Seo Suyeong, Choi Chi-Hoon, Yi Kyung Sik, Kim Seung U, Lee Kangwon, Choi Nakwon, Lee Hong Jun, Cha Sang-Hoon, Kim Hong Nam
Brain Science Institute, Korea Institute of Science and Technology (KIST), Seoul 02792, Republic of Korea.
Program in Nano Science and Technology, Graduate School of Convergence Science and Technology, Seoul National University, Seoul 08826, Republic of Korea.
Biofabrication. 2021 May 5;13(3). doi: 10.1088/1758-5090/abf741.
The neurovascular unit (NVU) comprises multiple types of brain cells, including brain endothelial cells, astrocytes, pericytes, neurons, microglia, and oligodendrocytes. Each cell type contributes to the maintenance of the molecular transport barrier and brain tissue homeostasis. Several disorders and diseases of the central nervous system, including neuroinflammation, Alzheimer's disease, stroke, and multiple sclerosis, have been associated with dysfunction of the NVU. As a result, there has been increased demand for the development of NVUmodels. Here, we present a three-dimensional (3D) immortalized human cell-based NVU model generated by organizing the brain microvasculature in a collagen matrix embedded with six different types of cells that comprise the NVU. By surrounding a perfusable brain endothelium with six types of NVU-composing cells, we demonstrated a significant impact of the 3D co-culture on the maturation of barrier function, which is supported by cytokines secreted from NVU-composing cells. Furthermore, NVU-composing cells alleviated the inflammatory responses induced by lipopolysaccharides. Our human cell-based NVUmodel could enable elucidation of both physiological and pathological mechanisms in the human brain and evaluation of safety and efficacy in the context of high-content analysis during the process of drug development.
神经血管单元(NVU)由多种类型的脑细胞组成,包括脑内皮细胞、星形胶质细胞、周细胞、神经元、小胶质细胞和少突胶质细胞。每种细胞类型都有助于维持分子运输屏障和脑组织的稳态。包括神经炎症、阿尔茨海默病、中风和多发性硬化症在内的几种中枢神经系统疾病和病症都与NVU功能障碍有关。因此,对NVU模型的开发需求不断增加。在此,我们展示了一种基于三维(3D)永生化人类细胞的NVU模型,该模型通过在嵌入六种不同类型细胞(构成NVU)的胶原基质中组织脑微血管生成。通过用六种构成NVU的细胞围绕可灌注的脑内皮,我们证明了3D共培养对屏障功能成熟有显著影响,这得到了构成NVU的细胞分泌的细胞因子的支持。此外,构成NVU的细胞减轻了脂多糖诱导的炎症反应。我们基于人类细胞的NVU模型能够阐明人类大脑中的生理和病理机制,并在药物开发过程中的高内涵分析背景下评估安全性和有效性。