Jorge-Peñas A, Muñoz-Barrutia A, de-Juan-Pardo E M, Ortiz-de-Solorzano C
a Tissue Engineering and Biomaterials Unit, CEIT and TECNUN, University of Navarra , San Sebastian , Spain.
Comput Methods Biomech Biomed Engin. 2015;18(13):1377-85. doi: 10.1080/10255842.2014.903934. Epub 2014 Apr 4.
Traction force microscopy (TFM) is commonly used to estimate cells' traction forces from the deformation that they cause on their substrate. The accuracy of TFM highly depends on the computational methods used to measure the deformation of the substrate and estimate the forces, and also on the specifics of the experimental set-up. Computer simulations can be used to evaluate the effect of both the computational methods and the experimental set-up without the need to perform numerous experiments. Here, we present one such TFM simulator that addresses several limitations of the existing ones. As a proof of principle, we recreate a TFM experimental set-up, and apply a classic 2D TFM algorithm to recover the forces. In summary, our simulator provides a valuable tool to study the performance, refine experimentally, and guide the extraction of biological conclusions from TFM experiments.
牵引力量显微镜技术(TFM)通常用于根据细胞在其基底上引起的变形来估计细胞的牵引力。TFM的准确性在很大程度上取决于用于测量基底变形和估计力的计算方法,也取决于实验设置的具体情况。计算机模拟可用于评估计算方法和实验设置的效果,而无需进行大量实验。在此,我们展示了一种这样的TFM模拟器,它解决了现有模拟器的几个局限性。作为原理验证,我们重现了一个TFM实验设置,并应用一种经典的二维TFM算法来恢复力。总之,我们的模拟器为研究TFM实验的性能、进行实验优化以及指导从TFM实验中提取生物学结论提供了一个有价值的工具。