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对ryanodine修饰的人心脏Ca2+释放通道(ryanodine受体2)门控机制的见解。

Insights into the gating mechanism of the ryanodine-modified human cardiac Ca2+-release channel (ryanodine receptor 2).

作者信息

Mukherjee Saptarshi, Thomas N Lowri, Williams Alan J

机构信息

Institute of Molecular and Experimental Medicine, Wales Heart Research Institute, Cardiff University School of Medicine, Heath Park, Cardiff, United Kingdom.

Institute of Molecular and Experimental Medicine, Wales Heart Research Institute, Cardiff University School of Medicine, Heath Park, Cardiff, United Kingdom

出版信息

Mol Pharmacol. 2014 Sep;86(3):318-29. doi: 10.1124/mol.114.093757. Epub 2014 Jul 7.

Abstract

Ryanodine receptors (RyRs) are intracellular membrane channels playing key roles in many Ca(2+) signaling pathways and, as such, are emerging novel therapeutic and insecticidal targets. RyRs are so named because they bind the plant alkaloid ryanodine with high affinity and although it is established that ryanodine produces profound changes in all aspects of function, our understanding of the mechanisms underlying altered gating is minimal. We address this issue using detailed single-channel gating analysis, mathematical modeling, and energetic evaluation of state transitions establishing that, with ryanodine bound, the RyR pore adopts an extremely stable open conformation. We demonstrate that stability of this state is influenced by interaction of divalent cations with both activating and inhibitory cytosolic sites and, in the absence of activating Ca(2+), trans-membrane voltage. Comparison of the conformational stability of ryanodine- and Imperatoxin A-modified channels identifies significant differences in the mechanisms of action of these qualitatively similar ligands.

摘要

兰尼碱受体(RyRs)是细胞内膜通道,在许多Ca(2+)信号通路中发挥关键作用,因此正成为新的治疗和杀虫靶点。RyRs之所以如此命名,是因为它们与植物生物碱兰尼碱具有高亲和力结合,尽管已经确定兰尼碱会在功能的各个方面产生深刻变化,但我们对门控改变背后机制的了解却很少。我们通过详细的单通道门控分析、数学建模和状态转换的能量评估来解决这个问题,确定在结合兰尼碱的情况下,RyR孔采用极其稳定的开放构象。我们证明这种状态的稳定性受二价阳离子与激活和抑制性胞质位点相互作用的影响,并且在没有激活Ca(2+)的情况下,受跨膜电压影响。比较兰尼碱和 Imperatoxin A修饰通道的构象稳定性,可发现这些定性相似配体作用机制的显著差异。

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