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一种无泵三细胞血脑屏障芯片模型,用于了解屏障特性和评估药物反应。

A pump-free tricellular blood-brain barrier on-a-chip model to understand barrier property and evaluate drug response.

机构信息

Bio-Manufacturing Group, Singapore Institute of Manufacturing Technology (SIMTech), A*STAR, Singapore, Singapore.

Epithelial Cell Biology Laboratory, Institute of Molecular and Cell Biology, A*STAR, Singapore, Singapore.

出版信息

Biotechnol Bioeng. 2020 Apr;117(4):1127-1136. doi: 10.1002/bit.27260. Epub 2020 Jan 18.

Abstract

Disruption of the blood-brain barrier (BBB) leads to various neurovascular diseases. Development of therapeutics required to cross the BBB is difficult due to a lack of relevant in vitro models. We have developed a three-dimensional (3D) microfluidic BBB chip (BBBC) to study cell interactions in the brain microvasculature and to test drug candidates of neurovascular diseases. We isolated primary brain microvascular endothelial cells (ECs), pericytes, and astrocytes from neonatal rats and cocultured them in the BBBC. To mimic the 3D in vivo BBB structure, we used type I collagen hydrogel to pattern the microchannel via viscous finger patterning technique to create a matrix. ECs, astrocytes, and pericytes were cocultured in the collagen matrix. The fluid flow in the BBBC was controlled by a pump-free strategy utilizing gravity as driving force and resistance in a paper-based flow resistor. The primary cells cultured in the BBBC expressed high levels of junction proteins and formed a tight endothelial barrier layer. Addition of tumor necrosis factor alpha to recapitulate neuroinflammatory conditions compromised the BBB functionality. To mitigate the neuroinflammatory stimulus, we treated the BBB model with the glucocorticoid drug dexamethasone, and observed protection of the BBB. This BBBC represents a new simple, cost-effective, and scalable in vitro platform for validating therapeutic drugs targeting neuroinflammatory conditions.

摘要

血脑屏障(BBB)的破坏会导致各种神经血管疾病。由于缺乏相关的体外模型,开发能够穿越 BBB 的治疗方法具有一定的难度。我们开发了一种三维(3D)微流控血脑屏障芯片(BBBC),用于研究脑微血管中的细胞相互作用,并测试神经血管疾病的候选药物。我们从新生大鼠中分离出原代脑微血管内皮细胞(EC)、周细胞和星形胶质细胞,并在 BBBC 中进行共培养。为了模拟体内 3D BBB 结构,我们使用 I 型胶原水凝胶通过粘性指状图案技术对微通道进行图案化,以创建基质。EC、星形胶质细胞和周细胞在胶原基质中进行共培养。BBBC 中的流体流动通过一种无泵策略进行控制,该策略利用重力作为驱动力,并利用纸质流量电阻器中的阻力。在 BBBC 中培养的原代细胞表达高水平的连接蛋白,并形成紧密的内皮屏障层。添加肿瘤坏死因子-α来模拟神经炎症条件会损害 BBB 的功能。为了减轻神经炎症刺激,我们用糖皮质激素药物地塞米松处理 BBB 模型,观察到对 BBB 的保护作用。该 BBBC 代表了一种新的简单、经济高效且可扩展的体外平台,可用于验证针对神经炎症条件的治疗药物。

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