Disruption of pulmonary endothelial cell (EC) barrier function is a critical pathophysiologic event in highly morbid inflammatory conditions such as sepsis and acute respiratory disease stress syndrome. Actin cytoskeleton, an essential regulator of endothelial permeability, is a dynamic structure whose stimuli-induced rearrangement is linked to barrier modulation. Here, we used atomic force microscopy to characterize structural and mechanical changes in the F-actin cytoskeleton of cultured human pulmonary artery EC in response to both barrier-enhancing (induced by sphingosine 1-phosphate (S1P)) and barrier-disrupting (induced by thrombin) conditions. Atomic force microscopy elasticity measurements show differential effects: for the barrier protecting molecule S1P, the elastic modulus was elevated significantly on the periphery; for the barrier-disrupting molecule thrombin, on the other hand, it was elevated significantly in the central region of the cell. The force and elasticity maps correlate with F-actin rearrangements as identified by immunofluorescence analysis. Significantly, reduced expression (via siRNA) of cortactin, an actin-binding protein essential to EC barrier regulation, resulted in a shift in the S1P-mediated elasticity pattern to more closely resemble control, unstimulated endothelium.
Regulation of the micromechanical properties of pulmonary endothelium by S1P and thrombin: role of cortactin.
S1P 和凝血酶对肺内皮微机械特性的调节:皮质蛋白的作用
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作者:Arce Fernando Terán, Whitlock Jenny L, Birukova Anna A, Birukov Konstantin G, Arnsdorf Morton F, Lal Ratnesh, Garcia Joe G N, Dudek Steven M
| 期刊: | Biophysical Journal | 影响因子: | 3.100 |
| 时间: | 2008 | 起止号: | 2008 Jul;95(2):886-94 |
| doi: | 10.1529/biophysj.107.127167 | 研究方向: | 免疫/内分泌 |
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