University Hospital Würzburg, Chair Tissue Engineering and Regenerative Medicine, 97070 Würzburg, Germany; Translational Center Würzburg "Regenerative Therapies for Oncology and Musculoskeletal Diseases", Branch of Fraunhofer Institute for Interfacial Engineering and Biotechnology IGB, 97070 Würzburg, Germany.
Translational Center Würzburg "Regenerative Therapies for Oncology and Musculoskeletal Diseases", Branch of Fraunhofer Institute for Interfacial Engineering and Biotechnology IGB, 97070 Würzburg, Germany.
Stem Cell Reports. 2017 Apr 11;8(4):894-906. doi: 10.1016/j.stemcr.2017.02.021. Epub 2017 Mar 23.
In vitro models of the human blood-brain barrier (BBB) are highly desirable for drug development. This study aims to analyze a set of ten different BBB culture models based on primary cells, human induced pluripotent stem cells (hiPSCs), and multipotent fetal neural stem cells (fNSCs). We systematically investigated the impact of astrocytes, pericytes, and NSCs on hiPSC-derived BBB endothelial cell function and gene expression. The quadruple culture models, based on these four cell types, achieved BBB characteristics including transendothelial electrical resistance (TEER) up to 2,500 Ω cm and distinct upregulation of typical BBB genes. A complex in vivo-like tight junction (TJ) network was detected by freeze-fracture and transmission electron microscopy. Treatment with claudin-specific TJ modulators caused TEER decrease, confirming the relevant role of claudin subtypes for paracellular tightness. Drug permeability tests with reference substances were performed and confirmed the suitability of the models for drug transport studies.
体外血脑屏障 (BBB) 模型对于药物开发非常理想。本研究旨在分析一组基于原代细胞、人诱导多能干细胞 (hiPSC) 和多能胎神经干细胞 (fNSC) 的十种不同 BBB 培养模型。我们系统地研究了星形胶质细胞、周细胞和神经干细胞对 hiPSC 衍生的 BBB 内皮细胞功能和基因表达的影响。基于这四种细胞类型的四重培养模型实现了 BBB 的特征,包括跨内皮电阻 (TEER) 高达 2500 Ω cm,以及典型的 BBB 基因的明显上调。通过冷冻断裂和透射电子显微镜检测到复杂的类体内紧密连接 (TJ) 网络。用 Claudin 特异性 TJ 调节剂处理会导致 TEER 降低,证实 Claudin 亚型对于细胞旁紧密性的相关作用。用参比物质进行药物渗透性测试,证实了这些模型适合进行药物转运研究。