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纳米压印技术用于在熔融石英中复制高精度几何柱体,以调节细胞行为。

Nanoimprinting for high-throughput replication of geometrically precise pillars in fused silica to regulate cell behavior.

机构信息

Department of Biomechanical Engineering, Faculty of Mechanical, Maritime, and Materials Engineering, Delft University of Technology, Mekelweg 2, 2628CD, Delft, the Netherlands.

Department of Biomechanical Engineering, Faculty of Mechanical, Maritime, and Materials Engineering, Delft University of Technology, Mekelweg 2, 2628CD, Delft, the Netherlands.

出版信息

Acta Biomater. 2022 Mar 1;140:717-729. doi: 10.1016/j.actbio.2021.12.001. Epub 2021 Dec 5.

Abstract

Developing high-throughput nanopatterning techniques that also allow for precise control over the dimensions of the fabricated features is essential for the study of cell-nanopattern interactions. Here, we developed a process that fulfills both of these criteria. Firstly, we used electron-beam lithography (EBL) to fabricate precisely controlled arrays of submicron pillars with varying values of interspacing on a large area of fused silica. Two types of etching procedures with two different systems were developed to etch the fused silica and create the final desired height. We then studied the interactions of preosteoblasts (MC3T3-E1) with these pillars. Varying interspacing was observed to significantly affect the morphological characteristics of the cell, the organization of actin fibers, and the formation of focal adhesions. The expression of osteopontin (OPN) significantly increased on the patterns, indicating the potential of the pillars for inducing osteogenic differentiation. The EBL pillars were thereafter used as master molds in two subsequent processing steps, namely soft lithography and thermal nanoimprint lithography for high-fidelity replication of the pillars on the substrates of interest. The molding parameters were optimized to maximize the fidelity of the generated patterns and minimize the wear and tear of the master mold. Comparing the replicated feature with those present on the original mold confirmed that the geometry and dimensions of the replicated pillars closely resemble those of the original ones. The method proposed in this study, therefore, enables the precise fabrication of submicron- and nanopatterns on a wide variety of materials that are relevant for systematic cell studies. STATEMENT OF SIGNIFICANCE: Submicron pillars with specific dimensions on the bone implants have been proven to be effective in controlling cell behaviors. Nowadays, numerous methods have been proposed to produce bio-instructive submicron-topographies. However, most of these techniques are suffering from being low-throughput, low-precision, and expensive. Here, we developed a high-throughput nanopatterning technique that allows for control over the dimensions of the features for the study of cell-nanotopography interactions. Assessing the adaptation of preosteoblast cells showed the potential of the pillars for inducing osteogenic differentiation. Afterward, the pillars were used for high-fidelity replication of the bio-instructive features on the substrates of interest. The results show the advantages of nanoimprint lithography as a unique technique for the patterning of large areas of bio-instructive surfaces.

摘要

开发高通量纳米图案化技术,同时能够精确控制所制造特征的尺寸,对于研究细胞-纳米图案相互作用至关重要。在这里,我们开发了一种满足这两个标准的工艺。首先,我们使用电子束光刻 (EBL) 在大面积熔融石英上制造具有不同间隔值的精确控制的亚微米柱阵列。开发了两种不同系统的两种蚀刻程序来蚀刻熔融石英并创建最终所需的高度。然后,我们研究了前成骨细胞 (MC3T3-E1) 与这些柱子的相互作用。观察到不同的间隔显著影响细胞的形态特征、肌动蛋白纤维的组织和焦点粘连的形成。在图案上,骨桥蛋白 (OPN) 的表达显著增加,表明柱子具有诱导成骨分化的潜力。随后,EBL 柱子在随后的两个处理步骤中用作主模具,即软光刻和热纳米压印光刻,以在感兴趣的基底上高保真复制柱子。优化了成型参数,以最大限度地提高生成图案的保真度并最小化主模具的磨损。将复制的特征与原始模具上的特征进行比较,证实了复制柱子的几何形状和尺寸与原始柱子非常相似。因此,本研究提出的方法能够在广泛的相关材料上精确制造亚微米和纳米图案,用于系统的细胞研究。意义声明:已证明骨植入物上具有特定尺寸的亚微米柱子能够有效控制细胞行为。如今,已经提出了许多方法来产生具有生物指导意义的亚微米形貌。然而,大多数这些技术都存在低产量、低精度和昂贵的问题。在这里,我们开发了一种高通量纳米图案化技术,能够控制特征的尺寸,用于研究细胞-纳米形貌相互作用。评估前成骨细胞的适应性表明,这些柱子具有诱导成骨分化的潜力。之后,这些柱子用于在感兴趣的基底上高保真复制生物指导特征。结果表明,纳米压印光刻作为一种独特的技术,可用于大面积生物指导表面的图案化。

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