代谢循环:心脏能量转移的统一概念。

IF 4.9 2区 医学 Q1 CARDIAC & CARDIOVASCULAR SYSTEMS
Mitchell Beito , Heinrich Taegtmeyer
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引用次数: 0

摘要

代谢通量的变化是非缺血性心脏病收缩功能障碍的原因还是结果,目前仍存在争议。我们之前提出了一个心脏新陈代谢模型,其基础是一系列六个分子保守、相互关联的循环。鉴于最近人们对通过补充铁质来提高心力衰竭患者的氧气可用性的兴趣,我们从分子守恒的角度对这一干预措施进行了整合。通过对已发表的人类和小鼠模型的研究,我们认为这一策略通过增强线粒体丙酮酸载体(MPC)的表达,并提供丙酮酸作为羧化和无羧化的底物,恢复了线粒体的能量转移循环。来自衰竭心肌的代谢组数据显示,丙酮酸水平升高的同时,克雷布斯循环中间产物的水平下降。此外,在同样的衰竭心脏中,以及在缺氧条件下,MPC 均出现下调。衰竭的人类心脏在机械卸载后,MPC 的表达会增加,收缩功能也会增加。我们注意到,MPC 缺乏还会改变参与丙酮酸羧化和脱羧的酶的表达,增加生物合成途径的中间产物,最终导致心脏肥大和扩张型心肌病。总之,我们认为,一个不间断的分子守恒循环链促进了心脏的能量转移。我们以线粒体基质中丙酮酸的转运和随后的羧化为例,提出了新陈代谢支持的目标,以逆转受损的收缩功能。自卧床休息、洋地黄和利尿剂时代以来,心力衰竭的治疗已经验证了许多新理念。虽然通过机械和药物干预,在延缓甚至逆转心脏结构和功能改变方面取得了长足进步,但衰竭心脏的新陈代谢改变是其收缩功能受损的原因还是结果,目前仍不得而知。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Metabolic cycles: A unifying concept for energy transfer in the heart

Metabolic cycles: A unifying concept for energy transfer in the heart

It is still debated whether changes in metabolic flux are cause or consequence of contractile dysfunction in non-ischemic heart disease. We have previously proposed a model of cardiac metabolism grounded in a series of six moiety-conserved, interconnected cycles. In view of a recent interest to augment oxygen availability in heart failure through iron supplementation, we integrated this intervention in terms of moiety conservation. Examining published work from both human and murine models, we argue this strategy restores a mitochondrial cycle of energy transfer by enhancing mitochondrial pyruvate carrier (MPC) expression and providing pyruvate as a substrate for carboxylation and anaplerosis. Metabolomic data from failing heart muscle reveal elevated pyruvate levels with a concomitant decrease in the levels of Krebs cycle intermediates. Additionally, MPC is downregulated in the same failing hearts, as well as under hypoxic conditions. MPC expression increases upon mechanical unloading in the failing human heart, as does contractile function. We note that MPC deficiency also alters expression of enzymes involved in pyruvate carboxylation and decarboxylation, increases intermediates of biosynthetic pathways, and eventually leads to cardiac hypertrophy and dilated cardiomyopathy. Collectively, we propose that an unbroken chain of moiety-conserved cycles facilitates energy transfer in the heart. We refer to the transport and subsequent carboxylation of pyruvate in the mitochondrial matrix as an example and a proposed target for metabolic support to reverse impaired contractile function.

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来源期刊
CiteScore
10.70
自引率
0.00%
发文量
171
审稿时长
42 days
期刊介绍: The Journal of Molecular and Cellular Cardiology publishes work advancing knowledge of the mechanisms responsible for both normal and diseased cardiovascular function. To this end papers are published in all relevant areas. These include (but are not limited to): structural biology; genetics; proteomics; morphology; stem cells; molecular biology; metabolism; biophysics; bioengineering; computational modeling and systems analysis; electrophysiology; pharmacology and physiology. Papers are encouraged with both basic and translational approaches. The journal is directed not only to basic scientists but also to clinical cardiologists who wish to follow the rapidly advancing frontiers of basic knowledge of the heart and circulation.
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