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用于模拟血脑屏障的双通道微流控技术

Dual Channel Microfluidics for Mimicking the Blood-Brain Barrier.

作者信息

Buchroithner Boris, Mayr Sandra, Hauser Fabian, Priglinger Eleni, Stangl Herbert, Santa-Maria Ana Raquel, Deli Maria A, Der Andras, Klar Thomas A, Axmann Markus, Sivun Dmitry, Mairhofer Mario, Jacak Jaroslaw

机构信息

Department of Medical Engineering, University of Applied Sciences Upper Austria, Garnisonstraße 21, 4020 Linz, Austria.

Ludwig Boltzmann Institute for Experimental and Clinical Traumatology, AUVA Research Center, Donaueschingenstraße 13, 1200 Vienna, Austria.

出版信息

ACS Nano. 2021 Feb 23;15(2):2984-2993. doi: 10.1021/acsnano.0c09263. Epub 2021 Jan 22.

Abstract

High-resolution imaging is essential for analysis of the steps and way stations of cargo transport in models of the endothelium. In this study, we demonstrate a microfluidic system consisting of two channels horizontally separated by a cell-growth-promoting membrane. Its design allows for high-resolution (down to single-molecule level) imaging using a high numerical aperture objective with a short working distance. To reduce optical aberrations and enable single-molecule-sensitive imaging, an observation window was constructed in the membrane laser cutting with subsequent structuring using 3D multiphoton lithography for improved cell growth. The upper channel was loaded with endothelial cells under flow conditions, which showed polarization and junction formation. A coculture of human vascular endothelial cells with pericytes was developed that mimics the blood-brain barrier. Finally, this dual channel microfluidics system enabled 3D localization microscopy of the cytoskeleton and 3D single-molecule-sensitive tracing of lipoprotein particles.

摘要

高分辨率成像对于分析内皮模型中货物运输的步骤和中转站至关重要。在本研究中,我们展示了一种微流控系统,该系统由两个通过促进细胞生长的膜水平分隔的通道组成。其设计允许使用具有短工作距离的高数值孔径物镜进行高分辨率(低至单分子水平)成像。为了减少光学像差并实现单分子敏感成像,在膜上构建了一个观察窗,通过激光切割,随后使用3D多光子光刻进行结构化处理以促进细胞生长。上通道在流动条件下加载内皮细胞,这些细胞表现出极化和连接形成。开发了一种人血管内皮细胞与周细胞的共培养物,模拟血脑屏障。最后,这种双通道微流控系统实现了细胞骨架的3D定位显微镜检查和脂蛋白颗粒的3D单分子敏感追踪。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9e9c/7905877/3bf1cdfb1bf0/nn0c09263_0001.jpg

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