Cabbia Andrea, Hilbers Peter A J, van Riel Natal A W
Department of Biomedical Engineering, Computational Biology, Eindhoven University of Technology, Groene Loper 5, 5612 AE Eindhoven, The Netherlands.
Amsterdam University Medical Centers, University of Amsterdam, Meibergdreef 9, 1105 AZ Amsterdam, The Netherlands.
Metabolites. 2021 Oct 12;11(10):695. doi: 10.3390/metabo11100695.
Metabolic flexibility is the ability of an organism to adapt its energy source based on nutrient availability and energy requirements. In humans, this ability has been linked to cardio-metabolic health and healthy aging. Genome-scale metabolic models have been employed to simulate metabolic flexibility by computing the Respiratory Quotient (RQ), which is defined as the ratio of carbon dioxide produced to oxygen consumed, and varies between values of 0.7 for pure fat metabolism and 1.0 for pure carbohydrate metabolism. While the nutritional determinants of metabolic flexibility are known, the role of low energy expenditure and sedentary behavior in the development of metabolic inflexibility is less studied. In this study, we present a new description of metabolic flexibility in genome-scale metabolic models which accounts for energy expenditure, and we study the interactions between physical activity and nutrition in a set of patient-derived models of skeletal muscle metabolism in older adults. The simulations show that fuel choice is sensitive to ATP consumption rate in all models tested. The ability to adapt fuel utilization to energy demands is an intrinsic property of the metabolic network.
代谢灵活性是生物体根据营养物质可用性和能量需求来调整其能量来源的能力。在人类中,这种能力与心血管代谢健康和健康衰老有关。基因组规模的代谢模型已被用于通过计算呼吸商(RQ)来模拟代谢灵活性,呼吸商定义为产生的二氧化碳与消耗的氧气的比率,在纯脂肪代谢时为0.7,在纯碳水化合物代谢时为1.0之间变化。虽然代谢灵活性的营养决定因素是已知的,但低能量消耗和久坐行为在代谢不灵活性发展中的作用研究较少。在本研究中,我们在基因组规模的代谢模型中提出了一种新的代谢灵活性描述,该描述考虑了能量消耗,并且我们在一组老年人骨骼肌代谢的患者衍生模型中研究了身体活动与营养之间的相互作用。模拟结果表明,在所有测试模型中,燃料选择对ATP消耗率敏感。使燃料利用适应能量需求的能力是代谢网络的固有属性。