Stone N, Shettlesworth S, Rich T C, Leavesley S J, Phan A-V
William B. Burnsed, Jr. Department of Mechanical Engineering, University of South Alabama, Mobile, AL 36688, USA.
Center for Lung Biology & Department of Pharmacology, University of South Alabama, Mobile, AL 36688, USA.
SN Appl Sci. 2019 Dec;1(12). doi: 10.1007/s42452-019-1757-9. Epub 2019 Nov 28.
In this work, we present a two-dimensional finite element analysis (FEA) model that describes fundamental intracellular signals of cyclic adenosine monophosphate (cAMP) in a general fashion. The model was subsequently solved numerically and the results were displayed in forms of time-course plots of cAMP concentration at a cellular location or color-filled contour maps of cAMP signal distribution within the cell at specific time points. Basic intracellular cAMP signaling was described in this model so it can be numerically validated by verifying its numerical results against available analytical solutions and against results obtained from other numerical techniques reported in the literature. This is the first important step before the model can be expanded in future work. Model simulations demonstrate that under certain conditions, sustained cAMP concentrations can be formed within endothelial cells (ECs), similar to those observed in rat pulmonary microvascular ECs. Spatial and temporal cAMP dynamic simulations indicated that the proposed FEA model is an effective tool for the study of the kinetics and spatial spread of second messenger signaling and can be expanded to simulate second messenger signals in the pulmonary vasculature.
在这项工作中,我们提出了一个二维有限元分析(FEA)模型,该模型以一般方式描述了环磷酸腺苷(cAMP)的基本细胞内信号。随后对该模型进行了数值求解,并将结果以细胞位置处cAMP浓度的时程图或特定时间点细胞内cAMP信号分布的彩色填充等高线图的形式显示出来。该模型描述了基本的细胞内cAMP信号传导,因此可以通过将其数值结果与可用的解析解以及文献中报道的其他数值技术获得的结果进行验证,从而在数值上得到验证。这是该模型在未来工作中得以扩展之前的第一个重要步骤。模型模拟表明,在某些条件下,内皮细胞(ECs)内可形成持续的cAMP浓度,类似于在大鼠肺微血管内皮细胞中观察到的情况。时空cAMP动态模拟表明,所提出的有限元分析模型是研究第二信使信号动力学和空间扩散的有效工具,并且可以扩展以模拟肺血管中的第二信使信号。