糖尿病肾病中炎性巨噬细胞与肾小球内皮细胞串扰的逻辑建模

Krutika Patidar, Ashlee N Ford Versypt
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摘要

糖尿病肾病是三分之一的糖尿病患者的并发症。糖尿病患者的糖代谢异常导致肾小球组织的结构和功能损伤以及全身炎症免疫反应。复杂的细胞信号是代谢和功能紊乱的核心。不幸的是,糖尿病肾病期间炎症在肾小球内皮细胞功能障碍中的作用机制尚不完全清楚。系统生物学中的数学模型可以整合实验证据和细胞信号网络,以了解疾病进展的机制。本研究建立了一个基于逻辑的常微分方程模型,利用葡萄糖和脂多糖刺激的蛋白质信号网络来研究糖尿病肾病进展过程中巨噬细胞和肾小球内皮细胞之间的炎症串扰。这种建模方法减少了研究信号网络所需的生物学参数。该模型拟合并验证了现有的生化数据从体外实验。该模型确定了糖尿病肾病期间巨噬细胞和肾小球内皮细胞信号失调的机制。此外,我们还研究了信号相互作用通过选择性敲低和下调对肾小球内皮细胞形态的影响。模拟结果显示,部分敲低VEGF受体1、PLC-γ、粘附连接蛋白和钙可部分改善肾小球内皮细胞间细胞间连接的完整性。这些发现有助于理解糖尿病肾病早期影响肾小球内皮细胞的信号和分子扰动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Logic-Based Modeling of Inflammatory Macrophage Crosstalk with Glomerular Endothelial Cells in Diabetic Kidney Disease.

Diabetic kidney disease is a complication in one out of three patients with diabetes. Aberrant glucose metabolism in diabetes leads to structural and functional damage in glomerular tissue and a systemic inflammatory immune response. Complex cellular signaling is at the core of metabolic and functional derangement. Unfortunately, the mechanism underlying the role of inflammation in glomerular endothelial cell dysfunction during diabetic kidney disease is not fully understood. Mathematical models in systems biology allow the integration of experimental evidence and cellular signaling networks to understand mechanisms involved in disease progression. This study developed a logic-based ordinary differential equations model to study inflammatory crosstalk between macrophages and glomerular endothelial cells during diabetic kidney disease progression using a protein signaling network stimulated with glucose and lipopolysaccharide. This modeling approach reduced the biological parameters needed to study signaling networks. The model was fitted to and validated against available biochemical data from in vitro experiments. The model identified mechanisms for dysregulated signaling in macrophages and glomerular endothelial cells during diabetic kidney disease. In addition, the influence of signaling interactions on glomerular endothelial cell morphology through selective knockdown and downregulation was investigated. Simulation results showed that partial knockdown of VEGF receptor 1, PLC-γ, adherens junction proteins, and calcium partially improved intercellular junction integrity between glomerular endothelial cells. These findings contribute to understanding signaling and molecular perturbations that affect the glomerular endothelial cells in the early stage of diabetic kidney disease.

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