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Evaluation of Reliability of the Recomputed Nutrient Intake Data in the National Heart Lung and Blood Institute Twin Study

机译:国家心肺血液研究所双生子研究中重新计算的营养摄入数据的可靠性评估

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摘要

The nutrient intake dataset is crucial in epidemiological studies. The latest version of the food composition database includes more types of nutrients than previous ones and can be used to obtain data on nutrient intake that could not be estimated before. Usual food consumption data were collected among 910 twins between 1969 and 1973 through dietary history interviews, and then used to calculate intake of eight types of nutrients (energy intake, carbohydrate, protein, cholesterol, total fat, and saturated, monounsaturated, and polyunsaturated fatty acids) in the National Heart, Lung, and Blood Institute Twin Study. We recalculated intakes using the food composition database updated in 2008. Several different statistical methods were used to evaluate the validity and the reliability of the recalculated intake data. Intra-class correlation coefficients between recalculated and original intake values were above 0.99 for all nutrients. R2 values for regression models were above 0.90 for all nutrients except polyunsaturated fatty acids (R2 = 0.63). In Bland–Altman plots, the percentage of scattering points that outlay the mean plus or minus two standard deviations lines was less than 5% for all nutrients. The arithmetic mean percentage of quintile agreement was 78.5% and that of the extreme quintile disagreement was 0.1% for all nutrients between the two datasets. Recalculated nutrient intake data is in strong agreement with the original one, supporting the reliability of the recalculated data. It is also implied that recalculation is a cost-efficient approach to obtain the intake of nutrients unavailable at baseline.
机译:营养摄入数据集在流行病学研究中至关重要。食品成分数据库的最新版本比以前包含更多类型的营养素,可用于获取以前无法估计的营养素摄入数据。 1969年至1973年之间,通过饮食史访谈收集了910名双胞胎的日常食物消耗数据,然后用于计算八种营养素的摄入量(能量摄入,碳水化合物,蛋白质,胆固醇,总脂肪以及饱和,单不饱和和多不饱和脂肪酸)在美国国家心脏,肺和血液研究所进行的双胞胎研究中。我们使用2008年更新的食物成分数据库重新计算了摄入量。几种不同的统计方法用于评估重新计算的摄入量数据的有效性和可靠性。对于所有营养素,重新计算的摄入量和原始摄入量之间的类内相关系数都高于0.99。除多不饱和脂肪酸外,所有营养素的回归模型的R 2 值均高于0.90(R 2 = 0.63)。在Bland–Altman图中,所有营养素的平均平均正负两个标准偏差线所占的散射点百分比小于5%。对于两个数据集之间的所有养分,五分位数一致性的算术平均百分比为78.​​5%,而极端五分位数不一致的算术平均百分比为0.1%。重新计算的营养摄入量数据与原始数据非常吻合,支持了重新计算的数据的可靠性。还暗示重新计算是一种获取基线处不可用营养素摄入量的经济高效的方法。

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