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基于黏附剂的肺气道上皮细胞培养方法及其在细胞图案化和微流控中的应用。

Adhesive-Based Fabrication Technique for Culture of Lung Airway Epithelial Cells with Applications in Cell Patterning and Microfluidics.

机构信息

Firestone Institute for Respiratory Health-Division of Respirology, Department of Medicine, McMaster University, Hamilton, Ontario L8N 4A6, Canada.

School of Biomedical Engineering, McMaster University, Hamilton, Ontario L8S 4K1, Canada.

出版信息

ACS Biomater Sci Eng. 2021 Nov 8;7(11):5301-5314. doi: 10.1021/acsbiomaterials.1c01200. Epub 2021 Oct 26.

DOI:10.1021/acsbiomaterials.1c01200
PMID:34696583
Abstract

This work describes a versatile and cost-effective cell culture method for micropatterning and growing adherent cells on porous membranes using pressure-sensitive double-sided adhesives. This technique also allows cell culture using conventional methods and their easy integration into microfluidic chip devices. Adhesives can be used to form different patterns of cultured cells, which can be used for cell proliferation and wound-healing models. To demonstrate the viability of our system, we evaluate the toxicity effect of five different adhesives on two distinct airway epithelial cell lines and show functional applications for cell patterning and microfluidic cell culture chip fabrication. We developed a sandwiched microfluidic device that enabled us to culture cells in a submerged condition and transformed it into a dynamic platform when required. The viability of cells and their inflammatory responses to IL-1β stimulation were investigated. Our technique is applicable for conventional culturing of cells, widely available in biomedical research labs, while enabling the introduction of perfusion for an advanced dynamic cell culture model when needed.

摘要

这项工作描述了一种通用且具有成本效益的细胞培养方法,可使用压敏双面胶在多孔膜上对贴壁细胞进行微图案化和培养。该技术还允许使用传统方法进行细胞培养,并轻松将其集成到微流控芯片设备中。可以使用粘合剂形成不同图案的培养细胞,可用于细胞增殖和伤口愈合模型。为了证明我们系统的可行性,我们评估了五种不同粘合剂对两种不同气道上皮细胞系的毒性作用,并展示了用于细胞图案化和微流控细胞培养芯片制造的功能应用。我们开发了一种夹层微流控装置,使我们能够在浸没条件下培养细胞,并在需要时将其转化为动态平台。研究了细胞的活力及其对 IL-1β刺激的炎症反应。我们的技术适用于细胞的常规培养,广泛应用于生物医学研究实验室,同时在需要时能够引入灌注,以实现先进的动态细胞培养模型。

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A Parametric Analysis of Capillary Height in Single-Layer, Small-Scale Microfluidic Artificial Lungs.单层小尺度微流控人工肺中毛细上升高度的参数分析
Micromachines (Basel). 2022 May 25;13(6):822. doi: 10.3390/mi13060822.