Li Shannon, Gee Alyssa, Cai Nathan, Bermudez Alexandra, Lin Neil Y C
Mechanical and Aerospace Engineering Department, University of California, Los Angeles, CA, USA.
Bioengineering Department, University of California, Los Angeles, CA, USA.
HardwareX. 2024 Jul 9;19:e00552. doi: 10.1016/j.ohx.2024.e00552. eCollection 2024 Sep.
The ability to simultaneously measure material mechanics and structure is central for understanding their nonlinear relationship that underlies the mechanical properties of materials, such as hysteresis, strain-stiffening and -softening, and plasticity. This experimental capability is also critical in biomechanics and mechanobiology research, as it enables direct characterizations of the intricate interplay between cellular responses and tissue mechanics. Stretching devices developed over the past few decades, however, do not often allow simultaneous measurements of the structural and mechanical responses of the sample. In this work, we introduce an open-source stretching system that can apply uniaxial strain at a submicron resolution, report the tensile force response of the sample, and be mounted on an inverted microscope for real-time imaging. Our system consists of a pair of stepper-based linear motors that stretch the sample symmetrically, a force transducer that records the sample tensile force, and an optically clear sample holder that allows for high-magnification microscopy. Using polymer samples and cellular specimens, we characterized the motion control accuracy, force measurement robustness, and microscopy compatibility of our stretching system. We envision that this uniaxial stretching system will be a valuable tool for characterizing soft and living materials.
同时测量材料力学和结构的能力对于理解它们之间的非线性关系至关重要,这种非线性关系是材料力学性能(如滞后、应变硬化和软化以及可塑性)的基础。这种实验能力在生物力学和力学生物学研究中也至关重要,因为它能够直接表征细胞反应与组织力学之间复杂的相互作用。然而,过去几十年开发的拉伸装置通常不允许同时测量样品的结构和力学响应。在这项工作中,我们介绍了一种开源拉伸系统,该系统可以以亚微米分辨率施加单轴应变,报告样品的拉伸力响应,并安装在倒置显微镜上进行实时成像。我们的系统由一对基于步进电机的线性电机组成,它们对称地拉伸样品,一个力传感器记录样品的拉伸力,以及一个光学透明的样品支架,允许进行高倍显微镜观察。使用聚合物样品和细胞标本,我们表征了拉伸系统的运动控制精度力测量鲁棒性和显微镜兼容性。我们设想这种单轴拉伸系统将成为表征软材料和生物材料的有价值工具。