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金纳米颗粒介导的(GNOME)激光穿孔:一种用于高通量分析间隙连接细胞间偶联的新方法。

Gold nanoparticle-mediated (GNOME) laser perforation: a new method for a high-throughput analysis of gap junction intercellular coupling.

作者信息

Begandt Daniela, Bader Almke, Antonopoulos Georgios C, Schomaker Markus, Kalies Stefan, Meyer Heiko, Ripken Tammo, Ngezahayo Anaclet

机构信息

Institute of Biophysics, Leibniz University Hannover, Herrenhäuser Str. 2, D-30419, Hannover, Germany.

Biomedical Optics Department, Laser Zentrum Hannover e. V., Hannover, Germany.

出版信息

J Bioenerg Biomembr. 2015 Oct;47(5):441-9. doi: 10.1007/s10863-015-9623-y. Epub 2015 Aug 27.

Abstract

The present report evaluates the advantages of using the gold nanoparticle-mediated laser perforation (GNOME LP) technique as a computer-controlled cell optoperforation to introduce Lucifer yellow (LY) into cells in order to analyze the gap junction coupling in cell monolayers. To permeabilize GM-7373 endothelial cells grown in a 24 multiwell plate with GNOME LP, a laser beam of 88 μm in diameter was applied in the presence of gold nanoparticles and LY. After 10 min to allow dye uptake and diffusion through gap junctions, we observed a LY-positive cell band of 179 ± 8 μm width. The presence of the gap junction channel blocker carbenoxolone during the optoperforation reduced the LY-positive band to 95 ± 6 μm. Additionally, a forskolin-related enhancement of gap junction coupling, recently found using the scrape loading technique, was also observed using GNOME LP. Further, an automatic cell imaging and a subsequent semi-automatic quantification of the images using a java-based ImageJ-plugin were performed in a high-throughput sequence. Moreover, the GNOME LP was used on cells such as RBE4 rat brain endothelial cells, which cannot be mechanically scraped as well as on three-dimensionally cultivated cells, opening the possibility to implement the GNOME LP technique for analysis of gap junction coupling in tissues. We conclude that the GNOME LP technique allows a high-throughput automated analysis of gap junction coupling in cells. Moreover this non-invasive technique could be used on monolayers that do not support mechanical scraping as well as on cells in tissue allowing an in vivo/ex vivo analysis of gap junction coupling.

摘要

本报告评估了使用金纳米颗粒介导的激光穿孔(GNOME LP)技术作为计算机控制的细胞光穿孔技术,将荧光黄(LY)导入细胞,以分析细胞单层中缝隙连接耦合的优势。为了用GNOME LP使生长在24孔板中的GM-7373内皮细胞通透,在金纳米颗粒和LY存在的情况下,施加直径为88μm的激光束。10分钟后,使染料通过缝隙连接摄取和扩散,我们观察到宽度为179±8μm的LY阳性细胞带。光穿孔过程中缝隙连接通道阻滞剂羧苄青霉素的存在使LY阳性带减少到95±6μm。此外,最近使用刮擦加载技术发现的与福斯可林相关的缝隙连接耦合增强,也在使用GNOME LP时观察到。此外,以高通量序列进行自动细胞成像,并使用基于Java的ImageJ插件对图像进行后续半自动定量。此外,GNOME LP还用于RBE4大鼠脑内皮细胞等无法机械刮擦的细胞以及三维培养的细胞,为实施GNOME LP技术分析组织中的缝隙连接耦合开辟了可能性。我们得出结论,GNOME LP技术允许对细胞中的缝隙连接耦合进行高通量自动分析。此外,这种非侵入性技术可用于不支持机械刮擦的单层细胞以及组织中的细胞,从而允许对缝隙连接耦合进行体内/体外分析。

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