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心力衰竭中心脏能量代谢的实验观察现象源自心脏代谢模拟。

Experimentally observed phenomena on cardiac energetics in heart failure emerge from simulations of cardiac metabolism.

作者信息

Wu Fan, Zhang Jianyi, Beard Daniel A

机构信息

Biotechnology and Bioengineering Center and Department of Physiology, Medical College of Wisconsin, Milwaukee, WI 53226, USA.

出版信息

Proc Natl Acad Sci U S A. 2009 Apr 28;106(17):7143-8. doi: 10.1073/pnas.0812768106. Epub 2009 Apr 8.

Abstract

The failing heart is hypothesized to suffer from energy supply inadequate for supporting normal cardiac function. We analyzed data from a canine left ventricular hypertrophy model to determine how the energy state evolves because of changes in key metabolic pools. Our findings--confirmed by in vivo (31)P-magnetic resonance spectroscopy--indicate that the transition between the clinically observed early compensatory phase and heart failure and the critical point at which the transition occurs are emergent properties of cardiac energy metabolism. Specifically, analysis reveals a phenomenon in which low and moderate reductions in metabolite pools have no major negative impact on oxidative capacity, whereas reductions beyond a critical tipping point lead to a severely compromised energy state. The transition point corresponds to reductions in the total adenine nucleotide pool (TAN) of approximately 30%, corresponding to the reduction observed in humans in heart failure [Ingwall JS, Weiss RG (2004) Is the failing heart energy starved? On using chemical energy to support cardiac function. Circ Res 95(2):135-145]. At given values of TAN and the total exchangeable phosphate pool during hypertrophic remodeling, the creatine pool attains a value that is associated with optimal ATP hydrolysis potential. Thus, both increases and decreases to the creatine pool are predicted to result in diminished energetic state unless accompanied by appropriate simultaneous changes in the other pools.

摘要

衰竭心脏被认为存在能量供应不足,无法支持正常心脏功能的情况。我们分析了犬左心室肥厚模型的数据,以确定关键代谢池的变化如何影响能量状态的演变。我们的研究结果——通过体内磷磁共振波谱得到证实——表明,临床观察到的早期代偿期与心力衰竭之间的转变以及转变发生的临界点是心脏能量代谢的涌现特性。具体而言,分析揭示了一种现象,即代谢物池的轻度和中度减少对氧化能力没有重大负面影响,而超过临界转折点的减少会导致能量状态严重受损。转变点对应于总腺嘌呤核苷酸池(TAN)减少约30%,这与人类心力衰竭时观察到的减少情况一致[英格瓦尔·J·S,魏斯·R·G(2004年)衰竭心脏能量匮乏吗?关于利用化学能支持心脏功能。《循环研究》95(2):135 - 145]。在肥厚性重塑过程中,在给定的TAN值和总可交换磷酸盐池值下,肌酸池达到一个与最佳ATP水解潜力相关的值。因此,除非其他代谢池同时发生适当的同步变化,否则预计肌酸池的增加和减少都会导致能量状态降低。

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