Main page | Journal list | Log-in

Yang Shen, GuoZheng Wang, Xianliang Huang, Qin Zhang, J. D. Wu, Chaojun Tang, Qingsong Yu, Xiaodi Liu

Surface wettability of plasma SiOx:H nanocoating-induced endothelial cells' migration and the associated FAK-Rho GTPases signalling pathways

Journal of the Optical Society of America 9 (2012) 313-327

Vascular endothelial cell (EC) adhesion and migration are essential processes in re-endothelialization of implanted biomaterials. There is no clear relationship and mechanism between EC adhesion and migration behaviour on surfaces with varying wettabilities. As model substrates, plasma SiOx:H nanocoatings with well-controlled surface wettability (with water contact angles in the range of 98.5 +/- 2.3 degrees to 26.3 +/- 4.0 degrees) were used in this study to investigate the effects of surface wettability on cell adhesion/migration and associated protein expressions in FAK-Rho GTPases signalling pathways. It was found that EC adhesion/migration showed opposite behaviour on the hydrophilic and hydrophobic surfaces (i.e. hydrophobic surfaces promoted EC migration but were anti-adhesions). The number of adherent ECs showed a maximum on hydrophilic surfaces, while cells adhered to hydrophobic surfaces exhibited a tendency for cell migration. The focal adhesion kinase (FAK) inhibitor targeting the Y-397 site of FAK could significantly inhibit cell adhesion/migration, suggesting that EC adhesion and migration on surfaces with different wettabilities involve (p) FAK and its downstream signalling pathways. Western blot results suggested that the FAK-Rho GTPases signalling pathways were correlative to EC migration on hydrophobic plasma SiOx:H surfaces, but uncertain to hydrophilic surfaces. This work demonstrated that surface wettability could induce cellular behaviours that were associated with different cellular signalling events.

Cited Articles

  1. Choukourov A., Pihosh Y., Stelmashuk V., Biederman H., Slavínská D., Kormunda M., Zajíčková L.,
    RF Sputtering of Composite SiOx/Plasma Polymer Films and Their Basic Properties,
    Surface and Coatings Technology 151 (2002) 214–217