Elementary intracellular Ca signals approximated as a transition of release channel system from a metastable state.

IF 2.7 3区 物理与天体物理 Q2 PHYSICS, APPLIED Journal of Applied Physics Pub Date : 2023-09-28 Epub Date: 2023-09-22 DOI:10.1063/5.0151255
Guillermo Veron, Victor A Maltsev, Michael D Stern, Anna V Maltsev
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Abstract

Cardiac muscle contraction is initiated by an elementary Ca signal (called Ca spark) which is achieved by collective action of Ca release channels in a cluster. The mechanism of this synchronization remains uncertain. We approached Ca spark activation as an emergent phenomenon of an interactive system of release channels. We constructed a weakly lumped Markov chain that applies an Ising model formalism to such release channel clusters and probable open channel configurations and demonstrated that spark activation is described as a system transition from a metastable to an absorbing state, analogous to the pressure required to overcome surface tension in bubble formation. This yielded quantitative estimates of the spark generation probability as a function of various system parameters. We performed numerical simulations to find spark probabilities as a function of sarcoplasmic reticulum Ca concentration, obtaining similar values for spark activation threshold as our analytic model, as well as those reported in experimental studies. Our parametric sensitivity analyses also showed that the spark activation threshold decreased as Ca sensitivity of RyR activation and RyR cluster size increased.

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基本的细胞内Ca信号近似于释放通道系统从亚稳态的转变。
心肌收缩是由一种基本的钙信号(称为钙火花)引发的,这种信号是通过集群中钙释放通道的集体作用实现的。这种同步的机制仍然不确定。我们将钙火花激活视为释放通道交互系统的一种新兴现象。我们构建了一个弱集总马尔可夫链,该链将伊辛模型形式应用于这种释放通道簇和可能的开放通道配置,并证明火花激活被描述为从亚稳态到吸收状态的系统转变,类似于克服气泡形成中的表面张力所需的压力。这产生了作为各种系统参数的函数的火花产生概率的定量估计。我们进行了数值模拟,以找到作为肌浆网钙浓度函数的放电概率,获得了与我们的分析模型相似的放电激活阈值值,以及实验研究中报道的值。我们的参数敏感性分析还表明,随着RyR活化的Ca敏感性和RyR簇大小的增加,火花活化阈值降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Applied Physics
Journal of Applied Physics 物理-物理:应用
CiteScore
5.40
自引率
9.40%
发文量
1534
审稿时长
2.3 months
期刊介绍: The Journal of Applied Physics (JAP) is an influential international journal publishing significant new experimental and theoretical results of applied physics research. Topics covered in JAP are diverse and reflect the most current applied physics research, including: Dielectrics, ferroelectrics, and multiferroics- Electrical discharges, plasmas, and plasma-surface interactions- Emerging, interdisciplinary, and other fields of applied physics- Magnetism, spintronics, and superconductivity- Organic-Inorganic systems, including organic electronics- Photonics, plasmonics, photovoltaics, lasers, optical materials, and phenomena- Physics of devices and sensors- Physics of materials, including electrical, thermal, mechanical and other properties- Physics of matter under extreme conditions- Physics of nanoscale and low-dimensional systems, including atomic and quantum phenomena- Physics of semiconductors- Soft matter, fluids, and biophysics- Thin films, interfaces, and surfaces
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