Careta Oriol, Fornell Jordina, Pellicer Eva, Ibañez Elena, Blanquer Andreu, Esteve Jaume, Sort Jordi, Murillo Gonzalo, Nogués Carme
Departament de Biologia Cel·lular, Fisiologia i Immunologia, Universitat Autònoma de Barcelona, E-08193 Bellaterra (Cerdanyola del Vallès), Spain.
Departament de Física, Universitat Autònoma de Barcelona, E-08193 Bellaterra (Cerdanyola del Vallès), Spain.
Biomedicines. 2021 Mar 30;9(4):352. doi: 10.3390/biomedicines9040352.
A Ti-based alloy (TiZrPdSiNb) with already proven excellent mechanical and biocompatibility features has been coated with piezoelectric zinc oxide (ZnO) to induce the electrical self-stimulation of cells. ZnO was grown onto the pristine alloy in two different morphologies: a flat dense film and an array of nanosheets. The effect of the combined material on osteoblasts (electrically stimulable cells) was analyzed in terms of proliferation, cell adhesion, expression of differentiation markers and induction of calcium transients. Although both ZnO structures were biocompatible and did not induce inflammatory response, only the array of ZnO nanosheets was able to induce calcium transients, which improved the proliferation of Saos-2 cells and enhanced the expression of some early differentiation expression genes. The usual motion of the cells imposes strain to the ZnO nanosheets, which, in turn, create local electric fields owing to their piezoelectric character. These electric fields cause the opening of calcium voltage gates and boost cell proliferation and early differentiation. Thus, the modification of the TiZrPdSiNb surface with an array of ZnO nanosheets endows the alloy with smart characteristics, making it capable of electric self-stimulation.
一种已被证明具有出色机械性能和生物相容性的钛基合金(TiZrPdSiNb)被涂上了压电氧化锌(ZnO),以诱导细胞的电自我刺激。ZnO以两种不同形态生长在原始合金上:平整致密膜和纳米片阵列。从增殖、细胞粘附、分化标志物表达和钙瞬变诱导等方面分析了这种复合材料对成骨细胞(可电刺激细胞)的影响。尽管两种ZnO结构都具有生物相容性且未引发炎症反应,但只有ZnO纳米片阵列能够诱导钙瞬变,这改善了Saos-2细胞的增殖并增强了一些早期分化表达基因的表达。细胞的正常运动会对ZnO纳米片施加应变,而ZnO纳米片由于其压电特性会反过来产生局部电场。这些电场会导致钙电压门打开,促进细胞增殖和早期分化。因此,用ZnO纳米片阵列对TiZrPdSiNb表面进行改性赋予了该合金智能特性,使其能够进行电自我刺激。