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首页> 外文期刊>Brain research >Human astrocytes/astrocyte-conditioned medium and shear stress enhance the barrier properties of human brain microvascular endothelial cells.
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Human astrocytes/astrocyte-conditioned medium and shear stress enhance the barrier properties of human brain microvascular endothelial cells.

机译:人星形胶质细胞/星形细胞条件培养基和剪切应力增强了人脑微血管内皮细胞的屏障特性。

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The blood-brain barrier (BBB) is a structural and functional barrier that regulates the passage of molecules into and out of the brain to maintain the neural microenvironment. We have previously developed the in vitro BBB model with human brain microvascular endothelial cells (HBMEC). However, in vivo HBMEC are shown to interact with astrocytes and also exposed to shear stress through blood flow. In an attempt to develop the BBB model to mimic the in vivo condition we constructed the flow-based in vitro BBB model using HBMEC and human fetal astrocytes (HFA). We also examined the effect of astrocyte-conditioned medium (ACM) in lieu of HFA to study the role of secreted factor(s) on the BBB properties. The tightness of HBMEC monolayer was assessed by the permeability of dextran and propidium iodide as well as by measuring the transendothelial electrical resistance (TEER). We showed that the HBMEC permeability was reduced and TEER was increased by non-contact, co-cultivation with HFA and ACM. The exposure of HBMEC to shear stress also exhibited decreased permeability. Moreover, HFA/ACM and shear flow exhibited additive effect of decreasing the permeability of HBMEC monolayer. In addition, we showed that the HBMEC expression of ZO-1 (tight junction protein) was increased by co-cultivation with ACM and in response to shear stress. These findings suggest that the non-contact co-cultivation with HFA helps maintain the barrier properties of HBMEC by secreting factor(s) into the medium. Our in vitro flow model system with the cells of human origin should be useful for studying the interactions between endothelial cells, glial cells, and secreted factor(s) as well as the role of shear stress in the barrier property of HBMEC.
机译:血脑屏障(BBB)是一种结构和功能性屏障,可调节分子进出大脑的通道,以维持神经微环境。我们先前已经开发了具有人脑微血管内皮细胞(HBMEC)的体外BBB模型。然而,体内HBMEC显示与星形胶质细胞相互作用,并且还通过血流暴露于剪切应力。为了尝试开发BBB模型以模拟体内条件,我们使用HBMEC和人类胎儿星形胶质细胞(HFA)构建了基于流的体外BBB模型。我们还检查了星形胶质细胞条件培养基(ACM)代替HFA的作用,以研究分泌因子对血脑屏障性质的作用。通过右旋糖酐和碘化丙啶的渗透性以及通过测量跨内皮电阻(TEER)来评估HBMEC单层的密封性。我们表明,通过与HFA和ACM进行非接触共培养,HBMEC渗透性降低,TEER升高。 HBMEC暴露于剪切应力下也表现出降低的渗透性。此外,HFA / ACM和剪切流表现出降低HBMEC单层渗透性的叠加作用。此外,我们表明,通过与ACM共培养并响应剪切应力,ZO-1(紧密连接蛋白)的HBMEC表达增加。这些发现表明与HFA的非接触共培养有助于通过将因子分泌到培养基中来维持HBMEC的屏障特性。我们的具有人源细胞的体外流动模型系统对于研究内皮细胞,神经胶质细胞和分泌因子之间的相互作用以及剪切应力在HBMEC屏障性质中的作用应该是有用的。

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