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首页> 外文期刊>Biomedical Microdevices >A novel method for assessing adherent single-cell stiffness in tension: design and testing of a substrate-based live cell functional imaging device
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A novel method for assessing adherent single-cell stiffness in tension: design and testing of a substrate-based live cell functional imaging device

机译:一种评估张力中粘附的单细胞刚度的新颖方法:基于基质的活细胞功能成像设备的设计和测试

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摘要

Various micro-devices have been used to assess single cell mechanical properties. Here, we designed and implemented a novel, mechanically actuated, two dimensional cell culture system that enables a measure of cell stiffness based on quantitative functional imaging of cell-substrate interaction. Based on parametric finite element design analysis, we fabricated a soft (5 kPa) polydimethyl-siloxane (PDMS) cell substrate coated with collagen-I and fluorescent micro-beads, thus providing a favorable terrain for cell adhesion and for substrate deformation quantification, respectively. We employed a real-time tracking system that analyzes high magnification images of living cells under stretch, and compensates for gross substrate motions by dynamic adjustment of the microscope stage. Digital image correlation (DIC) was used to quantify substrate deformation beneath and surrounding the cell, leading to an estimate of cell stiffness based upon the ability of the cell to resist the applied substrate deformation. Sensitivity of the system was tested using chemical treatments to both "soften" and "stiffen" the cell cytoskeleton with either 0.5 μg/ml Cytochalasin-D or 3% Glutaraldehyde, respectively. Results indicate that untreated osteosarcoma cells (SAOS-2) exhibit a 1.5 ±0.7% difference in strain from an applied target substrate strain of 8%. Compared to untreated cells, those treated with Cyochalasin-D passively followed the substrate (0.5±0.5%, p<0.001), whereas Glutaraldehyde enhanced cellular stiffness and the ability to resist the substrate deformation (2.9±1.6%, P<0.001). Nano-indentation testing showed differences in cell stiffness based on culture treatment, consistent with DIC findings. Our results indicate that mechanics and image analysis approaches do hold promise as a method to quantitatively assess tensile cell constitutive properties.
机译:各种微型设备已用于评估单细胞机械性能。在这里,我们设计并实现了一种新颖的,机械驱动的二维细胞培养系统,该系统能够基于细胞-基质相互作用的定量功能成像来测量细胞的硬度。基于参数化有限元设计分析,我们制备了涂覆有胶原蛋白I和荧光微珠的柔软(5 kPa)聚二甲基硅氧烷(PDMS)细胞基质,从而分别为细胞粘附和基质变形定量提供了有利的地形。我们采用了实时跟踪系统,该系统可以分析处于拉伸状态的活细胞的高倍放大图像,并通过动态调整显微镜载物台来补偿基底的总体运动。数字图像相关性(DIC)用于量化单元下方和周围单元的基底变形,从而基于单元抵抗施加的基底变形的能力来估算单元的刚度。使用化学处理分别使用0.5μg/ ml细胞松弛素-D或3%戊二醛“软化”和“加强”细胞骨架来测试系统的敏感性。结果表明,未处理的骨肉瘤细胞(SAOS-2)与施加的目标底物菌株8%的应变差异为1.5±0.7%。与未处理的细胞相比,经Cyochalasin-D处理的细胞被动地跟随底物(0.5±0.5%,p <0.001),而戊二醛可增强细胞刚度和抵抗底物变形的能力(2.9±1.6%,P <0.001)。纳米压痕测试显示基于培养处理的细胞刚度差异,与DIC的发现一致。我们的结果表明,力学和图像分析方法确实有望作为定量评估拉伸细胞本构特性的方法。

著录项

  • 来源
    《Biomedical Microdevices》 |2011年第2期|p.291-301|共11页
  • 作者单位

    Orthopedic Research Laboratory, University of Zurich, Balgrist,Forchstrasse 340,CH-8008, Zurich, Switzerland Institute for Biomechanics,Department of Mechanical Engineering, ETH Zurich,Wolfgang-Pauli-Strasse 10,CH-8093, Zurich, Switzerland;

    Orthopedic Research Laboratory, University of Zurich, Balgrist,Forchstrasse 340,CH-8008, Zurich, Switzerland;

    Orthopedic Research Laboratory, University of Zurich, Balgrist,Forchstrasse 340,CH-8008, Zurich, Switzerland Institute for Biomechanics,Department of Mechanical Engineering, ETH Zurich,Wolfgang-Pauli-Strasse 10,CH-8093, Zurich, Switzerland;

    Institute for Biomedical Engineering,Department of Electrical Engineering, ETH Zurich,Gloriastrasse 35,CH-8092, Zurich, Switzerland;

    Orthopedic Research Laboratory, University of Zurich, Balgrist,Forchstrasse 340,CH-8008, Zurich, Switzerland;

    Orthopedic Research Laboratory, University of Zurich, Balgrist,Forchstrasse 340,CH-8008, Zurich, Switzerland Institute for Biomechanics,Department of Mechanical Engineering, ETH Zurich,Wolfgang-Pauli-Strasse 10,CH-8093, Zurich, Switzerland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    biaxial stretching; single live cell imaging; feature tracking; cell mechanics; experiments; modeling;

    机译:双轴拉伸单活细胞成像;特征跟踪;细胞力学;实验;造型;

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