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THE METABOLIC EFFECTS OF ENERGY BALANCE AND CARBOHYDRATE DEFICIT AFTER EXERCISE

THE METABOLIC EFFECTS OF ENERGY BALANCE AND CARBOHYDRATE DEFICIT AFTER EXERCISE
运动后能量平衡和碳水化合物缺乏的代谢影响
批准号:
7603783
负责人:
Jeffrey F Horowitz
金额:
$1.04万
依托单位国家:
美国
项目类别:
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-03-01 至 2007-09-16

项目摘要

项目成果

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中文摘要
翻译
这个子项目是许多研究子项目中的一个 由NIH/NCRR资助的中心赠款提供的资源。子项目和 研究者(PI)可能从另一个NIH来源获得了主要资金, 因此可以在其他CRISP条目中表示。所列机构为 研究中心,而研究中心不一定是研究者所在的机构。 肥胖及其相关的健康并发症,包括胰岛素抵抗,已成为我们社会的主要公共卫生问题。 单次运动已被证明可以在运动后数小时甚至数天内改善胰岛素敏感性。 此外,能量平衡(即,能量摄入-能量消耗)和碳水化合物平衡(即,摄入足够的碳水化合物以维持肌肉和肝糖原含量)也会影响胰岛素敏感性。 因此,由于运动会影响能量平衡和碳水化合物平衡,因此很难确定运动如何改善胰岛素敏感性。 本研究的目的是确定总能量平衡、碳水化合物平衡和运动本身对运动诱导的胰岛素敏感性增强的贡献。 10名年轻、苗条、健康的志愿者将完成四项独立的试验。 三项试验将包括相同的运动阶段,然后是不同的饮食,旨在改变总能量平衡和碳水化合物平衡,以测量每个变量在运动代谢反应中的作用。 第四次试验将作为非运动对照。 此外,由于脂肪动员的改变与胰岛素敏感性受损有关,并且已知脂肪动员受到运动和饮食的影响,因此我们将测量脂肪从脂肪细胞中储存的释放以及肌肉吸收脂肪的程度。 最后,这些实验将提供深入了解运动后饮食条件的改变如何影响胰岛素敏感性和脂质代谢。 确定运动引起的胰岛素敏感性增强的因素可能会导致改善与肥胖和胰岛素抵抗相关的疾病的治疗方法。'
英文摘要
This subproject is one of many research subprojects utilizing the resources provided by a Center grant funded by NIH/NCRR. The subproject and investigator (PI) may have received primary funding from another NIH source, and thus could be represented in other CRISP entries. The institution listed is for the Center, which is not necessarily the institution for the investigator. Obesity and its related health complications, including insulin resistance, has become a major public health problem in our society. A single session of exercise has been shown to improve insulin sensitivity for hours and even days after exercise. Additionally, energy balance (i.e., energy intake - energy expended) and carbohydrate balance (i.e., ingesting enough carbohydrate to maintain muscle and liver glycogen content) can also affect insulin sensitivity. Therefore, because exercise affects energy balance and carbohydrate balance, it is difficult to determine how exercise improves insulin sensitivity. The purpose of this proposed project is to determine the contributions of total energy balance, carbohydrate balance, and exercise, per se, on the exercise-induced enhancement of insulin sensitivity. Ten young, lean, healthy volunteers will complete four separate trials. Three trials will include an identical exercise session followed by different diets designed to alter total energy balance and carbohydrate balance to allow for the measurement of the role each variable plays in the metabolic responses to exercise. A fourth trial will serve as a non-exercise control. Additionally, because alterations in fat mobilization are associated with impaired insulin sensitivity and fat mobilization is known to be influenced by exercise and diet, we will measure the release of fat from storage in fat cells and how well it is taken up to be used by muscle. In the end, these experiments will provide insight into how altered dietary conditions after exercise impact insulin sensitivity and lipid metabolism. Identifying the factors that contribute to the exercise-induced enhancement of insulin sensitivity may lead to improved therapeutic approaches to conditions associated with obesity and insulin resistance.'
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Exercise effects on adipose tissue morphology, metabolic function, and metabolic health with weight loss and weight regain in obesity
Exercise effects on adipose tissue morphology, metabolic function, and metabolic health with weight loss and weight regain in obesity
Exercise effects on adipose tissue morphology, metabolic function, and metabolic health with weight loss and weight regain in obesity
Nutrition, Exercise and phenotype Testing Core
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