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CaT担架:一种用于向细胞和组织施加单轴应变的开源系统(CaT)。

The CaT stretcher: An open-source system for delivering uniaxial strain to cells and tissues (CaT).

作者信息

Wang Yushi, Singer Ryan, Liu Xinyue, Inman Seth J, Cao Quynh, Zhou Quan, Noble Alex, Li Laura, Arizpe Tafoya Aidee Verónica, Babi Mouhanad, Ask Kjetil, Kolb Martin R, Ramsay Scott, Geng Fei, Zhang Boyang, Shargall Yaron, Moran-Mirabal Jose Manuel, Dabaghi Mohammadhossein, Hirota Jeremy A

机构信息

Department of Medicine, Firestone Institute for Respiratory Health-Division of Respirology, McMaster University, Hamilton, ON, Canada.

School of Biomedical Engineering, McMaster University, Hamilton, ON, Canada.

出版信息

Front Bioeng Biotechnol. 2022 Oct 18;10:959335. doi: 10.3389/fbioe.2022.959335. eCollection 2022.

Abstract

Integration of mechanical cues in conventional 2D or 3D cell culture platforms is an important consideration for and models of lung health and disease. Available commercial and published custom-made devices are frequently limited in breadth of applications, scalability, and customization. Herein we present a technical report on an open-source, cell and tissue (CaT) stretcher, with modularity for different and systems, that includes the following features: 1) Programmability for modeling different breathing patterns, 2) scalability to support low to high-throughput experimentation, and 3) modularity for submerged cell culture, organ-on-chips, hydrogels, and live tissues. The strategy for connecting the experimental cell or tissue samples to the stretching device were designed to ensure that traditional biomedical outcome measurements including, but not limited to microscopy, soluble mediator measurement, and gene and protein expression remained possible. Lastly, to increase the uptake of the device within the community, the system was built with economically feasible and available components. To accommodate diverse and model systems we developed a variety of chips made of compliant polydimethylsiloxane (PDMS) and optimized coating strategies to increase cell adherence and viability during stretch. The CaT stretcher was validated for studying mechanotransduction pathways in lung cells and tissues, with an increase in alpha smooth muscle actin protein following stretch for 24 h observed in independent submerged monolayer, 3D hydrogel, and live lung tissue experiments. We anticipate that the open-source CaT stretcher design will increase accessibility to studies of the dynamic lung microenvironment through direct implementation by other research groups or custom iterations on our designs.

摘要

在传统的二维或三维细胞培养平台中整合机械信号,是肺健康与疾病研究模型的一个重要考量因素。现有的商业及已发表的定制设备在应用广度、可扩展性和定制性方面常常受到限制。在此,我们展示一份关于开源细胞与组织拉伸器(CaT拉伸器)的技术报告,该拉伸器具有针对不同细胞和组织系统的模块化设计,具备以下特点:1)可对不同呼吸模式进行编程建模;2)具有可扩展性,以支持从低通量到高通量的实验;3)具备模块化,适用于浸没式细胞培养、芯片器官、水凝胶和活组织。连接实验性细胞或组织样本与拉伸装置的策略经过精心设计,以确保包括但不限于显微镜观察、可溶性介质测量以及基因和蛋白质表达等传统生物医学结果测量方法仍然可行。最后,为了提高该设备在科研群体中的应用率,该系统采用了经济可行且易于获取的组件构建而成。为了适应多样的细胞和组织模型系统,我们开发了多种由柔性聚二甲基硅氧烷(PDMS)制成的芯片,并优化了涂层策略,以在拉伸过程中提高细胞黏附力和活力。CaT拉伸器已通过验证,可用于研究肺细胞和组织中的机械转导通路,在独立的浸没式单层细胞、三维水凝胶和活肺组织实验中,拉伸24小时后观察到α平滑肌肌动蛋白的表达增加。我们预计,开源的CaT拉伸器设计将通过其他研究团队的直接应用或对我们设计的定制迭代,提高对动态肺微环境研究的可及性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/715a/9622803/f9584ceaf0b2/fbioe-10-959335-g001.jpg

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