Huang Kaixiang, Castiaux Andre, Podicheti Ram, Rusch Douglas B, Martin R Scott, Baker Lane A
Department of Chemistry, Indiana University Bloomington, 800 E. Kirkwood Avenue, Bloomington, Indiana 47405, USA.
Department of Chemistry and Center for Additive Manufacturing, Saint Louis University, 3501 Laclede Avenue, St. Louis, Missouri 63103, USA.
Small Methods. 2021 Sep 15;5(9). doi: 10.1002/smtd.202100592. Epub 2021 Aug 16.
The blood brain barrier (BBB) protects the central nervous system from toxins and pathogens in the blood by regulating permeation of molecules through the barrier interface. BBB models described to date reproduce some aspects of BBB functionality, but also suffer from incomplete phenotypic expression of brain endothelial traits, difficulty in reproducibility and fabrication, or overall cost. To address these limitations, we describe a three-dimensional (3D) BBB model based on a hybrid paper/nanofiber scaffold. The cell culture platform utilizes lens paper as a framework to accommodate 3D culture of astrocytes. An electrospun nanofiber layer is coated onto one face of the paper to mimic the basement membrane and support growth of an organized two-dimensional layer of endothelial cells (ECs). Human induced pluripotent stem cell-derived ECs and astrocytes are co-cultured to develop a human BBB model. Morphological and spatial organization of model are validated with confocal microscopy. Measurements of transendothelial resistance and permeability demonstrate the BBB model develops a high-quality barrier and responds to hyperosmolar treatments. RNA-sequencing shows introduction of astrocytes both regulates EC tight junction proteins and improves endothelial phenotypes related to vasculogenesis. This model shows promise as a model platform for future studies of the BBB.
血脑屏障(BBB)通过调节分子穿过屏障界面的渗透,保护中枢神经系统免受血液中的毒素和病原体侵害。迄今为止所描述的BBB模型再现了BBB功能的某些方面,但也存在脑内皮细胞特征的表型表达不完整、可重复性和制造困难或总体成本高等问题。为了解决这些局限性,我们描述了一种基于纸质/纳米纤维混合支架的三维(3D)BBB模型。该细胞培养平台利用镜头纸作为框架来容纳星形胶质细胞的3D培养。将电纺纳米纤维层涂覆在纸张的一个面上,以模拟基底膜并支持有组织的二维内皮细胞(ECs)层的生长。将人诱导多能干细胞衍生的ECs和星形胶质细胞共培养以建立人BBB模型。用共聚焦显微镜验证模型的形态和空间组织。跨内皮电阻和通透性的测量表明,该BBB模型形成了高质量的屏障并对高渗处理有反应。RNA测序显示星形胶质细胞的引入既调节了EC紧密连接蛋白,又改善了与血管生成相关的内皮细胞表型。该模型有望成为未来BBB研究的模型平台。