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人类皮质球体,具有功能性血脑屏障,可用于高通量神经毒性筛选和疾病建模。

Human Cortex Spheroid with a Functional Blood Brain Barrier for High-Throughput Neurotoxicity Screening and Disease Modeling.

机构信息

Wake Forest Institute for Regenerative Medicine, Wake Forest School of Medicine, Winston-Salem, NC, 27101, USA.

Department of Neurological Surgery, Wake Forest Baptist Medical Center, Winston-Salem, NC, 27157, USA.

出版信息

Sci Rep. 2018 May 9;8(1):7413. doi: 10.1038/s41598-018-25603-5.

Abstract

The integral selectivity characteristic of the blood brain barrier (BBB) limits therapeutic options for many neurologic diseases and disorders. Currently, very little is known about the mechanisms that govern the dynamic nature of the BBB. Recent reports have focused on the development and application of human brain organoids developed from neuro-progenitor cells. While these models provide an excellent platform to study the effects of disease and genetic aberrances on brain development, they may not model the microvasculature and BBB of the adult human cortex. To date, most in vitro BBB models utilize endothelial cells, pericytes and astrocytes. We report a 3D spheroid model of the BBB comprising all major cell types, including neurons, microglia and oligodendrocytes, to recapitulate more closely normal human brain tissue. Spheroids show expression of tight junctions, adherens junctions, adherens junction-associated proteins and cell specific markers. Functional assessment using MPTP, MPP+ and mercury chloride indicate charge selectivity through the barrier. Junctional protein distribution was altered under hypoxic conditions. Our spheroid model may have potential applications in drug discovery, disease modeling, neurotoxicity and cytotoxicity testing.

摘要

血脑屏障(BBB)的整体选择性特征限制了许多神经疾病和障碍的治疗选择。目前,人们对控制 BBB 动态特性的机制知之甚少。最近的报告集中在开发和应用源自神经祖细胞的人类大脑类器官。虽然这些模型为研究疾病和遗传异常对大脑发育的影响提供了极好的平台,但它们可能无法模拟成人大脑皮层的微血管和 BBB。迄今为止,大多数体外 BBB 模型都利用内皮细胞、周细胞和星形胶质细胞。我们报告了一种由所有主要细胞类型(包括神经元、小胶质细胞和少突胶质细胞)组成的 3D 球体 BBB 模型,以更紧密地模拟正常的人类脑组织。球体显示出紧密连接、黏着连接、黏着连接相关蛋白和细胞特异性标志物的表达。使用 MPTP、MPP+ 和氯化汞进行的功能评估表明通过屏障具有电荷选择性。缺氧条件下连接蛋白分布发生改变。我们的球体模型可能在药物发现、疾病建模、神经毒性和细胞毒性测试方面具有潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/688a/5943588/73b1fdf6e889/41598_2018_25603_Fig1_HTML.jpg

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