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锌指同源盒蛋白3(ZFHX3)敲低通过线粒体和钙调节异常增强心房肌细胞的代谢应激:曲美他嗪的缓解作用

ZFHX3 Knockdown Enhances Metabolic Distress in Atrial Myocytes Through Mitochondrial and Calcium Dysregulation: Mitigation by Trimetazidine.

作者信息

Lkhagva Baigalmaa, Liu Shuen-Hsin, Higa Satoshi, Kao Yu-Hsun, Chen Yi-Jen

机构信息

Graduate Institute of Clinical Medicine, College of Medicine, Taipei Medical University, Taipei 11031, Taiwan.

Division of Cardiology, Department of Internal Medicine, Shuang-Ho Hospital, Taipei Medical University, New Taipei City 235, Taiwan.

出版信息

Int J Mol Sci. 2025 Sep 3;26(17):8576. doi: 10.3390/ijms26178576.

Abstract

Metabolic dysregulation in the heart plays a critical role in the pathogenesis of atrial fibrillation (AF), yet the underlying molecular mechanisms remain unclear. Loss-of-function variants in the zinc finger homeobox 3 gene () increase AF risk by promoting structural and electrical remodeling. However, the role of knockdown (KD) in cardiac metabolism has not been fully elucidated. This study investigated the impact of KD on energy metabolism in atrial myocytes and assessed the therapeutic potential of trimetazidine (TMZ). Seahorse XFe24 extracellular flux analysis, bioluminescent assays, microplate enzyme activity assays, and Western blotting were used to study energy substrate (glucose and fatty acid) oxidation stress, intracellular lactate content, glucose uptake, pyruvate dehydrogenase (PDH) activity, and regulatory protein expression in control and KD HL-1 cells with or without TMZ (10 μM) treatment. KD cells exhibited a higher acute response in oxygen consumption after Etomoxir injection, upregulated CD36 and phosphorylated ACC expression, increased glucose uptake and lactate production, reduced PDH activity, and higher levels of PDK4 and LDHA. Furthermore, KD cells showed mitochondrial Ca overload and increased phosphorylated PDH and oxidized CaMKII proteins, all of which were significantly attenuated by TMZ. Additionally, TMZ improved mitochondrial dysfunction in KD cells by decreasing basal and maximal respiration, spare capacity, and proton leak. These findings suggest that downregulation shifts substrate preference toward fatty acid utilization at the expense of glucose oxidation, contributing to metabolic and mitochondrial calcium dysregulation. TMZ mitigates these effects, highlighting its therapeutic potential in AF associated with ZFHX3 deficiency.

摘要

心脏中的代谢失调在心房颤动(AF)的发病机制中起关键作用,但其潜在的分子机制仍不清楚。锌指同源盒3基因(ZFHX3)的功能丧失变异通过促进结构和电重构增加房颤风险。然而,ZFHX3基因敲低(KD)在心脏代谢中的作用尚未完全阐明。本研究调查了ZFHX3基因敲低对心房肌细胞能量代谢的影响,并评估了曲美他嗪(TMZ)的治疗潜力。采用海马XFe24细胞外流量分析、生物发光测定、微孔板酶活性测定和蛋白质免疫印迹法,研究在有或没有TMZ(10μM)处理的对照和ZFHX3基因敲低的HL-1细胞中能量底物(葡萄糖和脂肪酸)氧化应激、细胞内乳酸含量、葡萄糖摄取、丙酮酸脱氢酶(PDH)活性以及调节蛋白表达。ZFHX3基因敲低的细胞在注射依托莫昔后耗氧量有更高的急性反应,CD36和磷酸化ACC表达上调,葡萄糖摄取和乳酸生成增加,PDH活性降低,PDK4和LDHA水平升高。此外,ZFHX3基因敲低的细胞表现出线粒体钙超载,磷酸化PDH和氧化型CaMKII蛋白增加,而这些在TMZ作用下均显著减弱。此外,TMZ通过降低基础呼吸和最大呼吸、备用容量以及质子泄漏,改善了ZFHX3基因敲低细胞的线粒体功能障碍。这些发现表明,ZFHX3下调使底物偏好转向脂肪酸利用,而以葡萄糖氧化为代价,导致代谢和线粒体钙失调。TMZ减轻了这些影响,突出了其在与ZFHX3缺乏相关的房颤中的治疗潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7a79/12429405/28ffa63f7318/ijms-26-08576-g001.jpg

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