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一种完全集成的基于 Arduino 的系统,用于对活细胞施加拉伸刺激及其延时观察:一种 DIY 生物学方法。

A Fully Integrated Arduino-Based System for the Application of Stretching Stimuli to Living Cells and Their Time-Lapse Observation: A Do-It-Yourself Biology Approach.

机构信息

Department of Physics, Informatics and Mathematics, University of Modena and Reggio Emilia, Via Campi 213/A, 41125, Modena, Italy.

CNR-Nanoscience Institute-S3, Via Campi 213/A, 41125, Modena, Italy.

出版信息

Ann Biomed Eng. 2021 Sep;49(9):2243-2259. doi: 10.1007/s10439-021-02758-3. Epub 2021 Mar 16.

Abstract

Mechanobiology has nowadays acquired the status of a topic of fundamental importance in a degree in Biological Sciences. It is inherently a multidisciplinary topic where biology, physics and engineering competences are required. A course in mechanobiology should include lab experiences where students can appreciate how mechanical stimuli from outside affect living cell behaviour. Here we describe all the steps to build a cell stretcher inside an on-stage cell incubator. This device allows exposing living cells to a periodic mechanical stimulus similar to what happens in physiological conditions such as, for example, in the vascular system or in the lungs. The reaction of the cells to the periodic mechanical stretching represents a prototype of a mechanobiological signal integrated by living cells. We also provide the theoretical and experimental aspects related to the calibration of the stretcher apparatus at a level accessible to researchers not used to dealing with topics like continuum mechanics and analysis of deformations. We tested our device by stretching cells of two different lines, U87-MG and Balb-3T3 cells, and we analysed and discussed the effect of the periodic stimulus on both cell reorientation and migration. We also discuss the basic aspects related to the quantitative analysis of the reorientation process and of cell migration. We think that the device we propose can be easily reproduced at low-cost within a project-oriented course in the fields of biology, biotechnology and medical engineering.

摘要

如今,生物力学已经成为生物科学学位课程中一个非常重要的主题。它本质上是一个多学科的主题,需要生物学、物理学和工程学的综合能力。生物力学课程应该包括实验室经验,让学生能够了解外部机械刺激如何影响活细胞的行为。在这里,我们描述了在台上细胞培养箱内构建细胞拉伸器的所有步骤。该设备可以使活细胞暴露于周期性机械刺激下,类似于在生理条件下(例如,在血管系统或肺部)发生的情况。细胞对周期性机械拉伸的反应代表了由活细胞整合的机械生物信号的原型。我们还提供了与拉伸器设备校准相关的理论和实验方面的内容,其水平对于不习惯处理连续介质力学和变形分析等主题的研究人员来说是可访问的。我们使用两种不同细胞系(U87-MG 和 Balb-3T3 细胞)对我们的设备进行了测试,并分析和讨论了周期性刺激对细胞重定向和迁移的影响。我们还讨论了与重定向过程和细胞迁移的定量分析相关的基本方面。我们认为,我们提出的设备可以在生物学、生物技术和医学工程领域的面向项目的课程中以低成本轻松复制。

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