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用于复用微接触印刷和细胞微阵列制作的大规模邮票的动态喷墨。

Dynamic inking of large-scale stamps for multiplexed microcontact printing and fabrication of cell microarrays.

机构信息

LAAS-CNRS, Université de Toulouse, CNRS, INSA, Toulouse, France.

Innopsys, Parc d'activités Activestre, Carbonne, France.

出版信息

PLoS One. 2018 Aug 23;13(8):e0202531. doi: 10.1371/journal.pone.0202531. eCollection 2018.

Abstract

Microcontact printing has become a versatile soft lithography technique used to produce molecular micro- and nano-patterns consisting of a large range of different biomolecules. Despite intensive research over the last decade and numerous applications in the fields of biosensors, microarrays and biomedical applications, the large-scale implementation of microcontact printing is still an issue. It is hindered by the stamp-inking step that is critical to ensure a reproducible and uniform transfer of inked molecules over large areas. This is particularly important when addressing application such as cell microarray manufacturing, which are currently used for a wide range of analytical and pharmaceutical applications. In this paper, we present a large-scale and multiplexed microcontact printing process of extracellular matrix proteins for the fabrication of cell microarrays. We have developed a microfluidic inking approach combined with a magnetic clamping technology that can be adapted to most standard substrates used in biology. We have demonstrated a significant improvement of homogeneity of printed protein patterns on surfaces larger than 1 cm2 through the control of both the flow rate and the wetting mechanism of the stamp surface during microfluidic inking. Thanks to the reproducibility and integration capabilities provided by microfluidics, we have achieved the printing of three different adhesion proteins in one-step transfer. Selective cell adhesion and cell shape adaptation on the produced patterns were observed, showing the suitability of this approach for producing on-demand large-scale cell microarrays.

摘要

微接触印刷已成为一种通用的软光刻技术,用于生产由各种不同生物分子组成的分子微观和纳米图案。尽管在过去十年中进行了密集的研究,并在生物传感器、微阵列和生物医学应用等领域有了众多应用,但微接触印刷的大规模实施仍然是一个问题。它受到印墨步骤的阻碍,该步骤对于确保在大面积上可重复且均匀地转移印墨分子至关重要。当涉及到细胞微阵列制造等应用时,这一点尤其重要,因为细胞微阵列目前被广泛用于各种分析和制药应用。在本文中,我们提出了一种用于制造细胞微阵列的大规模、多重微接触印刷细胞外基质蛋白质的方法。我们开发了一种微流控印墨方法,并结合了磁夹紧技术,该技术可适应生物学中大多数常用的标准基底。我们通过控制微流控印墨过程中的流速和印模表面的润湿机制,在大于 1cm2 的表面上显著提高了印刷蛋白质图案的均匀性。由于微流控技术提供的可重复性和集成能力,我们已经实现了在一步转移中打印三种不同的粘附蛋白。在生产的图案上观察到了选择性细胞粘附和细胞形状适应性,表明该方法适用于按需大规模生产细胞微阵列。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d9c7/6107178/acd086c07895/pone.0202531.g001.jpg

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