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TopoWellPlate:一种基于微孔板的用于研究细胞表面拓扑结构相互作用的筛选平台。

TopoWellPlate: A Well-Plate-Based Screening Platform to Study Cell-Surface Topography Interactions.

作者信息

Beijer Nick R M, Vasilevich Aliaksei S, Pilavci Bayram, Truckenmüller Roman K, Zhao Yiping, Singh Shantanu, Papenburg Bernke J, de Boer Jan

机构信息

Department of Cell Biology Inspired Tissue Engineering, MERLN Institute for Technology-Inspired Regenerative Medicine, Maastricht University, Universiteitssingel 40, Maastricht, 6229, ER, The Netherlands.

Department of Complex Tissue Regeneration, MERLN Institute for Technology-Inspired Regenerative Medicine, Maastricht University, Universiteitssingel 40, Maastricht, 6229, ER, The Netherlands.

出版信息

Adv Biosyst. 2017 Apr;1(4):e1700002. doi: 10.1002/adbi.201700002. Epub 2017 Mar 21.

Abstract

The field of biomaterial engineering is increasingly using high-throughput approaches to investigate cell-material interactions. Because most material libraries are prepared as chips, immunofluorescence-based read-outs are used to uniquely image individual materials. This paper proposes to produce libraries of materials using a well-based strategy in which each material is physically separated, and thus compatible with standard biochemical assays. In this work, the TopoWellPlate, a novel system to study cell-surface topography interaction in high-throughput is presented. From a larger library of topographies, 87 uniquely defined bioactive surface topographies are identified, which induce a wide variety of cellular morphologies. Topographically enhanced polystyrene films are fabricated in a multistep cleanroom process and served as base for the TopoWellPlate. Thermal bonding of the films to bottomless 96-well plates results in a cell culture ready, topographically enhanced, 96-well plate. The overall metabolic activity of bone marrow-derived human mesenchymal stem cells is measured to show the functionality of the TopoWellPlate as a screening tool, which showed a 2.5-fold difference range in metabolic activity per cell. TopoWellPlates of this and other topographical designs can be used to analyze cells using the wealth of standardized molecular assays available and thus disclose the mechanisms of biomaterials-induced mechanotransduction.

摘要

生物材料工程领域越来越多地采用高通量方法来研究细胞与材料的相互作用。由于大多数材料库是制成芯片形式,基于免疫荧光的读出方式被用于对单个材料进行独特成像。本文提出采用基于孔板的策略来制备材料库,其中每种材料在物理上是分开的,因此与标准生化分析兼容。在这项工作中,展示了一种用于高通量研究细胞 - 表面形貌相互作用的新型系统——拓扑孔板。从一个更大的形貌库中,识别出87种独特定义的生物活性表面形貌,它们能诱导多种细胞形态。拓扑增强聚苯乙烯薄膜通过多步洁净室工艺制造,并用作拓扑孔板的基底。将薄膜热键合到底部无孔的96孔板上,得到一个可供细胞培养、具有拓扑增强功能的96孔板。通过测量人骨髓间充质干细胞的整体代谢活性来展示拓扑孔板作为筛选工具的功能,结果显示每个细胞的代谢活性差异范围为2.5倍。这种及其他拓扑设计的拓扑孔板可用于利用大量可用的标准化分子分析方法来分析细胞,从而揭示生物材料诱导机械转导的机制。

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