Investigador por México (Consejo Nacional de Ciencia y Tecnología, México), ; Department of Electrical Engineering, Universidad Autónoma Metropolitana;
Department of Electrical Engineering, Universidad Autónoma Metropolitana.
J Vis Exp. 2022 Mar 9(181). doi: 10.3791/63351.
Structural properties of pancreatic islets are key for the functional response of insulin, glucagon, and somatostatin-secreting cells, due to their implications in intraislet communication via electric, paracrine, and autocrine signaling. In this protocol, the three-dimensional architecture of a pancreatic islet is firstly reconstructed from experimental data using a novel computational algorithm. Next, the morphological and connectivity properties of the reconstructed islet, such as the number and percentages of the different type of cells, cellular volume, and cell-to-cell contacts, are obtained. Then, network theory is used to describe the connectivity properties of the islet through network-derived metrics such as average degree, clustering coefficient, density, diameter, and efficiency. Finally, all these properties are functionally evaluated through computational simulations using a model of coupled oscillators. Overall, here we describe a step-by-step workflow, implemented in IsletLab, a multiplatform application developed specifically for the study and simulation of pancreatic islets, to apply a novel computational methodology to characterize and analyze pancreatic islets as a complement to the experimental work.
胰岛的结构特性是胰岛素、胰高血糖素和生长抑素分泌细胞功能反应的关键,因为它们通过电、旁分泌和自分泌信号在胰岛内通讯中具有重要意义。在本方案中,首先使用新型计算算法从实验数据中重建胰岛的三维结构。然后,获得重建胰岛的形态和连通性特性,例如不同类型细胞的数量和百分比、细胞体积和细胞间接触。然后,使用网络理论通过网络派生的度量(如平均度数、聚类系数、密度、直径和效率)来描述胰岛的连通性特性。最后,通过使用耦合振荡器模型的计算模拟,对所有这些特性进行功能评估。总之,这里我们描述了一个逐步工作流程,该流程在 IsletLab 中实现,IsletLab 是一个专门用于研究和模拟胰岛的多平台应用程序,用于应用一种新的计算方法来描述和分析胰岛,作为实验工作的补充。