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An Improved Numerical Method for Assessing Cell Elasticity from Atomic Force Microscopy Nanoindentation Data

机译:一种基于原子力显微镜纳米压痕数据评估细胞弹性的改进数值方法

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摘要

This work presents a new numerical method for processing atomic force microscopy (AFM) data to determine the elasticity of cultured adherent biological cells. Raw AFM force-indentation data is commonly interpreted using the Hertz and Sneddon contact mechanics models to fit a Young's modulus or apparent cell elasticity. This apparent cell elasticity is highly dependent on the method used to identify the first point of contact between the AFM probe and the cell surface. In this work, an automated MATLAB-based data processing algorithm was developed to detect the point of probe-cell contact in the force-indentation curve. The method handles the difficulties associated with finding the contact point using moving averages, thresholds, and mean squared errors. Implementation validation shows that contact point detection accuracy is critical, with seemingly small errors producing up to 250% changes in reported elasticity within a single experiment.;The newly developed method was applied to analyze a large experimental data series with human pancreatic adenocarcinoma (AsPC-1) cells. The results from this test series show that pyramidal AFM probes systematically measure elasticities that are a factor of three greater than those measured by spherical probes. Across a range of typically used probe forces, increasing the indentation force results in a 100% increase in apparent elasticity. Finally, the results of the new data processing method show that accurate contact point detection and data quality checking eliminates the log-normal distribution of elasticity values that is often reported in experimental AFM studies with biological cells. These findings showcase the importance of including detailed descriptions of data processing methods and the need for robust analysis algorithms in AFM research.
机译:这项工作提出了一种新的数值方法,用于处理原子力显微镜(AFM)数据以确定培养的粘附生物细胞的弹性。通常使用Hertz和Sneddon接触力学模型解释原始AFM力压入数据,以拟合杨氏模量或表观细胞弹性。这种明显的细胞弹性高度依赖于用于识别AFM探针与细胞表面之间第一接触点的方法。在这项工作中,开发了一种基于MATLAB的自动数据处理算法,以检测力-压痕曲线中探针与细胞的接触点。该方法使用移动平均值,阈值和均方误差来解决与找到接触点相关的困难。实施验证表明,接触点检测的准确性至关重要,看似很小的误差在单个实验中产生的报道弹性变化高达250%.;新开发的方法被用于分析人胰腺癌(AsPC- 1)细胞。该测试系列的结果表明,金字塔型AFM探针系统地测量的弹性是球形探针所测量的弹性的三倍。在一系列通常使用的探测力中,增加压入力会导致表观弹性增加100%。最后,新数据处理方法的结果表明,准确的接触点检测和数据质量检查消除了弹性值的对数正态分布,而弹性值通常在对生物细胞进行的实验AFM研究中报告。这些发现表明,在AFM研究中包括对数据处理方法的详细描述以及对鲁棒分析算法的需求非常重要。

著录项

  • 作者

    Feindt, Jared.;

  • 作者单位

    Lehigh University.;

  • 授予单位 Lehigh University.;
  • 学科 Bioengineering.
  • 学位 M.S.
  • 年度 2018
  • 页码 38 p.
  • 总页数 38
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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