Institute of Experimental Physics I, Biological Physics Division, Faculty of Physics and Earth Science, University of Leipzig, Leipzig, Germany.
Department of Paediatric Kidney, Liver and Metabolic Diseases, Hannover Medical School, Hannover, Germany.
Sci Rep. 2017 Feb 16;7:42780. doi: 10.1038/srep42780.
The focal adhesion kinase (FAK) regulates the dynamics of integrin-based cell adhesions important for motility. FAK's activity regulation is involved in stress-sensing and focal-adhesion turnover. The effect of FAK on 3D migration and cellular mechanics is unclear. We analyzed FAK knock-out mouse embryonic fibroblasts and cells expressing a kinase-dead FAK mutant, R454-FAK, in comparison to FAK wild-type cells. FAK knock-out and FAK cells invade dense 3D matrices less efficiently. These results are supported by FAK knock-down in wild-type fibroblasts and MDA-MB-231 human breast cancer cells showing reduced invasiveness. Pharmacological interventions indicate that in 3D matrices, cells deficient in FAK or kinase-activity behave similarly to wild-type cells treated with inhibitors of Src-activity or actomyosin-contractility. Using magnetic tweezers experiments, FAK cells are shown to be softer and exhibit impaired adhesion to fibronectin and collagen, which is consistent with their reduced 3D invasiveness. In line with this, FAK cells cannot contract the matrix in contrast to FAK wild-type cells. Finally, our findings demonstrate that active FAK facilitates 3D matrix invasion through increased cellular stiffness and transmission of actomyosin-dependent contractile force in dense 3D extracellular matrices.
粘着斑激酶(FAK)调节整合素细胞黏附的动力学,这对于运动性至关重要。FAK 的活性调节涉及到应激感应和粘着斑的转换。FAK 对 3D 迁移和细胞力学的影响尚不清楚。我们分析了 FAK 敲除的小鼠胚胎成纤维细胞和表达激酶失活 FAK 突变体 R454-FAK 的细胞,与 FAK 野生型细胞进行比较。FAK 敲除和 FAK 细胞在密集的 3D 基质中入侵的效率较低。这些结果得到了 FAK 敲低的野生型成纤维细胞和 MDA-MB-231 人乳腺癌细胞的支持,这些细胞表现出侵袭性降低。药理学干预表明,在 3D 基质中,缺乏 FAK 或激酶活性的细胞表现得类似于用 Src 活性抑制剂或肌动球蛋白收缩性处理的野生型细胞。使用磁镊实验,FAK 细胞表现出柔软性,并表现出对纤维连接蛋白和胶原蛋白的粘附能力下降,这与它们降低的 3D 侵袭性一致。与此一致的是,FAK 细胞不能像 FAK 野生型细胞那样收缩基质。最后,我们的研究结果表明,活性 FAK 通过增加细胞硬度和在密集的 3D 细胞外基质中传递肌动球蛋白依赖性收缩力,促进 3D 基质的入侵。