Dalby Matthew J, Hart Andrew, Yarwood Stephen John
Centre for Cell Engineering, University of Glasgow, Glasgow G12 8QQ, UK.
Biomaterials. 2008 Jan;29(3):282-9. doi: 10.1016/j.biomaterials.2007.09.030. Epub 2007 Oct 22.
A wide variety of different cell types have been shown to respond to nanofabricated growth surfaces via the process of contact guidance, however little is known about the intracellular mechanisms that control these events. In the present study we have identified the multi-functional signalling adaptor protein, RACK1, as a novel negative regulator of contact guidance on custom-engineered nanometric grooves. We found that over-expression of RACK1 in human breast cancer cells leads to a pro-adherent morphology characterised by the formation of stress fibres and focal adhesions. Enforced expression of RACK1 also limits the response of cells to contact guidance on nanometric grooves. In contrast, ablation of RACK1 protein with specific anti-sense oligonucleotides led to a dramatic enhancement of bi-directional extension of cells on nanometrically deep grooved surfaces, with a corresponding loss of focal adhesions and stress fibres. RACK1 therefore exerts a tonic inhibitory effect on cell contact guidance, while positively promoting an adhesive phenotype. This is the first example of an intracellular signalling molecule involved in the regulation of cell contact guidance on nanometric growth surfaces.
已有多种不同类型的细胞被证明可通过接触导向过程对纳米加工的生长表面做出反应,然而对于控制这些事件的细胞内机制却知之甚少。在本研究中,我们已确定多功能信号衔接蛋白RACK1是定制工程纳米凹槽上接触导向的一种新型负调节因子。我们发现,人乳腺癌细胞中RACK1的过表达导致一种以应力纤维和粘着斑形成为特征的促粘附形态。RACK1的强制表达也限制了细胞对纳米凹槽上接触导向的反应。相反,用特定反义寡核苷酸消除RACK1蛋白会导致细胞在纳米深槽表面上的双向延伸显著增强,同时粘着斑和应力纤维相应减少。因此,RACK1对细胞接触导向发挥着持续的抑制作用,同时积极促进粘附表型。这是参与调节纳米生长表面上细胞接触导向的细胞内信号分子的首个实例。