Nutritional Stimulation of Muscle Protein Synthesis
Nutritional Stimulation of Muscle Protein Synthesis
批准号:
6607079
负责人:
ROBERT R WOLFE
金额:
$16.66万
依托单位国家:
美国
项目类别:
财政年份:
2002
资助国家:
美国
项目状态:
已结题
起止时间:
2002-03-01 至 2003-02-28
关键词:
adolescence (12-20) biopsy burn therapy burns clinical research diet therapy dietary aminoacid dietary carbohydrates dietary supplements exercise human subject human therapy evaluation middle childhood (6-11) muscle proteins nutrition related tag pharmacokinetics protein biosynthesis stable isotope diagnosis
中文摘要
本研究的目的是探讨运动和营养在促进严重烧伤后恢复期儿童肌肉再生中的作用。我们的主要终点将是净肌肉蛋白质合成率,这是增加肌肉大小和力量的代谢基础。根据我们在健康正常成年志愿者中的经验,我们的一般假设是,运动、氨基酸和胰岛素都能促进净肌肉蛋白质合成。我们认为,运动增加了蛋白质合成过程的效率,而摄入的氨基酸刺激酸运输,从而提供合成的前体。我们认为,结果胰岛素的功能与运动刺激合成的机制相似,但运动后胰岛素的功能主要是通过防止运动后通常发生的肌肉蛋白质分解的增加。具体来说,我们将调查以下假设在儿童从严重烧伤恢复:1。运动、摄入的氨基酸和碳水化合物都会刺激肌肉蛋白质的合成。2.在休息时摄入碳水化合物会放大摄入的氨基酸对肌肉蛋白质合成的影响。3.摄入的氨基酸对肌肉蛋白质合成的刺激作用将通过事先的锻炼而放大。4.运动后摄入碳水化合物将防止通常发生的肌肉蛋白质分解的运动后增加。5.运动后摄入碳水化合物和氨基酸将刺激肌肉蛋白质合成并抑制蛋白质分解,从而通过两种机制放大对运动的合成代谢反应。6.虽然运动训练可能会减少肌肉蛋白质周转的反应(即,虽然在一次运动中摄入氨基酸(合成和分解)的比例很低,但由于合成过程的效率提高,运动后摄入氨基酸比训练儿童在休息时摄入氨基酸更能促进肌肉蛋白质的净合成。7.碳水化合物的摄入将抑制训练儿童运动后肌肉蛋白质的分解。8.训练儿童运动后摄入的碳水化合物和氨基酸将通过刺激肌肉蛋白质合成和抑制肌肉蛋白质分解来放大对运动的合成代谢反应。肌肉蛋白动力学将使用稳定同位素示踪剂方法和动静脉采样和肌肉活检来确定。这些研究的结果应导致干预性研究的设计,其中将调查最佳营养补充剂的长期影响。
英文摘要
It is the goal of this project to investigate the effects of exercise and nutrition in promoting muscle anabolism in children recovering from severe burn injury. Our primary endpoint will be the rate of net muscle protein synthesis, which is the metabolic basis for increased muscle size and strength. Based on our experience in healthy normal adult volunteers, our general hypothesis is that exercise, amino acids and insulin all promote net muscle protein synthesis. We propose that exercise increases the efficiency of the protein synthetic process, while ingested amino acids stimulate acid transport, thereby providing precursors for synthesis. We propose that at result insulin functions by similar mechanisms as exercise with regard to stimulating synthesis, but after exercise insulin functions primarily by preventing the increase in muscle protein breakdown that normally occurs after exercise. Specifically, we will investigate the following hypotheses in children recovering from severe burn injury: 1. Exercise, ingested amino acids, and ingested carbohydrate all stimulate muscle protein synthesis. 2. Ingestion of carbohydrate at rest will amplify the effects of ingested amino acids on muscle protein synthesis. 3. The stimulatory effect of ingested amino acids on muscle protein synthesis will be amplified by prior exercise. 4. Ingestion of carbohydrate after exercise will prevent the post-exercise increase in muscle protein breakdown that normally occurs. 5. Ingestion of carbohydrate plus amino acids after exercise will stimulate muscle protein synthesis and inhibit protein breakdown, thereby amplifying the anabolic response to exercise by two mechanisms. 6. Although exercise training may diminish the response of muscle protein turnover (i.e., synthesis and breakdown) to a single bout of exercise, the ingestion of amino acids after exercise nonetheless promotes net muscle protein synthesis to a greater extent than when given to trained children at rest because of the increased efficiency of the synthetic process. 7. Carbohydrate ingestion will inhibit muscle protein breakdown after exercise in trained children. 8. Carbohydrate plus amino acid ingested after exercise in trained children will amplify the anabolic response to exercise by both stimulating muscle protein synthesis and inhibiting muscle protein breakdown. Muscle protein kinetics will be determined using stable isotope tracer methodology and arterial-venous sampling and muscle biopsies. The results of these studies should lead to the design of an interventional study in which the long-term effects of an optimal nutritional supplement will be investigated.
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Stable Isotope Analytical Core for Studies in Human Metabolism
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