Atcha Hamza, Davis Chase T, Sullivan Nicholas R, Smith Tim D, Anis Sara, Dahbour Waleed Z, Robinson Zachery R, Grosberg Anna, Liu Wendy F
Department of Biomedical Engineering, The Edwards Lifesciences Center for Advanced Cardiovascular Technology, University of California Irvine, Irvine, CA 92697.
Department of Biomedical Engineering, Center for Complex Biological Systems, The Edwards Lifesciences Center for Advanced Cardiovascular Technology, University of California Irvine, Irvine, CA 92697.
J Biomech Eng. 2018 Aug 1;140(8):0810051-9. doi: 10.1115/1.4039949.
Mechanical cues including stretch, compression, and shear stress play a critical role in regulating the behavior of many cell types, particularly those that experience substantial mechanical stress within tissues. Devices that impart mechanical stimulation to cells in vitro have been instrumental in helping to develop a better understanding of how cells respond to mechanical forces. However, these devices often have constraints, such as cost and limited functional capabilities, that restrict their use in research or educational environments. Here, we describe a low-cost method to fabricate a uniaxial cell stretcher that would enable widespread use and facilitate engineering design and mechanobiology education for undergraduate students. The device is capable of producing consistent and reliable strain profiles through the use of a servomotor, gear, and gear rack system. The servomotor can be programmed to output various waveforms at specific frequencies and stretch amplitudes by controlling the degree of rotation, speed, and acceleration of the servogear. In addition, the stretchable membranes are easy to fabricate and can be customized, allowing for greater flexibility in culture well size. We used the custom-built stretching device to uniaxially strain macrophages and cardiomyocytes, and found that both cell types displayed functional and cell shape changes that were consistent with the previous studies using commercially available systems. Overall, this uniaxial cell stretcher provides a more cost-effective alternative to study the effects of mechanical stretch on cells, and can therefore, be widely used in research and educational environments to broaden the study and pedagogy of cell mechanobiology.
包括拉伸、压缩和剪切应力在内的机械信号在调节多种细胞类型的行为中起着关键作用,尤其是那些在组织内承受大量机械应力的细胞。在体外对细胞施加机械刺激的装置有助于更好地理解细胞如何对机械力作出反应。然而,这些装置往往存在成本高和功能有限等限制,这限制了它们在研究或教育环境中的使用。在此,我们描述了一种低成本的方法来制造单轴细胞拉伸器,该拉伸器能够广泛使用,并便于本科生进行工程设计和力学生物学教育。该装置通过使用伺服电机、齿轮和齿条系统能够产生一致且可靠的应变曲线。通过控制伺服齿轮的旋转程度、速度和加速度,可对伺服电机进行编程,使其在特定频率和拉伸幅度下输出各种波形。此外,可拉伸膜易于制造且可定制,在培养皿尺寸方面具有更大的灵活性。我们使用定制的拉伸装置对巨噬细胞和心肌细胞进行单轴拉伸,发现这两种细胞类型均表现出功能和细胞形状的变化,这与先前使用市售系统的研究结果一致。总体而言,这种单轴细胞拉伸器为研究机械拉伸对细胞的影响提供了一种更具成本效益的替代方案,因此可广泛应用于研究和教育环境,以拓宽细胞力学生物学的研究和教学。