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通过 DHPR 减轻 RyR I1 位点的抑制作用来模拟骨骼肌中 Ca2+ 的释放机制。

Modeling the mechanism of Ca2+ release in skeletal muscle by DHPRs easing inhibition at RyR I1-sites.

机构信息

Department of Microbiology, Anatomy, Physiology and Pharmacology, La Trobe University, Melbourne, Australia.

出版信息

J Gen Physiol. 2024 Oct 7;156(10). doi: 10.1085/jgp.202213113. Epub 2024 Sep 4.

Abstract

Ca2+ release from the sarcoplasmic reticulum (SR) plays a central role in excitation-contraction coupling (ECC) in skeletal muscles. However, the mechanism by which activation of the voltage-sensors/dihydropyridine receptors (DHPRs) in the membrane of the transverse tubular system leads to activation of the Ca2+-release channels/ryanodine receptors (RyRs) in the SR is not fully understood. Recent observations showing that a very small Ca2+ leak through RyR1s in mammalian skeletal muscle can markedly raise the background [Ca2+] in the junctional space (JS) above the Ca2+ level in the bulk of the cytosol indicate that there is a diffusional barrier between the JS and the cytosol at large. Here, I use a mathematical model to explore the hypothesis that a sudden rise in Ca2+ leak through DHPR-coupled RyR1s, caused by reduced inhibition at the RyR1 Ca2+/Mg2+ inhibitory I1-sites when the associated DHPRs are activated, is sufficient to enable synchronized responses that trigger a regenerative rise of Ca2+ release that remains under voltage control. In this way, the characteristic response to Ca2+ of RyR channels is key not only for the Ca2+ release mechanism in cardiac muscle and other tissues, but also for the DHPR-dependent Ca2+ release in skeletal muscle.

摘要

钙离子从肌浆网(SR)释放,在骨骼肌的兴奋-收缩耦联(ECC)中起着核心作用。然而,细胞膜中电压感受器/二氢吡啶受体(DHPRs)的激活如何导致 SR 中的钙离子释放通道/兰尼碱受体(RyRs)的激活,其机制尚未完全理解。最近的观察表明,哺乳动物骨骼肌中 RyR1 非常小的钙离子泄漏可以显著提高连接间隙(JS)中的背景[Ca2+],使其高于细胞质基质的 Ca2+水平,这表明在 JS 和细胞质基质之间存在扩散屏障。在这里,我使用一个数学模型来探索假设,即当相关的 DHPR 被激活时,RyR1 Ca2+/Mg2+ 抑制 I1 位点对 RyR1 的抑制减少,导致通过 DHPR 耦联的 RyR1 发生突然的钙离子泄漏,这足以使同步反应得以触发,引发钙离子释放的再生性上升,这种上升仍然受到电压控制。通过这种方式,RyR 通道对钙离子的特征反应不仅是心肌和其他组织中钙离子释放机制的关键,也是骨骼肌中 DHPR 依赖性钙离子释放的关键。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8ee0/11390858/71c0719419e0/JGP_202213113_Fig1.jpg

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