Meena Megha, Vandormael Robin, De Laere Maxime, Pintelon Isabel, Berneman Zwi, Watts Regan, Cools Nathalie
Laboratory of Experimental Hematology, Vaccine & Infectious Disease Institute (VAXINFECTIO), Faculty of Medicine and Health Sciences, University of Antwerp, 2610 Antwerp, Belgium.
Department of Product Development, Faculty of Design Sciences, University of Antwerp, 2000 Antwerp, Belgium.
Brain Sci. 2022 Sep 25;12(10):1293. doi: 10.3390/brainsci12101293.
To study the biodistribution of new chemical and biological entities, an in vitro model of the blood-brain barrier (BBB) may become an essential tool during early phases of drug discovery. Here, we present a proof-of-concept of an in-house designed three-dimensional BBB biochip designed by us. This three-dimensional dynamic BBB model consists of endothelial cells and astrocytes, co-cultured on opposing sides of a polymer-coated membrane under flow mimicking blood flow. Our results demonstrate a highly effective BBB as evidenced by (i) a 30-fold increase in transendothelial electrical resistance (TEER), (ii) a significantly higher expression of tight junction proteins, and (iii) the low FITC-dextran permeability of our technical solution as compared to a static in vitro BBB model. Importantly, our three-dimensional BBB model effectively expresses P-glycoprotein (Pg-p), a hallmark characteristic for brain-derived endothelial cells. In conclusion, we provide here a complete holistic approach and insight to the whole BBB system, potentially delivering translational significance in the clinical and pharmaceutical arenas.
为了研究新型化学和生物实体的生物分布,血脑屏障(BBB)的体外模型可能会成为药物发现早期阶段的重要工具。在此,我们展示了一个由我们自行设计的内部三维BBB生物芯片的概念验证。这个三维动态BBB模型由内皮细胞和星形胶质细胞组成,在模拟血流的流动条件下,在聚合物涂层膜的相对两侧进行共培养。我们的结果证明了一个高效的BBB,表现为:(i)跨内皮电阻(TEER)增加了30倍;(ii)紧密连接蛋白的表达显著更高;(iii)与静态体外BBB模型相比,我们技术方案的FITC-葡聚糖通透性较低。重要的是,我们的三维BBB模型有效表达了P-糖蛋白(Pg-p),这是脑源性内皮细胞的一个标志性特征。总之,我们在此提供了一种针对整个BBB系统的完整整体方法和见解,可能在临床和制药领域具有转化意义。