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首页> 外文期刊>Antioxidants and redox signalling >HNO Enhances SERCA2a activity and cardiomyocyte function by promoting redox-dependent phospholamban oligomerization
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HNO Enhances SERCA2a activity and cardiomyocyte function by promoting redox-dependent phospholamban oligomerization

机译:HNO通过促进氧化还原依赖性磷酸单抗寡聚化而增强SERCA2a活性和心肌细胞功能

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Aims: Nitroxyl (HNO) interacts with thiols to act as a redox-sensitive modulator of protein function. It enhances sarcoplasmic reticular Ca 2+ uptake and myofilament Ca2+ sensitivity, improving cardiac contractility. This activity has led to clinical testing of HNO donors for heart failure. Here we tested whether HNO alters the inhibitory interaction between phospholamban (PLN) and the sarcoplasmic reticulum Ca 2+-ATPase (SERCA2a) in a redox-dependent manner, improving Ca 2+ handling in isolated myocytes/hearts. Results: Ventriculocytes, sarcoplasmic reticulum (SR) vesicles, and whole hearts were isolated from control (wildtype [WT]) or PLN knockout (pln-/-) mice. Compared to WT, pln-/- myocytes displayed enhanced resting sarcomere shortening, peak Ca2+ transient, and blunted β-adrenergic responsiveness. HNO stimulated shortening, relaxation, and Ca2+ transient in WT cardiomyocytes, and evoked positive inotropy/lusitropy in intact hearts. These changes were markedly blunted in pln-/- cells/hearts. HNO enhanced SR Ca2+ uptake in WT but not pln-/- SR-vesicles. Spectroscopic studies in insect cell microsomes expressing SERCA2a±PLN showed that HNO increased Ca2+-dependent SERCA2a conformational flexibility but only when PLN was present. In cardiomyocytes, HNO achieved this effect by stabilizing PLN in an oligomeric disulfide bond-dependent configuration, decreasing the amount of free inhibitory monomeric PLN available. Innovation: HNO-dependent redox changes in myocyte PLN oligomerization relieve PLN inhibition of SERCA2a. Conclusions: PLN plays a central role in HNO-induced enhancement of SERCA2a activity, leading to increased inotropy/lusitropy in intact myocytes and hearts. PLN remains physically associated with SERCA2a; however, less monomeric PLN is available resulting in decreased inhibition of the enzyme. These findings offer new avenues to improve Ca2+ handling in failing hearts. Antioxid. Redox Signal. 19, 1185-1197.
机译:目的:硝基(HNO)与硫醇相互作用,充当蛋白质功能的氧化还原敏感调节剂。它增强了肌浆网状Ca 2+的吸收和肌丝Ca 2+的敏感性,改善了心脏的收缩力。这项活动已导致对HNO供体进行心力衰竭的临床测试。在这里,我们测试了HNO是否以氧化还原依赖性的方式改变了磷酸lamban(PLN)和肌质网Ca 2 + -ATPase(SERCA2a)之间的抑制性相互作用,从而改善了离体心肌细胞/心脏中Ca 2+的处理。结果:从对照组(野生型[WT])或PLN基因敲除(pln-/-)小鼠中分离出心室细胞,肌浆网(SR)囊泡和整个心脏。与野生型相比,pln-/-心肌细胞显示出增强的静息肌节缩短,峰值Ca2 +瞬变和钝化的β-肾上腺素反应性。 HNO刺激WT心肌细胞的缩短,松弛和Ca2 +瞬变,并在完整心脏中引起正性肌力/异性肌力。这些变化在pln-/-细胞/心脏中明显减弱。 HNO增强了WT的SR Ca2 +吸收,但不增强pln-/-SR囊泡。在表达SERCA2a±PLN的昆虫细胞微粒体中进行的光谱研究表明,HNO增加了Ca2 +依赖性SERCA2a的构象柔韧性,但仅当存在PLN时才如此。在心肌细胞中,HNO通过将PLN稳定在寡聚的二硫键依赖性结构中,从而减少了可用的游离抑制性单体PLN的数量,从而实现了这一效果。创新:心肌细胞PLN寡聚中依赖HNO的氧化还原变化可缓解PLCA对SERCA2a的抑制作用。结论:PLN在HNO诱导的SERCA2a活性增强中起着核心作用,从而导致完整的心肌细胞和心脏的肌力/视力增强。 PLN仍然与SERCA2a物理关联;但是,单体PLN较少,导致对酶的抑制作用降低。这些发现为改善心脏衰竭患者对Ca2 +的处理提供了新途径。抗氧化。氧化还原信号。 19,1185-1197。

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