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用于活单细胞打印的块细胞打印。

Block-Cell-Printing for live single-cell printing.

机构信息

Department of Nanomedicine and Department of Systems Medicine and Bioengineering, Houston Methodist Research Institute, Houston, TX 77030.

出版信息

Proc Natl Acad Sci U S A. 2014 Feb 25;111(8):2948-53. doi: 10.1073/pnas.1313661111. Epub 2014 Feb 10.

DOI:10.1073/pnas.1313661111
PMID:24516129
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3939871/
Abstract

A unique live-cell printing technique, termed "Block-Cell-Printing" (BloC-Printing), allows for convenient, precise, multiplexed, and high-throughput printing of functional single-cell arrays. Adapted from woodblock printing techniques, the approach employs microfluidic arrays of hook-shaped traps to hold cells at designated positions and directly transfer the anchored cells onto various substrates. BloC-Printing has a minimum turnaround time of 0.5 h, a maximum resolution of 5 µm, close to 100% cell viability, the ability to handle multiple cell types, and efficiently construct protrusion-connected single-cell arrays. The approach enables the large-scale formation of heterotypic cell pairs with controlled morphology and allows for material transport through gap junction intercellular communication. When six types of breast cancer cells are allowed to extend membrane protrusions in the BloC-Printing device for 3 h, multiple biophysical characteristics of cells--including the protrusion percentage, extension rate, and cell length--are easily quantified and found to correlate well with their migration levels. In light of this discovery, BloC-Printing may serve as a rapid and high-throughput cell protrusion characterization tool to measure the invasion and migration capability of cancer cells. Furthermore, primary neurons are also compatible with BloC-Printing.

摘要

一种独特的活细胞打印技术,称为“Block-Cell-Printing”(BloC-Printing),可方便、精确、多重且高通量地打印功能单细胞阵列。该方法源自木刻印刷技术,采用钩状陷阱的微流控阵列将细胞固定在指定位置,并直接将锚定的细胞转移到各种基质上。BloC-Printing 的最短周转时间为 0.5 小时,最大分辨率为 5 µm,接近 100%的细胞活力,能够处理多种细胞类型,并高效构建突起连接的单细胞阵列。该方法可大规模形成具有受控形态的异型细胞对,并允许通过间隙连接细胞间通讯进行物质运输。当六种类型的乳腺癌细胞在 BloC-Printing 设备中延伸膜突起 3 小时时,很容易定量测量细胞的多种生物物理特性,包括突起百分比、延伸率和细胞长度,并发现它们与迁移水平密切相关。鉴于这一发现,BloC-Printing 可作为一种快速、高通量的细胞突起特征化工具,用于测量癌细胞的侵袭和迁移能力。此外,原代神经元也与 BloC-Printing 兼容。

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