Role of AMPK in Atrial Metabolic Homeostasis and Substrate Preference

Zeren Toksoy, Yina Ma, Leigh Goedeke, Wenxue V Li, Xiaoyue Hu, Xiaohong Wu, Marine Cacheux, Yansheng Liu, Fadi G Akar, Gerald I Shulman, Lawrence H Young
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Abstract

Atrial fibrillation is the most common clinical arrhythmia and may be due in part to metabolic stress. Atrial specific deletion of the master metabolic sensor, AMP-activated protein kinase (AMPK), induces atrial remodeling culminating in atrial fibrillation in mice, implicating AMPK signaling in the maintenance of atrial electrical and structural homeostasis. However, atrial substrate preference for mitochondrial oxidation and the role of AMPK in regulating atrial metabolism are unknown. Here, using LC-MS/MS methodology combined with infusions of [13C6]glucose and [13C4]β-hydroxybutyrate in conscious mice, we demonstrate that conditional deletion of atrial AMPK catalytic subunits shifts mitochondrial atrial metabolism away from fatty acid oxidation and towards pyruvate oxidation. LC-MS/MS-based quantification of acyl-CoAs demonstrated decreased atrial tissue content of long-chain fatty acyl-CoAs. Proteomic analysis revealed a broad downregulation of proteins responsible for fatty acid uptake (LPL, CD36, FABP3), acylation and oxidation. Atrial AMPK deletion reduced expression of atrial PGC1-α and downstream PGC1-α/PPARα/RXR regulated gene transcripts. In contrast, atrial [14C]2-deoxyglucose uptake and GLUT1 expression increased with fasting in mice with AMPK deletion, while the expression of glycolytic enzymes exhibited heterogenous changes. Thus, these results highlight the crucial homeostatic role of AMPK in the atrium, with loss of atrial AMPK leading to downregulation of the PGC1-α/PPARα pathway and broad metabolic reprogramming with a loss of fatty acid oxidation, which may contribute to atrial remodeling and arrhythmia.
AMPK 在心房代谢平衡和底物偏好中的作用
心房颤动是最常见的临床心律失常,其部分原因可能是新陈代谢压力。小鼠心房特异性缺失主代谢传感器 AMP 激活蛋白激酶 (AMPK),会诱发心房重塑,最终导致心房颤动,这表明 AMPK 信号与维持心房电平衡和结构平衡有关。然而,心房对线粒体氧化的底物偏好以及 AMPK 在调节心房代谢中的作用尚不清楚。在这里,我们使用 LC-MS/MS 方法,结合在清醒小鼠体内输注 [13C6]glucose 和 [13C4]β-hydroxybutyrate 证明,有条件地缺失心房 AMPK 催化亚基会使心房线粒体代谢从脂肪酸氧化转向丙酮酸氧化。基于 LC-MS/MS 的酰基-CoAs 定量显示,心房组织中长链脂肪酰基-CoAs 的含量下降。蛋白质组分析显示,负责脂肪酸摄取(LPL、CD36、FABP3)、酰化和氧化的蛋白质广泛下调。心房 AMPK 缺失减少了心房 PGC1-α 和下游 PGC1-α/PPARα/RXR 调控基因转录本的表达。相反,AMPK缺失小鼠心房[14C]2-脱氧葡萄糖摄取量和GLUT1表达量随禁食而增加,而糖酵解酶的表达量则表现出不同的变化。因此,这些结果突显了 AMPK 在心房中至关重要的平衡作用,心房 AMPK 缺失会导致 PGC1-α/PPARα 通路下调和广泛的代谢重编程,脂肪酸氧化丧失,这可能会导致心房重塑和心律失常。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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