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首页> 外文期刊>Journal of Mathematical Biology >Mathematical modelling and computational study of two-dimensional and three-dimensional dynamics of receptor-ligand interactions in signalling response mechanisms
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Mathematical modelling and computational study of two-dimensional and three-dimensional dynamics of receptor-ligand interactions in signalling response mechanisms

机译:信号响应机制中受体-配体相互作用的二维和三维动力学的数学建模和计算研究

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Cell signalling processes involve receptor trafficking through highly connected networks of interacting components. The binding of surface receptors to their specific ligands is a key factor for the control and triggering of signalling pathways. But the binding process still presents many enigmas and, by analogy with surface catalytic reactions, two different mechanisms can be conceived: the first mechanism is related to the Eley-Rideal (ER) mechanism, i.e. the bulk-dissolved ligand interacts directly by pure three-dimensional (3D) diffusion with the specific surface receptor; the second mechanism is similar to the Langmuir-Hinshelwood (LH) process, i.e. 3D diffusion of the ligand to the cell surface followed by reversible ligand adsorption and subsequent two-dimensional (2D) surface diffusion to the receptor. A situation where bothmechanisms simultaneously contribute to the signalling process could also occur. The aim of this paper is to perform a computational study of the behavior of the signalling response when these different mechanisms for ligand-receptor interactions are integrated into a model for signal transduction and ligand transport. To this end, partial differential equations have been used to develop spatio-temporal models that show trafficking dynamics of ligands, cell surface components, and intracellular signalling molecules through the different domains of the system. The mathematical modeling developed for these mechanisms has been applied to the study of two situations frequently found in cell systems: (a) dependence of the signal response on cell density; and (b) enhancement of the signalling response in a synaptic environment.
机译:细胞信号传导过程涉及通过相互作用元件的高度连接的网络进行受体运输。表面受体与其特异性配体的结合是控制和触发信号传导途径的关键因素。但是结合过程仍然存在许多谜团,并且类似于表面催化反应,可以设想两种不同的机制:第一种机制与Eley-Rideal(ER)机制有关,即,大量溶解的配体直接通过纯3特定表面受体的三维(3D)扩散;第二种机制类似于Langmuir-Hinshelwood(LH)过程,即配体3D扩散到细胞表面,然后可逆配体吸附和随后的二维(2D)表面扩散到受体。两种机制同时对信号传递过程起作用的情况也可能发生。本文的目的是当将这些不同的配体-受体相互作用机制整合到信号转导和配体运输模型中时,对信号响应的行为进行计算研究。为此,偏微分方程已用于开发时空模型,该模型显示了通过系统不同域的配体,细胞表面成分和细胞内信号分子的运输动态。为这些机制开发的数学模型已用于研究细胞系统中经常出现的两种情况:(a)信号响应对细胞密度的依赖性; (b)增强突触环境中的信号应答。

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