Emmet A. Francis, Justin G. Laughlin, Jørgen S. Dokken, Henrik N. T. Finsberg, Christopher T. Lee, Marie E. Rognes, Padmini Rangamani
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We demonstrate its application to several different biological systems, including yes-associated protein (YAP)/PDZ-binding motif (TAZ) mechanotransduction, calcium signaling in neurons and cardiomyocytes, and ATP generation in mitochondria. Throughout, we utilize experimentally derived realistic cellular geometries represented by well-conditioned tetrahedral meshes. These scenarios demonstrate the applicability, flexibility, accuracy and efficiency of SMART across a range of temporal and spatial scales. 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引用次数: 0
摘要
生物细胞依靠生化反应的精确时空协调来控制其功能。这种细胞信号网络一直是数学模型的研究重点,但它们的模拟仍然具有挑战性,尤其是在现实的细胞几何结构中。我们在此介绍反应和运输的空间建模算法(SMART),这是一个软件包,可接收用户关于细胞信号网络的高级规格,然后组装并求解相关的数学系统。通过 FEniCS 项目软件,SMART 利用最先进的有限元分析技术,高效、准确地解决离散化细胞和亚细胞几何结构上的细胞信号传导问题。我们展示了它在几个不同生物系统中的应用,包括 yes-associated protein (YAP)/PDZ-binding motif (TAZ) 机械传导、神经元和心肌细胞中的钙信号转导以及线粒体中的 ATP 生成。在整个过程中,我们利用实验得出的现实细胞几何图形,这些几何图形由条件良好的四面体网格表示。这些场景证明了 SMART 在一系列时间和空间尺度上的适用性、灵活性、准确性和效率。
Spatial modeling algorithms for reactions and transport in biological cells
Biological cells rely on precise spatiotemporal coordination of biochemical reactions to control their functions. Such cell signaling networks have been a common focus for mathematical models, but they remain challenging to simulate, particularly in realistic cell geometries. Here we present Spatial Modeling Algorithms for Reactions and Transport (SMART), a software package that takes in high-level user specifications about cell signaling networks and then assembles and solves the associated mathematical systems. SMART uses state-of-the-art finite element analysis, via the FEniCS Project software, to efficiently and accurately resolve cell signaling events over discretized cellular and subcellular geometries. We demonstrate its application to several different biological systems, including yes-associated protein (YAP)/PDZ-binding motif (TAZ) mechanotransduction, calcium signaling in neurons and cardiomyocytes, and ATP generation in mitochondria. Throughout, we utilize experimentally derived realistic cellular geometries represented by well-conditioned tetrahedral meshes. These scenarios demonstrate the applicability, flexibility, accuracy and efficiency of SMART across a range of temporal and spatial scales. Spatial Modeling Algorithms for Reactions and Transport (SMART) is a software package that allows users to simulate spatially resolved biochemical signaling networks within realistic geometries of cells and organelles.