Locatelli Laura, Maier Jeanette A M
Department of Biomedical and Clinical Sciences L. Sacco, Università di Milano, Milan, Italy.
Interdisciplinary Centre for Nanostructured Materials and Interfaces, Università di Milano, Milan, Italy.
Front Cell Dev Biol. 2021 Sep 9;9:733573. doi: 10.3389/fcell.2021.733573. eCollection 2021.
Mechanical cues contribute to the maintenance of a healthy endothelium, which is essential for vascular integrity. Indeed endothelial cells are mechanosensors that integrate the forces in the form of biochemical signals. The cytoskeleton is fundamental in sensing mechanical stimuli and activating specific signaling pathways. Because the cytoskeleton is very rapidly remodeled in endothelial cells exposed to microgravity, we investigated whether the disruption of actin polymerization by cytochalasin D in 1g condition triggers and orchestrates responses similar to those occurring in micro- and macro-vascular endothelial cells upon gravitational unloading. We focused our attention on the effect of simulated microgravity on stress proteins and transient receptor potential melastatin 7 (TRPM7), a cation channel that acts as a mechanosensor and modulates endothelial cell proliferation and stress response. Simulated microgravity downregulates TRPM7 in both cell types. However, 24 h of treatment with cytochalasin D decreases the amounts of TRPM7 only in macrovascular endothelial cells, suggesting that the regulation and the role of TRPM7 in microvascular cells are more complex than expected. The 24 h culture in the presence of cytochalasin D mimics the effect of simulated microgravity in modulating stress response in micro- and macro-vascular endothelial cells. We conclude that cytoskeletal disruption might mediate some effects of microgravity in endothelial cells.
机械信号有助于维持健康的内皮细胞,而这对于血管完整性至关重要。实际上,内皮细胞是机械传感器,能将力整合为生化信号形式。细胞骨架在感知机械刺激和激活特定信号通路方面起着基础性作用。由于在暴露于微重力环境的内皮细胞中细胞骨架会非常迅速地重塑,我们研究了在1g条件下用细胞松弛素D破坏肌动蛋白聚合是否会引发并协调与重力卸载时在微血管和大血管内皮细胞中发生的反应类似的反应。我们将注意力集中在模拟微重力对应激蛋白和瞬时受体电位香草酸亚型7(TRPM7)的影响上,TRPM7是一种阳离子通道,作为机械传感器发挥作用并调节内皮细胞增殖和应激反应。模拟微重力在两种细胞类型中均下调TRPM7。然而,用细胞松弛素D处理24小时仅使大血管内皮细胞中的TRPM7量减少,这表明TRPM7在微血管细胞中的调节和作用比预期的更为复杂。在细胞松弛素D存在下进行24小时培养模拟了模拟微重力对微血管和大血管内皮细胞应激反应的调节作用。我们得出结论,细胞骨架破坏可能介导微重力在内皮细胞中的某些作用。