Centro/Departamento de Física , Universidade do Minho , 4710-057 Braga , Portugal.
ARC Centre for Electromaterials Science (ACES), Innovation Campus , University of Wollongong , Squires Way , Wollongong , NSW 2500 , Australia.
ACS Appl Mater Interfaces. 2020 Jan 8;12(1):191-199. doi: 10.1021/acsami.9b17222. Epub 2019 Dec 24.
Cell-material interactions play an essential role in the development of scaffold-based tissue engineering strategies. Cell therapies are still limited in treating injuries when severe damage causes irreversible loss of muscle cells. Electroactive biomaterials and, in particular, piezoelectric materials offer new opportunities for skeletal muscle tissue engineering since these materials have demonstrated suitable electroactive microenvironments for tissue development. In this study, the influence of the surface charge of piezoelectric poly(vinylidene fluoride) (PVDF) on cell adhesion was investigated. The cytoskeletal organization of C2C12 myoblast cells grown on different PVDF samples was studied by immunofluorescence staining, and the interactions between single live cells and PVDF were analyzed using an atomic force microscopy (AFM) technique termed single-cell force spectroscopy. It was demonstrated that C2C12 myoblast cells seeded on samples with net surface charge present a more elongated morphology, this effect being dependent on the surface charge but independent of the poling direction (negative or positive surface charge). It was further shown that the cell deadhesion forces of individual C2C12 cells were higher on PVDF samples with an overall negative surface charge (8.92 ± 0.45 nN) compared to those on nonpoled substrates (zero overall surface charge) (4.06 ± 0.20 nN). These findings explicitly demonstrate that the polarization/surface charge is an important parameter to determine cell fate as it affects C2C12 cell adhesion, which in turn will influence cell behavior, namely, cell proliferation and differentiation.
细胞-材料相互作用在支架基组织工程策略的发展中起着至关重要的作用。当严重损伤导致肌肉细胞不可逆转的损失时,细胞疗法在治疗损伤方面仍然受到限制。电活性生物材料,特别是压电材料,为骨骼肌组织工程提供了新的机会,因为这些材料已经证明了适合组织发育的电活性微环境。在这项研究中,研究了压电聚偏二氟乙烯(PVDF)的表面电荷对细胞黏附的影响。通过免疫荧光染色研究了在不同 PVDF 样品上生长的 C2C12 成肌细胞的细胞骨架组织,并用原子力显微镜(AFM)技术(称为单细胞力谱)分析了单个活细胞与 PVDF 的相互作用。结果表明,在具有净表面电荷的样品上接种的 C2C12 成肌细胞呈现出更细长的形态,这种效应取决于表面电荷,但与极化方向(负或正表面电荷)无关。进一步表明,与非极化基底(零总表面电荷)相比,具有整体负表面电荷的 PVDF 样品上单个 C2C12 细胞的细胞解吸力更高(8.92±0.45 nN)。这些发现明确表明,极化/表面电荷是决定细胞命运的一个重要参数,因为它会影响 C2C12 细胞黏附,从而影响细胞行为,即细胞增殖和分化。