通过离心力改善细胞图案的组织和清晰度。

Lauren E Mehanna, James D Boyd, Shelley Remus-Williams, Nicole M Racca, Dawson P Spraggins, Martha E Grady, Brad J Berron
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引用次数: 0

摘要

快速和战略性的细胞放置是高通量组织制造的必要条件。目前的黏附细胞图案系统依赖于流体剪切流来去除图案区域外的细胞,但在清洗复杂性和均匀性方面的限制阻碍了黏附图案的广泛应用。离心分离法常用来研究细胞对各种底物的粘附强度;然而,该方法尚未应用于选择性细胞粘附系统,以创建高度有组织的细胞模式。这项研究表明,在细胞选择性结合到表面后,离心是一种很有前途的方法来清洗细胞模式。使用生物素-链亲和素作为模型黏附图案化系统对H9C2细胞进行图案化后,用离心洗涤,与初始播种相比,在底物的图案化区域外去除了大量细胞,而从所需的图案化区域去除的细胞数量并不多。该方法在50-200µm线宽范围内的多种尺寸和线性结构中是有效的,而不会影响80%以下的即时细胞活力。我们还在各种组织样表面材料(胶原蛋白1和基质)上的各种成管细胞系(MPCs, HUVECs)上测试了这一过程,当细胞直接播种在其非偶联表面上时,它们各自的管形成指标与通过离心洗涤进行图案处理时没有显着差异。这一结果表明,我们的图案化和离心系统可以适应各种细胞类型和底物,以创建适合许多生物应用的图案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improvement of cellular pattern organization and clarity through centrifugal force.

Rapid and strategic cell placement is necessary for high throughput tissue fabrication. Current adhesive cell patterning systems rely on fluidic shear flow to remove cells outside of the patterned regions, but limitations in washing complexity and uniformity prevent adhesive patterns from being widely applied. Centrifugation is commonly used to study the adhesive strength of cells to various substrates; however, the approach has not been applied to selective cell adhesion systems to create highly organized cell patterns. This study shows centrifugation as a promising method to wash cellular patterns after selective binding of cells to the surface has taken place. After patterning H9C2 cells using biotin-streptavidin as a model adhesive patterning system and washing with centrifugation, there is a significant number of cells removed outside of the patterned areas of the substrate compared to the initial seeding, while there is not a significant number removed from the desired patterned areas. This method is effective in patterning multiple size and linear structures from line widths of 50-200 μm without compromising immediate cell viability below 80%. We also test this procedure on a variety of tube-forming cell lines (MPCs, HUVECs) on various tissue-like surface materials (collagen 1 and Matrigel) with no significant differences in their respective tube formation metrics when the cells were seeded directly on their unconjugated surface versus patterned and washed through centrifugation. This result demonstrates that our patterning and centrifugation system can be adapted to a variety of cell types and substrates to create patterns tailored to many biological applications.

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