内科学
医学
磷酸肌酸
射血分数
心功能曲线
心力衰竭
内分泌学
三磷酸腺苷
心输出量
β氧化
脂肪酸
心脏病学
血流动力学
新陈代谢
生物化学
化学
能量代谢
作者
W. D. Watson,Peregrine G. Green,Andrew Lewis,Per M. Arvidsson,Giovanni Luigi De Maria,Håkan Arheden,Einar Heiberg,William T. Clarke,Christopher T. Rodgers,Ladislav Valkovič,Stefan Neubauer,Neil Herring,Oliver J. Rider
出处
期刊:Circulation
[Lippincott Williams & Wilkins]
日期:2023-05-18
卷期号:148 (2): 109-123
被引量:74
标识
DOI:10.1161/circulationaha.122.062166
摘要
BACKGROUND: The failing heart is traditionally described as metabolically inflexible and oxygen starved, causing energetic deficit and contractile dysfunction. Current metabolic modulator therapies aim to increase glucose oxidation to increase oxygen efficiency of adenosine triphosphate production, with mixed results. METHODS: ), invasive arteriovenous sampling and pressure-volume loops were performed (n=9). RESULTS: <0.001). During increased cardiac workload, LCFA uptake and oxidation were again increased during both infusions. There was no evidence of systolic dysfunction or lactate efflux at 65% maximal heart rate, suggesting that a metabolic switch to fat did not cause clinically meaningful ischemic metabolism. CONCLUSIONS: Our findings show that even in nonischemic heart failure with reduced ejection fraction with severely impaired systolic function, significant cardiac metabolic flexibility is retained, including the ability to alter substrate use to match both arterial supply and changes in workload. Increasing LCFA uptake and oxidation is associated with improved myocardial energetics and contractility. Together, these findings challenge aspects of the rationale underlying existing metabolic therapies for heart failure and suggest that strategies promoting fatty acid oxidation may form the basis for future therapies.
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