首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Dysregulated Zn2+ homeostasis impairs cardiac type-2 ryanodine receptor and mitsugumin 23 functions leading to sarcoplasmic reticulum Ca2+ leakage
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Dysregulated Zn2+ homeostasis impairs cardiac type-2 ryanodine receptor and mitsugumin 23 functions leading to sarcoplasmic reticulum Ca2+ leakage

机译:失调的Zn2 +稳态调节会损害心脏2型ryanodine受体和mitsugumin 23的功能导致肌浆​​网Ca2 +泄漏

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摘要

Aberrant Zn2+ homeostasis is associated with dysregulated intracellular Ca2+ release, resulting in chronic heart failure. In the failing heart a small population of cardiac ryanodine receptors (RyR2) displays sub-conductance-state gating leading to Ca2+ leakage from sarcoplasmic reticulum (SR) stores, which impairs cardiac contractility. Previous evidence suggests contribution of RyR2-independent Ca2+ leakage through an uncharacterized mechanism. We sought to examine the role of Zn2+ in shaping intracellular Ca2+ release in cardiac muscle. Cardiac SR vesicles prepared from sheep or mouse ventricular tissue were incorporated into phospholipid bilayers under voltage-clamp conditions, and the direct action of Zn2+ on RyR2 channel function was examined. Under diastolic conditions, the addition of pathophysiological concentrations of Zn2+ (≥2 nm) caused dysregulated RyR2-channel openings. Our data also revealed that RyR2 channels are not the only SR Ca2+-permeable channels regulated by Zn2+. Elevating the cytosolic Zn2+ concentration to 1 nm increased the activity of the transmembrane protein mitsugumin 23 (MG23). The current amplitude of the MG23 full-open state was consistent with that previously reported for RyR2 sub-conductance gating, suggesting that in heart failure in which Zn2+ levels are elevated, RyR2 channels do not gate in a sub-conductance state, but rather MG23-gating becomes more apparent. We also show that in H9C2 cells exposed to ischemic conditions, intracellular Zn2+ levels are elevated, coinciding with increased MG23 expression. In conclusion, these data suggest that dysregulated Zn2+ homeostasis alters the function of both RyR2 and MG23 and that both ion channels play a key role in diastolic SR Ca2+ leakage.
机译:Zn 2 + 稳态异常与细胞内Ca 2 + 释放失调有关,导致慢性心力衰竭。在衰竭的心脏中,一小部分的心脏ryanodine受体(RyR2)表现出亚电导通状态门控,导致肌浆​​网(SR)存储区Ca 2 + 泄漏,从而损害了心脏的收缩力。以前的证据表明不依赖RyR2的Ca 2 + 泄漏是通过未知机制引起的。我们试图研究Zn 2 + 在塑造心肌细胞内Ca 2 + 释放中的作用。在电压钳制条件下,将由绵羊或小鼠心室组织制备的心脏SR囊泡掺入磷脂双层中,并研究Zn 2 + 对RyR2通道功能的直接作用。在舒张期条件下,添加Zn 2 + (≥2nm)的病理生理浓度会导致RyR2通道开口失调。我们的数据还表明,RyR2通道并不是唯一受Zn 2 + 调控的SR Ca 2 + 渗透通道。将胞浆中的Zn 2 + 浓度提高到1 nm,可以提高跨膜蛋白Msugumin 23(MG23)的活性。 MG23全开状态的电流幅度与先前报道的RyR2亚电导通的幅度一致,表明在Zn 2 + 水平升高的心力衰竭中,RyR2通道不会门控处于亚导状态,但MG23门控变得更加明显。我们还显示,在暴露于缺血条件的H9C2细胞中,细胞内Zn 2 + 的水平升高,与MG23表达增加相吻合。总之,这些数据表明,失调的Zn 2 + 动态平衡会改变RyR2和MG23的功能,并且两个离子通道在舒张性SR Ca 2 + 泄漏中起关键作用。

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