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首页> 外文期刊>Brain research >A new dynamic in vitro model for the multidimensional study of astrocyte-endothelial cell interactions at the blood-brain barrier.
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A new dynamic in vitro model for the multidimensional study of astrocyte-endothelial cell interactions at the blood-brain barrier.

机译:一个新的动态体外模型,用于在血脑屏障处对星形胶质细胞-内皮细胞相互作用进行多维研究。

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Blood-brain barrier endothelial cells are characterized by the presence of tight intercellular junctions, the absence of fenestrations, and a paucity of pinocytotic vesicles. The in vitro study of the BBB has progressed rapidly over the past several years as new cell culture techniques and improved technologies to monitor BBB function became available. Studies carried out on viable in vitro models are set to accelerate the design of drugs that selectively and aggressively can target the CNS. Several systems in vitro attempt to reproduce the physical and biochemical behavior of intact BBB, but most fail to reproduce the three-dimensional nature of the in vivo barrier and do not allow concomitant exposure of endothelial cells to abluminal (glia) and lumenal (flow) influences. For this purpose, we have developed a new dynamic in vitro BBB model (NDIV-BBB) designed to allow for extensive pharmacological, morphological and physiological studies. Bovine aortic endothelial cells (BAEC) developed robust growth and differentiation when co-cultured alone. In the presence of glial cells, BAEC developed elevated Trans-Endothelial Electrical Resistance (TEER). Excision of individual capillaries proportionally decreased TEER; the remaining bundles were populated with healthy cells. Flow played an essential role in EC differentiation by decreasing cell division. In conclusion, this new dynamic model of the BBB allows for longitudinal studies of the effects of flow and co-culture in a controlled and fully recyclable environment that also permits visual inspection of the abluminal compartment and manipulation of individual capillaries.
机译:血脑屏障内皮细胞的特征在于存在紧密的细胞间连接,没有窗孔以及缺乏胞吞小泡。在过去的几年中,随着新的细胞培养技术和监测BBB功能的改进技术的出现,对BBB的体外研究进展迅速。在可行的体外模型上进行的研究旨在加速选择性和积极地靶向CNS的药物的设计。几种体外系统试图重现完整的血脑屏障的物理和生化行为,但大多数系统无法重现体内屏障的三维特性,并且不允许内皮细胞同时暴露于房室(胶质)和管腔(血流)影响。为此,我们开发了一种新的体外动态BBB模型(NDIV-BBB),旨在进行广泛的药理,形态和生理研究。单独共培养时,牛主动脉内皮细胞(BAEC)表现出强劲的生长和分化能力。在存在神经胶质细胞的情况下,BAEC产生了升高的跨内皮电阻(TEER)。切除单个毛细血管会相应降低TEER;其余的束中装​​有健康的细胞。流量通过减少细胞分裂在EC分化中起着至关重要的作用。总之,BBB的这种新的动态模型允许在可控和完全可回收的环境中纵向研究流动和共培养的影响,还可以目测检查房室间隔和单个毛细管的操作。

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