Laboratory of Cell Model for Drug Discovery, National Institutes of Biomedical Innovation, Health and Nutrition.
Laboratory of Biomedical Innovation, Graduate School of Pharmaceutical Sciences, Osaka University.
Biol Pharm Bull. 2022;45(10):1525-1530. doi: 10.1248/bpb.b22-00393.
Brain microvascular endothelial cells (BMECs) are essential component of the blood-brain barrier (BBB). BMECs strictly regulate the entry of various molecules into the central nervous system from the peripheral circulation by forming tight junctions and expressing various influx/efflux transporters and receptors. In vitro BBB models have been widely reported with primary BMECs isolated from animals, although it is known that the expression patterns and levels of transporters and receptors in BMECs differ between humans and animals. Recently, several methods to differentiate BMECs from human induced pluripotent stem (hiPS) cell have been developed. However, the expression of P-glycoprotein (P-gp), which is a key efflux transporter, in hiPS cell-derived BMECs was detected at a relatively low level compared with primary human BMECs. In this study, we examined the involvement of the canonical Wnt signaling pathway, which contributes to the development of BBB formation, in the regulation of P-gp expression in hiPS cell-derived BMECs. We found that the barrier integrity was significantly enhanced in hiPS cell-derived BMECs treated with glycogen synthase kinase-3ß (GSK-3ß) inhibitors, which are known to positively regulate the canonical Wnt signaling pathway. In addition, our data also showed P-gp expression level was increased by treatment with GSK-3ß inhibitors. In conclusion, physiological barrier function and P-gp expression in BMECs can be enhanced by the canonical Wnt signaling pathway. Our results may be useful for promoting the development of drugs for central nervous system diseases using in vitro BBB model.
脑微血管内皮细胞(BMECs)是血脑屏障(BBB)的重要组成部分。BMECs 通过形成紧密连接并表达各种内流/外流转运体和受体,严格调节各种分子从外周循环进入中枢神经系统。尽管已知 BMECs 中转运体和受体的表达模式和水平在人类和动物之间存在差异,但已广泛报道了从动物中分离的原代 BMECs 体外 BBB 模型。最近,已经开发出几种从人诱导多能干细胞(hiPS)分化 BMECs 的方法。然而,与原代人 BMECs 相比,hiPS 细胞衍生的 BMECs 中 P-糖蛋白(P-gp)的表达水平相对较低,P-gp 是一种关键的外排转运体。在这项研究中,我们研究了经典 Wnt 信号通路(有助于 BBB 形成的发展)在调节 hiPS 细胞衍生的 BMECs 中 P-gp 表达中的作用。我们发现,用糖原合酶激酶-3β(GSK-3β)抑制剂处理 hiPS 细胞衍生的 BMECs 后,屏障完整性显著增强,GSK-3β 抑制剂已知可正向调节经典 Wnt 信号通路。此外,我们的数据还表明,用 GSK-3β 抑制剂处理可增加 P-gp 的表达水平。总之,通过经典 Wnt 信号通路可以增强 BMECs 的生理屏障功能和 P-gp 表达。我们的研究结果可能有助于利用体外 BBB 模型促进中枢神经系统疾病药物的开发。