群,并显示它可以准确预测对现实生活中饭菜的个性化餐后血糖反应。我们在一个独立的100人队列中验证了这些预测。最后,基于该算法的盲目随机控制饮食干预导致餐后反应明显降低,肠道菌群结构发生一致变化。总之,我们的结果表明,个性化饮食可以成功地改善餐后血糖升高及其代谢后果。

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