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机械应力调节顺应性 3D 血脑屏障模型中的转运。

Mechanical stress regulates transport in a compliant 3D model of the blood-brain barrier.

机构信息

Department of Biomedical Engineering, Rowan University, United States.

School of Biomedical Sciences, Rowan University, United States.

出版信息

Biomaterials. 2017 Jan;115:30-39. doi: 10.1016/j.biomaterials.2016.11.012. Epub 2016 Nov 17.

Abstract

Transport of fluid and solutes is tightly controlled within the brain, where vasculature exhibits a blood-brain barrier and there is no organized lymphatic network facilitating waste transport from the interstitial space. Here, using a compliant, three-dimensional co-culture model of the blood-brain barrier, we show that mechanical stimuli exerted by blood flow mediate both the permeability of the endothelial barrier and waste transport along the basement membrane. Application of both shear stress and cyclic strain facilitates tight junction formation in the endothelial monolayer, with and without the presence of astrocyte endfeet in the surrounding matrix. We use both dextran perfusion and TEER measurements to assess the initiation and maintenance of the endothelial barrier, and microparticle image velocimetry to characterize the fluid dynamics within the in vitro vessels. Application of pulsatile flow to the in vitro vessels induces pulsatile strain to the vascular wall, providing an opportunity to investigate stretch-induced transport along the basement membrane. We find that a pulsatile wave speed of approximately 1 mm/s with Womersley number of 0.004 facilitates retrograde transport of high molecular weight dextran along the basement membrane between the basal endothelium and surrounding astrocytes. Together, these findings indicate that the mechanical stress exerted by blood flow is an important regulator of transport both across and along the walls of cerebral microvasculature.

摘要

脑内的液体和溶质运输受到严格控制,血管具有血脑屏障,并且没有组织化的淋巴管网络来促进间质空间中的废物运输。在这里,我们使用血脑屏障的顺应性三维共培养模型,表明血流施加的机械刺激调节了内皮屏障的通透性和沿着基底膜的废物运输。在周围基质中存在或不存在星形胶质细胞足突的情况下,切应力和循环应变都有助于内皮单层中紧密连接的形成。我们使用葡聚糖灌注和 TEER 测量来评估内皮屏障的起始和维持,并使用微粒子图像测速法来描述体外血管内的流体动力学。将脉动流施加到体外血管会引起血管壁的脉动应变,为研究沿着基底膜的拉伸诱导运输提供了机会。我们发现,大约 1mm/s 的脉动波速和 0.004 的沃默斯利数有助于高分子量葡聚糖沿着基底膜从基底内皮细胞向周围星形胶质细胞的逆行运输。这些发现表明,血流施加的机械应力是调节脑微血管壁两侧和沿壁运输的重要因素。

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