首页> 美国卫生研究院文献>The Journal of Physiology >Paradoxical SR Ca2+ release in guinea-pig cardiac myocytes after β-adrenergic stimulation revealed by two-photon photolysis of caged Ca2+
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Paradoxical SR Ca2+ release in guinea-pig cardiac myocytes after β-adrenergic stimulation revealed by two-photon photolysis of caged Ca2+

机译:笼型Ca2 +的双光子光解揭示了β-肾上腺素刺激后豚鼠心肌细胞中反常的SR Ca2 +释放

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摘要

In heart muscle the amplification and shaping of Ca2+ signals governing contraction are orchestrated by recruiting a variable number of Ca2+ sparks. Sparks reflect Ca2+ release from the sarcoplasmic reticulum (SR) via Ca2+ release channels (ryanodine receptors, RyRs). RyRs are activated by Ca2+ influx via L-type Ca2+ channels with a specific probability that may depend on regulatory mechanisms (e.g. β-adrenergic stimulation) or diseased states (e.g. heart failure). Changes of RyR phosphorylation may be critical for both regulation and impaired function in disease. Using UV flash photolysis of caged Ca2+ and short applications of caffeine in guinea-pig ventricular myocytes, we found that Ca2+ release signals on the cellular level were largely governed by global SR content. During β-adrenergic stimulation resting myocytes exhibited smaller SR Ca2+ release signals when activated by photolysis (62.3% of control), resulting from reduced SR Ca2+ content under these conditions (58.6% of control). In contrast, local signals triggered with diffraction limited two-photon photolysis displayed the opposite behaviour, exhibiting a larger Ca2+ release (164% of control) despite reduced global and local SR Ca2+ content. This apparent paradox implies changes of RyR open probabilities after β-adrenergic stimulation, enhancing local regenerativity and reliability of Ca2+ signalling. Thus, our results underscore the importance of phosphorylation of RyRs (or of a related protein), as a regulatory physiological mechanism that may also provide new therapeutic avenues to recover impaired Ca2+ signalling during cardiac disease.
机译:在心肌中,通过募集不同数量的Ca 2 + 火花来协调控制收缩的Ca 2 + 信号的放大和成形。火花反映出Ca 2 + 通过Ca 2 + 释放通道(肌氨酸受体,RyRs)从肌质网(SR)释放。 RyRs被Ca 2 + 经由L型Ca 2 + 通道流入而激活,其特定概率可能取决于调节机制(例如,β-肾上腺素刺激)或患病状态(例如心力衰竭)。 RyR磷酸化的改变对于疾病的调节和功能受损可能至关重要。笼养的Ca 2 + 的紫外线快速光解和咖啡因在豚鼠心室肌​​细胞中的短暂应用,我们发现Ca 2 + 释放信号在细胞水平上受到很大控制通过全球SR内容。在β-肾上腺素刺激过程中,静止的心肌细胞在被光解激活时表现出较小的SR Ca 2 + 释放信号(占对照的62.3%),这是由于在这些条件下SR Ca 2 + 含量降低条件(对照组的58.6%)。相反,尽管整体和局部SR Ca 2+降低,但衍射限制的双光子光解触发的局部信号表现出相反的行为,表现出更大的Ca 2 + 释放(占对照的164%)。 内容。这种明显的悖论暗示了β-肾上腺素能刺激后RyR开放概率的改变,从而增强了Ca 2 + 信号的局部再生性和可靠性。因此,我们的结果强调了RyRs(或相关蛋白)磷酸化的重要性,它是一种调节性的生理机制,也可能提供新的治疗途径,以恢复心脏病期间受损的Ca 2 + 信号传导。

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