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气道肌细胞中参与钙离子信号编码的分子和细胞机制建模。

Modeling of molecular and cellular mechanisms involved in Ca2+ signal encoding in airway myocytes.

作者信息

Marhl Marko, Noble Denis, Roux Etienne

机构信息

University of Maribor, Department of Physics, Koroska cesta 160, SI-2000 Maribor, Slovenia.

出版信息

Cell Biochem Biophys. 2006;46(3):285-302. doi: 10.1385/CBB:46:3:285.

Abstract

In airway myocytes signal transduction via cytosolic calcium plays an important role. In relation with experimental results we review models of basic molecular and cellular mechanisms involved in the signal transduction from the myocyte stimulation to the activation of the contractile apparatus. We concentrate on mechanisms for encoding of input signals into Ca2+ signals and the mechanisms for their decoding. The mechanisms are arranged into a general scheme of cellular signaling, the so-called bow-tie architecture of signaling, in which calcium plays the role of a common media for cellular signals and links the encoding and decoding part. The encoding of calcium signals in airway myocytes is better known and is presented in more detail. In particular, we focus on three recent models taking into account the intracellular calcium handling and ion fluxes through the plasma membrane. The model of membrane conductances was originally proposed for predicting membrane depolarization and voltage-dependent Ca2+ influx triggered by initial cytosolic Ca2+ increase as observed on cholinergic stimulation. Cellular models of intracellular Ca2+ handling were developed to investigate the role of a mixed population of InsP3 receptor isoforms and the cellular environment in the occurrence of Ca2+ oscillations, and the respective role of the sarcoplasmic reticulum, mitochondria, and cytosolic Ca2+-binding proteins in cytosolic Ca2+ clearance. Modeling the mechanisms responsible for the decoding of calcium signals is developed in a lesser extent; however, the most recent theoretical studies are briefly presented in relation with the known experimental results.

摘要

在气道肌细胞中,通过胞质钙进行的信号转导起着重要作用。结合实验结果,我们回顾了从肌细胞刺激到收缩装置激活的信号转导所涉及的基本分子和细胞机制的模型。我们专注于将输入信号编码为Ca2+信号的机制及其解码机制。这些机制被安排在细胞信号传导的一般方案中,即所谓的信号传导领结结构,其中钙充当细胞信号的共同介质,并连接编码和解码部分。气道肌细胞中钙信号的编码更为人所知,并将更详细地介绍。特别是,我们关注最近的三个模型,这些模型考虑了细胞内钙处理和通过质膜的离子通量。膜电导模型最初是为预测膜去极化和电压依赖性Ca2+内流而提出的,这种内流是由胆碱能刺激时观察到的初始胞质Ca2+增加触发的。细胞内Ca2+处理的细胞模型被开发出来,以研究InsP3受体亚型的混合群体和细胞环境在Ca2+振荡发生中的作用,以及肌浆网、线粒体和胞质Ca2+结合蛋白在胞质Ca2+清除中的各自作用。对负责钙信号解码机制的建模研究较少;然而,最近的理论研究与已知的实验结果相关,在此简要介绍。

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