Aday Sezin, Li Wen, Karp Jeffrey M, Joshi Nitin
Center for Nanomedicine, Department of Anesthesiology, Perioperative and Pain Medicine, Brigham and Women's Hospital, Boston, MA 02115, USA.
Department of Chemical Engineering and Koch Institute for Integrative Cancer Research, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Bio Protoc. 2022 Feb 20;12(4):e4334. doi: 10.21769/BioProtoc.4334.
The blood-brain barrier (BBB), a crucial protection mechanism in the central nervous system (CNS), is a selective barrier comprised of endothelial cells. It hampers the development of therapeutic and diagnostic tools for neurological diseases due to the poor penetration of most of these agents. Rationally engineered nanoparticles (NP) can facilitate the transport of therapeutic and diagnostic agents across the BBB. However, evaluating BBB penetration by NP majorly relies on the use of expensive and time-consuming animal experiments with low throughput. BBB models composed of brain endothelial cells can be a useful tool to rapidly screen multiple NP formulations to compare their BBB penetration ability and identify optimal formulations for validation. In this protocol, we present an model of BBB developed using murine cerebral cortex endothelial cells (bEnd.3). bEnd.3 is a commercially available, easy to manipulate cell line that forms tight junctions with potent paracellular barrier property. The protocol includes culturing of bEnd.3 cells, establishment of the model, and assessing NP permeability. We believe that, due to its simplicity and consistency, this step-by-step protocol can be easily used by researchers to screen NP-based drug delivery systems for BBB penetration. Graphic abstract.
血脑屏障(BBB)是中枢神经系统(CNS)中的一种关键保护机制,是由内皮细胞组成的选择性屏障。由于大多数此类药物的渗透性较差,它阻碍了神经疾病治疗和诊断工具的开发。合理设计的纳米颗粒(NP)可以促进治疗和诊断药物穿过血脑屏障。然而,评估纳米颗粒对血脑屏障的穿透主要依赖于使用昂贵且耗时、通量低的动物实验。由脑内皮细胞组成的血脑屏障模型可以作为一种有用的工具,用于快速筛选多种纳米颗粒制剂,以比较它们的血脑屏障穿透能力,并确定用于验证的最佳制剂。在本方案中,我们展示了一种使用小鼠大脑皮质内皮细胞(bEnd.3)建立的血脑屏障模型。bEnd.3是一种可商购的、易于操作的细胞系,它能形成具有强大细胞旁屏障特性的紧密连接。该方案包括bEnd.3细胞的培养、模型的建立以及评估纳米颗粒的通透性。我们相信,由于其简单性和一致性,研究人员可以轻松使用这个分步方案来筛选基于纳米颗粒的血脑屏障穿透药物递送系统。图形摘要。