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Ca2+ signaling in T lymphocytes: the interplay of the endoplasmic reticulum mitochondria membrane potential and CRAC channels on transcription factor activation

机译:T淋巴细胞中的Ca2 +信号传导:内质网线粒体膜电位和CRAC通道在转录因子激活上的相互作用

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摘要

T cell receptor stimulation initiates a cascade of reactions that cause an increase in intracellular calcium (Ca ) concentration mediated through inositol 1,4,5-trisphosphate (IP ). To understand the basic mechanisms by which the immune response in T cells is activated, it is useful to understand the signaling pathways that contain important targets for drugs in a quantitative fashion. A computational model helps us to understand how the selected elements in the pathways interact with each other, and which component plays the crucial role in systems. We have developed a mathematical model to explore the mechanism for controlling transcription factor activity, which regulates gene expression, by the modulation of calcium signaling triggered during T cell activation. The model simulates the activation and modulation of Ca release-activated Ca (CRAC) channels by mitochondrial dynamics and depletion of endoplasmic reticulum (ER) store, and also includes membrane potential in T-cells. The model simulates the experimental finding that increases in Ca current enhances the activation of transcription factors and the Ca influx through CRAC is also essential for the NFAT and NFκB activation. The model also suggests that plasma membrane Ca -ATPase (PMCA) controls a majority of the extrusion of Ca and modulates the activation of CRAC channels. Furthermore, the model simulations explain how the complex interaction of the endoplasmic reticulum, membrane potential, mitochondria, and ion channels such as CRAC channels control T cell activation.
机译:T细胞受体刺激引发一系列反应,这些反应导致通过肌醇1,4,5-三磷酸(IP)介导的细胞内钙(Ca)浓度增加。要了解激活T细胞免疫应答的基本机制,了解以定量方式包含重要药物靶标的信号通路是有用的。计算模型可帮助我们了解路径中所选元素如何相互影响,以及哪个组件在系统中起关键作用。我们已经建立了一个数学模型,以探索控制转录因子活性的机制,该机制通过调节T细胞活化过程中触发的钙信号传导来调节基因表达。该模型通过线粒体动力学和内质网(ER)存储的消耗来模拟Ca释放激活的Ca(CRAC)通道的激活和调节,还包括T细胞中的膜电位。该模型模拟了一个实验发现,即Ca电流的增加会增强转录因子的激活,并且通过CRAC引起的Ca流入对于NFAT和NFκB激活也是必不可少的。该模型还表明,质膜Ca -ATPase(PMCA)控制着大部分Ca的挤出并调节CRAC通道的激活。此外,模型仿真解释了内质网,膜电位,线粒体和离子通道(如CRAC通道)的复杂相互作用如何控制T细胞活化。

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