Yadav Sharda, Singha Pradip, Nguyen Nhat-Khuong, Ooi Chin Hong, Kashaninejad Navid, Nguyen Nam-Trung
Queensland Micro- and Nanotechnology Centre (QMNC), Griffith University, Nathan, QLD 4111, Australia.
Micromachines (Basel). 2023 Jul 31;14(8):1537. doi: 10.3390/mi14081537.
Cellular response to mechanical stimuli is a crucial factor for maintaining cell homeostasis. The interaction between the extracellular matrix and mechanical stress plays a significant role in organizing the cytoskeleton and aligning cells. Tools that apply mechanical forces to cells and tissues, as well as those capable of measuring the mechanical properties of biological cells, have greatly contributed to our understanding of fundamental mechanobiology. These tools have been extensively employed to unveil the substantial influence of mechanical cues on the development and progression of various diseases. In this report, we present an economical and high-performance uniaxial cell stretching device. This paper reports the detailed operation concept of the device, experimental design, and characterization. The device was tested with MDA-MB-231 breast cancer cells. The experimental results agree well with previously documented morphological changes resulting from stretching forces on cancer cells. Remarkably, our new device demonstrates comparable cellular changes within 30 min compared with the previous 2 h stretching duration. This third-generation device significantly improved the stretching capabilities compared with its previous counterparts, resulting in a remarkable reduction in stretching time and a substantial increase in overall efficiency. Moreover, the device design incorporates an open-source software interface, facilitating convenient parameter adjustments such as strain, stretching speed, frequency, and duration. Its versatility enables seamless integration with various optical microscopes, thereby yielding novel insights into the realm of mechanobiology.
细胞对机械刺激的反应是维持细胞稳态的关键因素。细胞外基质与机械应力之间的相互作用在组织细胞骨架和使细胞排列方面起着重要作用。将机械力施加于细胞和组织的工具,以及能够测量生物细胞机械特性的工具,极大地促进了我们对基础机械生物学的理解。这些工具已被广泛用于揭示机械信号对各种疾病发展和进展的重大影响。在本报告中,我们展示了一种经济高效的单轴细胞拉伸装置。本文报告了该装置的详细操作概念、实验设计和特性。该装置用MDA-MB-231乳腺癌细胞进行了测试。实验结果与先前记录的癌细胞拉伸力导致的形态变化非常吻合。值得注意的是,我们的新装置在30分钟内显示出与之前2小时拉伸时间相当的细胞变化。与之前的同类装置相比,这种第三代装置显著提高了拉伸能力,从而显著缩短了拉伸时间并大幅提高了整体效率。此外,该装置设计包含一个开源软件界面,便于方便地调整诸如应变、拉伸速度、频率和持续时间等参数。其多功能性使其能够与各种光学显微镜无缝集成,从而为机械生物学领域带来新的见解。