Endothelial barrier function is co-regulated at vessel bifurcations by fluid forces and sphingosine-1-phosphate

Q3 Biochemistry, Genetics and Molecular Biology Biomaterials and biosystems Pub Date : 2021-09-01 DOI:10.1016/j.bbiosy.2021.100020
Ehsan Akbari , Griffin B. Spychalski , Miles M. Menyhert , Kaushik K. Rangharajan , Joseph W. Tinapple , Shaurya Prakash , Jonathan W. Song
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引用次数: 3

Abstract

Sphingosine-1-phosphate (S1P) is a bioactive sphingolipid mediator of endothelial barrier function. Prior studies have implicated mechanical stimulation due to intravascular laminar shear stress in co-regulating S1P signaling in endothelial cells (ECs). Yet, vascular networks in vivo consist of vessel bifurcations, and this geometry generates hemodynamic forces at the bifurcation point distinct from laminar shear stress. However, the role of these forces at vessel bifurcations in regulating S1P-dependent endothelial barrier function is not known. In this study, we implemented a microfluidic platform that recapitulates the flow dynamics of vessel bifurcations with in situ quantification of the permeability of microvessel analogues. Co-application of S1P with impinging bifurcated fluid flow, which is characterized by approximately zero shear stress and 38 dyn•cm−2 stagnation pressure at the vessel bifurcation point, promotes vessel stabilization. Similarly, co-treatment of S1P with 3 dyn•cm−2 laminar shear stress is also protective of endothelial barrier function. Moreover, it is shown that vessel stabilization due to bifurcated fluid flow and laminar shear stress is dependent on S1P receptor 1 or 2 signaling. Collectively, these findings demonstrate the endothelium-protective function of fluid forces at vessel bifurcations and their involvement in coordinating S1P-dependent regulation of vessel permeability.

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内皮屏障功能在血管分叉处受流体力和鞘氨醇-1-磷酸共同调节
鞘鞘醇-1-磷酸(S1P)是内皮屏障功能的生物活性鞘脂介质。先前的研究表明,由于血管内层流剪切应力引起的机械刺激在内皮细胞(ECs)中共同调节S1P信号。然而,体内的血管网络由血管分叉组成,这种几何形状在分叉点产生的血流动力学力与层流剪切应力不同。然而,这些力量在血管分叉中调节依赖于s1p的内皮屏障功能的作用尚不清楚。在这项研究中,我们实现了一个微流控平台,该平台概括了血管分叉的流动动力学,并对微血管类似物的渗透率进行了原位量化。S1P与碰撞分岔流体的共同作用,在血管分岔点具有近似为零的剪切应力和38 dyn•cm−2的滞止压力,促进了血管的稳定。同样,S1P与3 dyn•cm−2层流剪切应力共同处理也能保护内皮屏障功能。此外,研究表明,分叉流体流动和层流剪切应力导致的血管稳定依赖于S1P受体1或2信号。总的来说,这些发现证明了血管分叉处流体力的内皮保护功能,以及它们参与协调依赖于s1的血管通透性调节。
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