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A New Cell-Selective Three-Dimensional Microincubator Based on Silicon Photonic Crystals

机译:新的小区选择三维微型培育基于硅光子晶体

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摘要

In this work, we show that vertical, high aspect-ratio (HAR) photonic crystals (PhCs), consisting of periodic arrays of 5 µm wide gaps with depth of 50 µm separated by 3 µm thick silicon walls, fabricated by electrochemical micromachining, can be used as three-dimensional microincubators, allowing cell lines to be selectively grown into the gaps. Silicon micromachined dice incorporating regions with different surface profiles, namely flat silicon and deeply etched PhC, were used as microincubators for culturing adherent cell lines with different morphology and adhesion properties. We extensively investigated and compared the proliferative behavior on HAR PhCs of eight human cell models, with different origins, such as the epithelial (SW613-B3; HeLa; SW480; HCT116; HT29) and the mesenchymal (MRC-5V1; CF; HT1080). We also verified the contribution of cell sedimentation into the silicon gaps. Fluorescence microscopy analysis highlights that only cell lines that exhibit, in the tested culture condition, the behavior typical of the mesenchymal phenotype are able to penetrate into the gaps of the PhC, extending their body deeply in the narrow gaps between adjacent silicon walls, and to grow adherent to the vertical surfaces of silicon. Results reported in this work, confirmed in various experiments, strongly support our statement that such three-dimensional microstructures have selection capabilities with regard to the cell lines that can actively populate the narrow gaps. Cells with a mesenchymal phenotype could be exploited in the next future as bioreceptors, in combination with HAR PhC optical transducers, e.g., for label-free optical detection of cellular activities involving changes in cell adhesion and/or morphology (e.g., apoptosis) in a three-dimensional microenvironment.
机译:在这项工作中,我们表明,通过电化学微机械加工制造的垂直,高长宽比(HAR)光子晶体(PhC)可以由5 µm宽间隙的深度为50 µm的周期性阵列与3 µm厚的硅壁隔开。用作三维微型培养箱,可使细胞系选择性地生长到间隙中。硅微机械切块结合了具有不同表面轮廓的区域,即扁平硅和深蚀刻的PhC,被用作微孵化器,用于培养具有不同形态和粘附特性的粘附细胞系。我们广泛研究并比较了八种不同来源的人类细胞模型在HAR PhCs上的增殖行为,这些模型包括上皮细胞(SW613-B3; HeLa; SW480; HCT116; HT29)和间质细胞(MRC-5V1; CF; HT1080) 。我们还验证了细胞沉降对硅间隙的贡献。荧光显微镜分析表明,只有在测试的培养条件下表现出间充质表型典型行为的细胞系才能穿透PhC的间隙,在相邻硅壁之间的狭窄间隙中深深地延伸其细胞,附着在硅的垂直表面上。在这项工作中报道的结果在各种实验中得到了证实,这强烈支持了我们的说法,即这种三维微观结构对于能够主动填充狭窄间隙的细胞系具有选择能力。具有间充质表型的细胞可在未来被用作生物受体,与HAR PhC光学传感器结合使用,例如,用于无标记光学检测涉及细胞粘附和/或形态(例如凋亡)变化的细胞活性。三维微环境。

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