Mst1 promotes cardiac ischemia–reperfusion injury by inhibiting the ERK-CREB pathway and repressing FUNDC1-mediated mitophagy

被引:0
作者
Wancheng Yu
Mei Xu
Tao Zhang
Qian Zhang
Chengwei Zou
机构
[1] Shandong Provincial Hospital Affiliated to Shandong University,Department of Cardiovascular Surgery
[2] Shandong University Qilu Hospital,Department of Geriatrics
来源
The Journal of Physiological Sciences | 2019年 / 69卷
关键词
Cardiac I/R injury; Mitochondrial apoptosis; Mst1; FUNDC1; ERK-CREB signaling pathway;
D O I
暂无
中图分类号
学科分类号
摘要
Cardiac ischemia–reperfusion (I/R) injury results mainly from mitochondrial dysfunction and cardiomyocyte death. Mitophagy sustains mitochondrial function and exerts a pro-survival effect on the reperfused heart tissue. Mammalian STE20-like kinase 1 (Mst1) regulates chronic cardiac metabolic damage and autophagic activity, but its role in acute cardiac I/R injury, especially its effect on mitophagy, is unknown. The aim of this study is to explore whether Mst1 is involved in reperfusion-mediated cardiomyocyte death via modulation of FUN14 domain containing 1 (FUNDC1)-related mitophagy. Our data indicated that Mst1 was markedly increased in reperfused hearts. However, genetic ablation of Mst1 in Mst1-knockout (Mst1-KO) mice significantly reduced the expansion of the cardiac infarction area, maintained myocardial function and abolished I/R-mediated cardiomyocyte death. At the molecular level, upregulation of Mst1 promoted ROS production, reduced mitochondrial membrane potential, facilitated the leakage of mitochondrial pro-apoptotic factors into the nucleus, and activated the caspase-9-related apoptotic pathway in reperfused cardiomyocytes. Mechanistically, Mst1 activation repressed FUNDC1 expression and consequently inhibited mitophagy. However, deletion of Mst1 was able to reverse FUNDC1 expression and thus re-activate protective mitophagy, effectively sustaining mitochondrial homeostasis and blocking mitochondrial apoptosis in reperfused cardiomyocytes. Finally, we demonstrated that Mst1 regulated FUNDC1 expression via the MAPK/ERK-CREB pathway. Inhibition of the MAPK/ERK-CREB pathway prevented FUNDC1 activation caused by Mst1 deletion. Altogether, our data confirm that Mst1 deficiency sends a pro-survival signal for the reperfused heart by reversing FUNDC1-related mitophagy and thus reducing cardiomyocyte mitochondrial apoptosis, which identifies Mst1 as a novel regulator for cardiac reperfusion injury via modulation of mitochondrial homeostasis.
引用
收藏
页码:113 / 127
页数:14
相关论文
共 458 条
[1]  
Hu SY(2017)Liraglutide directly protects cardiomyocytes against reperfusion injury possibly via modulation of intracellular calcium homeostasis J Geriatr Cardiol 14 57-66
[2]  
Zhang Y(2018)Protective role of melatonin in cardiac ischemia-reperfusion injury: from pathogenesis to targeted therapy J Pineal Res 64 e12471-587
[3]  
Zhu PJ(2017)Cardioprotective kinase signaling to subsarcolemmal and interfibrillar mitochondria is mediated by caveolar structures Basic Res Cardiol 112 15-292
[4]  
Zhou H(2016)Platelets and coronary artery disease: interactions with the blood vessel wall and cardiovascular devices Biointerphases 11 029702-113
[5]  
Chen YD(2017)Medium-chain fatty acids modulate myocardial function via a cardiac odorant receptor Basic Res Cardiol 112 13-215
[6]  
Zhou H(2017)Melatonin ameliorates myocardial ischemia reperfusion injury through SIRT3-dependent regulation of oxidative stress and apoptosis J Pineal Res. 63 e12419-207
[7]  
Ma Q(2018)DUSP1 alleviates cardiac ischemia/reperfusion injury by suppressing the Mff-required mitochondrial fission and Bnip3-related mitophagy via the JNK pathways Redox Biol 14 576-1093
[8]  
Zhu P(2016)Liraglutide protects cardiac microvascular endothelial cells against hypoxia/reoxygenation injury through the suppression of the SR-Ca(2+)-XO-ROS axis via activation of the GLP-1R/PI3 K/Akt/survivin pathways Free Radic Biol Med 95 278-507
[9]  
Ren J(2018)Melatonin protected cardiac microvascular endothelial cells against oxidative stress injury via suppression of IP3R-[Ca(2+)]c/VDAC-[Ca(2+)]m axis by activation of MAPK/ERK signaling pathway Cell Stress Chaperones 23 101-443
[10]  
Reiter RJ(2017)Mitochondrial composition and function under the control of hypoxia Redox Biol 12 208-1081