Przybyla L, Lakins J N, Sunyer R, Trepat X, Weaver V M
Center for Bioengineering and Tissue Regeneration, Department of Surgery, University of California, San Francisco (UCSF), San Francisco, CA, USA.
Institute for Bioengineering of Catalonia (IBEC), Baldiri Reixac 15-21, 08028 Barcelona, Spain.
Methods. 2016 Feb 1;94:101-13. doi: 10.1016/j.ymeth.2015.09.003. Epub 2015 Sep 2.
The way cells are organized within a tissue dictates how they sense and respond to extracellular signals, as cues are received and interpreted based on expression and organization of receptors, downstream signaling proteins, and transcription factors. Part of this microenvironmental context is the result of forces acting on the cell, including forces from other cells or from the cellular substrate or basement membrane. However, measuring forces exerted on and by cells is difficult, particularly in an in vivo context, and interpreting how forces affect downstream cellular processes poses an even greater challenge. Here, we present a simple method for monitoring and analyzing forces generated from cell collectives. We demonstrate the ability to generate traction force data from human embryonic stem cells grown in large organized epithelial sheets to determine the magnitude and organization of cell-ECM and cell-cell forces within a self-renewing colony. We show that this method can be used to measure forces in a dynamic hESC system and demonstrate the ability to map intracolony protein localization to force organization.
细胞在组织内的组织方式决定了它们如何感知和响应细胞外信号,因为信号是基于受体、下游信号蛋白和转录因子的表达及组织来接收和解读的。这种微环境背景的一部分是作用于细胞的力的结果,包括来自其他细胞、细胞基质或基底膜的力。然而,测量作用于细胞以及细胞所施加的力很困难,尤其是在体内环境中,而且解读力如何影响下游细胞过程带来了更大的挑战。在此,我们提出一种用于监测和分析细胞集体产生的力的简单方法。我们展示了从在大型有组织的上皮片中生长的人类胚胎干细胞生成牵引力数据的能力,以确定自我更新集落内细胞与细胞外基质(ECM)以及细胞间力的大小和组织情况。我们表明该方法可用于在动态人胚胎干细胞(hESC)系统中测量力,并展示了将集落内蛋白质定位映射到力的组织情况的能力。