防止Junctophilin-2的特异性钙蛋白酶位点蛋白水解可防止应激诱导的兴奋-收缩不偶联和心力衰竭的发生。

IF 35.5 1区 医学 Q1 CARDIAC & CARDIOVASCULAR SYSTEMS Circulation Pub Date : 2024-09-18 DOI:10.1161/circulationaha.124.069329
Jinxi Wang,Biyi Chen,Qian Shi,Grace Ciampa,Weiyang Zhao,Guangqin Zhang,Robert M Weiss,Tianqing Peng,Duane D Hall,Long-Sheng Song
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However, it is not clear whether preventing site-specific calpain cleavage of JP2 is sufficient to protect the heart against stress-induced pathological cardiac remodeling in vivo.\r\n\r\nMETHODS\r\nCalpain-resistant JP2 knock-in mice (JP2CR) were generated by deleting the primary JP2 calpain cleavage site. Stress-dependent JP2 cleavage was assessed through in vitro cleavage assays and in isolated cardiomyocytes treated with 1 μmol/L isoproterenol by immunofluorescence. Cardiac outcomes were assessed in wild-type and JP2CR mice 5 weeks after transverse aortic constriction compared with sham surgery using echocardiography, histology, and RNA-sequencing methods. E-C coupling efficiency was measured by in situ confocal microscopy. E-C coupling proteins were evaluated by calpain assays and Western blotting. The effectiveness of adeno-associated virus gene therapy with JP2CR, JP2, or green fluorescent protein to slow HF progression was evaluated in mice with established cardiac dysfunction.\r\n\r\nRESULTS\r\nJP2 proteolysis by calpain and in response to transverse aortic constriction and isoproterenol was blocked in JP2CR cardiomyocytes. JP2CR hearts are more resistant to pressure-overload stress, having significantly improved Ca2+ homeostasis and transverse tubule organization with significantly attenuated cardiac dysfunction, hypertrophy, lung edema, fibrosis, and gene expression changes relative to wild-type mice. JP2CR preserves the integrity of calpain-sensitive E-C coupling-related proteins, including ryanodine receptor 2, CaV1.2, and sarcoplasmic reticulum calcium ATPase 2a, by attenuating transverse aortic constriction-induced increases in calpain activity. 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引用次数: 0

摘要

背景:心力衰竭(HF)患者的兴奋-收缩(E-C)耦合过程会受到破坏,导致钙离子平衡异常、适应性结构和转录重塑以及心功能不全。Junctophilin-2(JP2)是E-C耦合装置的重要组成部分,但会被钙蛋白酶特异性位点裂解,导致E-C耦合中断、浆膜横小管变性、Ca2+平衡异常和心力衰竭。方法通过删除 JP2 的主要钙蛋白酶裂解位点产生钙蛋白酶抗性 JP2 基因敲入小鼠(JP2CR)。通过体外裂解试验评估应激依赖性JP2裂解,并通过免疫荧光评估用1 μmol/L异丙肾上腺素处理的离体心肌细胞中的JP2裂解。使用超声心动图、组织学和 RNA 序列方法评估了野生型和 JP2CR 小鼠在横向主动脉收缩 5 周后与假手术相比的心脏预后。通过原位共聚焦显微镜测量 E-C 耦合效率。通过钙蛋白酶检测和 Western 印迹法评估了 E-C 耦合蛋白。结果JP2在JP2CR心肌细胞中被钙蛋白酶和横向主动脉收缩及异丙肾上腺素阻断蛋白水解。与野生型小鼠相比,JP2CR心脏对压力过载应激的抵抗力更强,钙离子平衡和横纹肌小管组织得到明显改善,心脏功能障碍、肥大、肺水肿、纤维化和基因表达变化明显减轻。JP2CR 通过减弱横向主动脉收缩引起的钙蛋白酶活性增加,保护了钙蛋白酶敏感的 E-C 偶联相关蛋白的完整性,包括雷诺丁受体 2、CaV1.2 和肌质网钙 ATPase 2a。结论本文所展示的数据表明,通过禁止 JP2 的位点特异性钙蛋白酶裂解来保护 JP2 依赖性 E-C 偶联,可带来多方面的有益影响,使心脏免受应激诱导的蛋白水解、肥厚和高房颤症的影响。我们的数据还表明,通过基因治疗方法特异性靶向 JP2 的主要钙蛋白酶裂解位点具有巨大的治疗潜力,可作为治疗高血压的新型精准药物。
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Preventing Site-Specific Calpain Proteolysis of Junctophilin-2 Protects Against Stress-Induced Excitation-Contraction Uncoupling and Heart Failure Development.
BACKGROUND Excitation-contraction (E-C) coupling processes become disrupted in heart failure (HF), resulting in abnormal Ca2+ homeostasis, maladaptive structural and transcriptional remodeling, and cardiac dysfunction. Junctophilin-2 (JP2) is an essential component of the E-C coupling apparatus but becomes site-specifically cleaved by calpain, leading to disruption of E-C coupling, plasmalemmal transverse tubule degeneration, abnormal Ca2+ homeostasis, and HF. However, it is not clear whether preventing site-specific calpain cleavage of JP2 is sufficient to protect the heart against stress-induced pathological cardiac remodeling in vivo. METHODS Calpain-resistant JP2 knock-in mice (JP2CR) were generated by deleting the primary JP2 calpain cleavage site. Stress-dependent JP2 cleavage was assessed through in vitro cleavage assays and in isolated cardiomyocytes treated with 1 μmol/L isoproterenol by immunofluorescence. Cardiac outcomes were assessed in wild-type and JP2CR mice 5 weeks after transverse aortic constriction compared with sham surgery using echocardiography, histology, and RNA-sequencing methods. E-C coupling efficiency was measured by in situ confocal microscopy. E-C coupling proteins were evaluated by calpain assays and Western blotting. The effectiveness of adeno-associated virus gene therapy with JP2CR, JP2, or green fluorescent protein to slow HF progression was evaluated in mice with established cardiac dysfunction. RESULTS JP2 proteolysis by calpain and in response to transverse aortic constriction and isoproterenol was blocked in JP2CR cardiomyocytes. JP2CR hearts are more resistant to pressure-overload stress, having significantly improved Ca2+ homeostasis and transverse tubule organization with significantly attenuated cardiac dysfunction, hypertrophy, lung edema, fibrosis, and gene expression changes relative to wild-type mice. JP2CR preserves the integrity of calpain-sensitive E-C coupling-related proteins, including ryanodine receptor 2, CaV1.2, and sarcoplasmic reticulum calcium ATPase 2a, by attenuating transverse aortic constriction-induced increases in calpain activity. Furthermore, JP2CR gene therapy after the onset of cardiac dysfunction was found to be effective at slowing the progression of HF and superior to wild-type JP2. CONCLUSIONS The data presented here demonstrate that preserving JP2-dependent E-C coupling by prohibiting the site-specific calpain cleavage of JP2 offers multifaceted beneficial effects, conferring cardiac protection against stress-induced proteolysis, hypertrophy, and HF. Our data also indicate that specifically targeting the primary calpain cleavage site of JP2 by gene therapy approaches holds great therapeutic potential as a novel precision medicine for treating HF.
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来源期刊
Circulation
Circulation 医学-外周血管病
CiteScore
45.70
自引率
2.10%
发文量
1473
审稿时长
2 months
期刊介绍: Circulation is a platform that publishes a diverse range of content related to cardiovascular health and disease. This includes original research manuscripts, review articles, and other contributions spanning observational studies, clinical trials, epidemiology, health services, outcomes studies, and advancements in basic and translational research. The journal serves as a vital resource for professionals and researchers in the field of cardiovascular health, providing a comprehensive platform for disseminating knowledge and fostering advancements in the understanding and management of cardiovascular issues.
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