Shiwarski Daniel J, Tashman Joshua W, Eaton Amity F, Apodaca Gerard, Feinberg Adam W
Department of Biomedical Engineering, Carnegie Mellon University, Pittsburgh, PA, United States.
Department of Medicine, Renal-Electrolyte Division, and Cell Biology, University of Pittsburgh, Pittsburgh, PA United States.
HardwareX. 2020 Apr;7. doi: 10.1016/j.ohx.2020.e00095. Epub 2020 Feb 5.
Mechanical characterization and tensile testing of biological samples is important when determining the material properties of a tissue; however, performing tensile testing and tissue stretching while monitoring cellular changes via fluorescence microscopy is often challenging. Additionally, commercially available cell/tissue stretchers are often expensive, hard to customize, and limited in their fluorescence imaging compatibility. We have developed a 3D printed Open source Biaxial Stretcher (OBS) to be a low-cost stage top mountable biaxial stretching system for use with live cell fluorescence microscopy in both upright and inverted microscope configurations. Our OBS takes advantage of readily available open source desktop 3D printer hardware and software to deliver a fully motorized high precision (10 ± 0.5 μm movement accuracy) low cost biaxial stretching device capable of 4.5 cm of XY travel with a touch screen control panel, and an integrated heated platform with sample bath to maintain cell and tissue viability. Further, we designed a series of tissue mounts and clamps to accommodate varying samples from synthetic materials to biological tissue. By creating a low-profile design, we can directly mount the stretcher onto a microscope stage, and through coordinated biaxial stretching we maintain a constant field of view facilitating real-time sample tracking and time-lapse fluorescence imaging.
在确定组织的材料特性时,对生物样品进行力学表征和拉伸测试非常重要;然而,在通过荧光显微镜监测细胞变化的同时进行拉伸测试和组织拉伸往往具有挑战性。此外,市售的细胞/组织拉伸器通常价格昂贵、难以定制,并且其荧光成像兼容性有限。我们开发了一种3D打印的开源双轴拉伸器(OBS),它是一种低成本的可安装在载物台上的双轴拉伸系统,适用于正立和倒置显微镜配置下的活细胞荧光显微镜观察。我们的OBS利用现成的开源桌面3D打印机硬件和软件,提供了一种全电动的高精度(运动精度为10±0.5μm)低成本双轴拉伸装置,其XY行程为4.5厘米,配有触摸屏控制面板,以及一个带有样品浴的集成加热平台,以维持细胞和组织的活力。此外,我们设计了一系列组织固定架和夹具,以适应从合成材料到生物组织的各种样品。通过采用低调设计,我们可以将拉伸器直接安装在显微镜载物台上,并通过协调的双轴拉伸保持恒定的视野,便于实时样品跟踪和延时荧光成像。