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Role of microprojections in myoendothelial feedback - a theoretical study

机译:微突物在肌内皮反馈中的作用-理论研究

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We investigated the role of myoendothelial projections (MPs) in endothelial cell (EC) feedback response to smooth muscle cell (SMC) stimulation using mathematical modelling. A previously developed compartmental EC-SMC model is modified to include MPs as subcellular compartments in the EC. The model is further extended into a 2D continuum model using a finite element method (FEM) approach and electron microscopy images to account for MP geometry. The EC and SMC are coupled via non-selective myoendothelial gap junctions (MEGJs) which are located on MPs and allow exchange of Ca2+, K+, Na+ and Cl- ions and inositol 1,4,5-triphosphate (IP3). Models take into consideration recent evidence for co-localization of intermediate-conductance calcium-activated potassium channels (IKCa) and IP3 receptors (IP3Rs) in the MPs. SMC stimulation causes an IP3-mediated Ca2+ transient in the MPs with limited global spread in the bulk EC. A hyperpolarizing feedback generated by the localized IKCa channels is transmitted to the SMC via MEGJs. MEGJ resistance (Rgj) and the density of IKCa and IP3R in the projection influence the extent of EC response to SMC stimulation. The predicted Ca2+ transients depend also on the volume and geometry of the MP. We conclude that in the myoendothelial feedback response to SMC stimulation, MPs are required to amplify the SMC initiated signal. Simulations suggest that the signal is mediated by IP3 rather than Ca2+ diffusion and that a localized rather than a global EC Ca2+ mobilization is more likely following SMC stimulation.
机译:我们使用数学模型研究了内皮细胞投射(MPs)在内皮细胞(EC)对平滑肌细胞(SMC)刺激的反馈反应中的作用。修改了先前开发的隔室EC-SMC模型,将MP作为EC中的亚细胞隔室。使用有限元方法(FEM)方法和电子显微镜图像将模型进一步扩展为2D连续体模型,以说明MP几何形状。 EC和SMC通过位于MP上的非选择性心肌内皮间隙连接(MEGJ)耦合,并允许交换Ca2 +,K +,Na +和Cl-离子以及肌醇1,4,5-三磷酸(IP3)。模型考虑了MP中MP的中间传导钙激活钾通道(IKCa)和IP3受体(IP3Rs)共同定位的最新证据。 SMC刺激在MP中引起IP3介导的Ca2 +瞬变,而在大体积EC中的全局扩散有限。由本地IKCa通道生成的超极化反馈通过MEGJ发送到SMC。投影中的MEGJ抵抗力(Rgj)和IKCa和IP3R的密度会影响EC对SMC刺激的反应程度。预测的Ca2 +瞬变还取决于MP的体积和几何形状。我们得出结论,在对SMC刺激的肌内皮反馈反应中,需要MP来放大SMC启动信号。模拟表明该信号是由IP3而不是Ca2 +扩散介导的,并且在SMC刺激后更可能发生局部而不是整体EC Ca2 +动员。

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