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一种血脑屏障的仿生人类多细胞体外模型。

A Biomimetic Human Multi-Cellular In Vitro Model of the Blood-Brain Barrier.

作者信息

Saliba John, Saliba Jessica, El-Sabban Marwan, Mhanna Rami

机构信息

Department of Anatomy, Cell Biology and Physiological Sciences, Faculty of Medicine, American University of Beirut, Beirut 1107 2020, Lebanon.

Biomedical Engineering Program, Maroun Semaan Faculty of Engineering and Architecture, American University of Beirut, Beirut 1107 2020, Lebanon.

出版信息

Int J Mol Sci. 2025 Apr 11;26(8):3592. doi: 10.3390/ijms26083592.

Abstract

Current in vitro models fail to recapitulate specific physiological properties of the human blood-brain barrier (BBB); hence the need for a reliable platform to study central nervous system diseases and drug permeability. To mimic the normally tight blood-brain interface, primary human endothelial cells (HAECs) and primary human astrocytes (A) were grown in a confined space of the physical scaffold created by gelatin methacrylate (GelMA) hydrogel to allow optimal astrocyte-endothelial cell direct/indirect interaction. Evidence for a physiologically relevant BBB was established by assessing the expression of tight junction markers conferring the barrier function, and by measuring biophysical attributes using the trans-endothelial electrical resistance (TEER) and the Evans blue albumin (EBA) permeability assay. An HAEC+A three-dimensional (3D) co-culture was associated with 12-fold higher and ( or transcriptional levels than two-dimensional (2D) models. This model conferred the highest TEER (45 Ω·cm) in 3D HAEC+A, which value was 30 Ω·cm in 2D ( < 0.01) and 25 Ω·cm in 3D HAEC cultures ( < 0.001). Functionally, in 3D HAEC+A co-cultures, higher TEER resulted in 10-fold and 7-fold lower EBA permeability at 120 min, in HAECs alone or in to 2D co-cultures ( < 0.01). The established human primary cell model has acquired features mimicking the human BBB in vitro, and is now poised to be tested for the permeability of the BBB to pharmacological agents, parasites, cells (such as brain-tropic cancer cell metastasis) and any mechanisms that might involve traversing the BBB.

摘要

目前的体外模型无法重现人类血脑屏障(BBB)的特定生理特性;因此,需要一个可靠的平台来研究中枢神经系统疾病和药物通透性。为了模拟正常紧密的血脑界面,将原代人内皮细胞(HAECs)和原代人星形胶质细胞(A)培养在由甲基丙烯酸明胶(GelMA)水凝胶创建的物理支架的受限空间中,以实现最佳的星形胶质细胞 - 内皮细胞直接/间接相互作用。通过评估赋予屏障功能的紧密连接标志物的表达,并使用跨内皮电阻(TEER)和伊文思蓝白蛋白(EBA)通透性测定法测量生物物理属性,建立了具有生理相关性的血脑屏障的证据。与二维(2D)模型相比,HAEC + A三维(3D)共培养物的 和 (或)转录水平高12倍。该模型在3D HAEC + A中赋予最高的TEER(45Ω·cm),在2D中该值为30Ω·cm(<0.01),在3D HAEC培养物中为25Ω·cm(<0.001)。在功能上,在3D HAEC + A共培养物中,较高的TEER导致在120分钟时,单独的HAEC或与2D共培养物相比,EBA通透性分别降低10倍和7倍(<0.01)。已建立的人类原代细胞模型在体外获得了模拟人类血脑屏障的特征,现在准备测试血脑屏障对药物、寄生虫、细胞(如脑嗜性癌细胞转移)以及任何可能涉及穿越血脑屏障的机制的通透性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/77b5/12027270/4d9631fdfe7d/ijms-26-03592-g001.jpg

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