Ruthenium Red Alleviates Post-Resuscitation Myocardial Dysfunction by Upregulating Mitophagy through Inhibition of USP33 in a Cardiac Arrest Rat Model

粒体自噬 下调和上调 氧化应激 医学 丙二醛 复苏 心肺复苏术 心室颤动 活性氧 心肌保护 再灌注损伤 药理学 内科学 细胞凋亡 缺血 麻醉 自噬 生物 细胞生物学 生物化学 基因
作者
Fan Zhang,Zhou Ye,Yingqi Ran,Cong Liu,Mingtao Zhang,Xiangchang Xu,Fengqing Song,Lan Yao
出处
期刊:European Journal of Pharmacology [Elsevier]
卷期号:974: 176633-176633 被引量:1
标识
DOI:10.1016/j.ejphar.2024.176633
摘要

Cardiac arrest (CA) remains a leading cause of death, with suboptimal survival rates despite efforts involving cardiopulmonary resuscitation and advanced life-support technology. Post-resuscitation myocardial dysfunction (PRMD) is an important determinant of patient outcomes. Myocardial ischemia/reperfusion injury underlies this dysfunction. Previous reports have shown that ruthenium red (RR) has a protective effect against cardiac ischemia-reperfusion injury; however, its precise mechanism of action in PRMD remains unclear. This study investigated the effects of RR on PRMD and analyzed its underlying mechanisms. Ventricular fibrillation was induced in rats, which were then subjected to cardiopulmonary resuscitation to establish an experimental CA model. At the onset of return of spontaneous circulation, RR (2.5 mg/kg) was administered intraperitoneally. Our study showed that RR improved myocardial function and reduced the production of oxidative stress markers such as malondialdehyde (MDA), glutathione peroxidase (GSSG), and reactive oxygen species (ROS) production. RR also helped maintain mitochondrial structure and increased ATP and GTP levels. Additionally, RR effectively attenuated myocardial apoptosis. Furthermore, we observed downregulation of proteins closely related to mitophagy, including ubiquitin-specific protease 33 (USP33) and P62, whereas LC3B (microtubule-associated protein light chain 3B) was upregulated. The upregulation of mitophagy may play a critical role in reducing myocardial injury. These results demonstrate that RR may attenuate PRMD by promoting mitophagy through the inhibition of USP33. These effects are likely mediated through diverse mechanisms, including antioxidant activity, apoptosis suppression, and preservation of mitochondrial integrity and energy metabolism. Consequently, RR has emerged as a promising therapeutic approach for addressing post-resuscitation myocardial dysfunction.
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