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Dual Channel Microfluidics for Mimicking the Blood-Brain Barrier.
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.
Afiliação
  • Buchroithner B; Department of Medical Engineering, University of Applied Sciences Upper Austria, Garnisonstraße 21, 4020 Linz, Austria.
  • Mayr S; Department of Medical Engineering, University of Applied Sciences Upper Austria, Garnisonstraße 21, 4020 Linz, Austria.
  • Hauser F; Department of Medical Engineering, University of Applied Sciences Upper Austria, Garnisonstraße 21, 4020 Linz, Austria.
  • Priglinger E; Ludwig Boltzmann Institute for Experimental and Clinical Traumatology, AUVA Research Center, Donaueschingenstraße 13, 1200 Vienna, Austria.
  • Stangl H; Institute of Medical Chemistry, Center for Pathobiochemistry and Genetics, Medical University of Vienna, Währingerstrasse 10, 1090 Vienna, Austria.
  • Santa-Maria AR; Institute of Biophysics, Biological Research Centre, Hungarian Academy of Sciences, Temesvári krt. 62, H-6726 Szeged, Hungary.
  • Deli MA; Institute of Biophysics, Biological Research Centre, Hungarian Academy of Sciences, Temesvári krt. 62, H-6726 Szeged, Hungary.
  • Der A; Institute of Biophysics, Biological Research Centre, Hungarian Academy of Sciences, Temesvári krt. 62, H-6726 Szeged, Hungary.
  • Klar TA; Institute of Applied Physics, Johannes Kepler University Linz, Altenberger Straße 69, 4040 Linz, Austria.
  • Axmann M; Department of Medical Engineering, University of Applied Sciences Upper Austria, Garnisonstraße 21, 4020 Linz, Austria.
  • Sivun D; Department of Medical Engineering, University of Applied Sciences Upper Austria, Garnisonstraße 21, 4020 Linz, Austria.
  • Mairhofer M; Department of Medical Engineering, University of Applied Sciences Upper Austria, Garnisonstraße 21, 4020 Linz, Austria.
  • Jacak J; Department of Medical Engineering, University of Applied Sciences Upper Austria, Garnisonstraße 21, 4020 Linz, Austria.
ACS Nano ; 15(2): 2984-2993, 2021 02 23.
Article em En | MEDLINE | ID: mdl-33480670
High-resolution imaging is essential for analysis of the steps and way stations of cargo transport in in vitro 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 via 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.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Barreira Hematoencefálica / Microfluídica Limite: Humans Idioma: En Ano de publicação: 2021 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Barreira Hematoencefálica / Microfluídica Limite: Humans Idioma: En Ano de publicação: 2021 Tipo de documento: Article