The Affiliated Hospital of Qingdao University, Qingdao University, Qingdao, 266003, China.
The Affiliated Hospital of Qingdao University, Qingdao University, Qingdao, 266003, China; Institute of Sports Medicine and Health, Qingdao University, 266003, China.
Colloids Surf B Biointerfaces. 2019 Jan 1;173:512-520. doi: 10.1016/j.colsurfb.2018.10.027. Epub 2018 Oct 10.
Cell adhesion was the first step of bone reconstruction. While hydroxyapatite (HA)/graphene composites had been utilized for improving the cell adhesion and bone osteogenesis, the impact of cell adhesion and HA/graphene composites, especially HA/hydrophilic graphene (HG) composites, on internal interaction force and external surface properties remained poorly understood. Here, higher stability HA/HG composites were synthesized without extra ion introduction with in situ self-assembling method. And with XRD, FT-IR, XPS and Raman analyses, the evidences of the formation of HA and the introduction of HG was clear. TEM and SEM images showed the net-like spatial structure due to the internal interaction force between HA and HG, which provided the strain stimulation for cell adhesion. Subsequently, the external surface properties of HA/HG composites demonstrated that the roughness and hydrophilic ability of HA/HG composites could be artificially regulated by increasing the content of HG. Besides, the cell proliferation rate of HA/HG composites had been investigated. Compared to the intrinsic HA, HA/5%HG possessed the higher cell proliferation rate (264.81%) and promoted the spreading and growth of MC3T3-E1 cells. Finally, the regulation mechanism between HA/HG and cell adhesion were illuminated in detail. The excellent regular behavior of HA/HG composites for cell adhesion made them promising candidates for bone reconstruction and repairing. The present work provided the reference for the design of modifiable biomaterials and offered much inspiration for the future research of bone reconstruction engineering.
细胞黏附是骨重建的第一步。虽然羟基磷灰石(HA)/石墨烯复合材料已被用于改善细胞黏附和骨生成,但细胞黏附与 HA/石墨烯复合材料(尤其是 HA/亲水性石墨烯(HG)复合材料)对内部相互作用力和外部表面性能的影响仍知之甚少。在这里,通过原位自组装方法,在不引入额外离子的情况下合成了具有更高稳定性的 HA/HG 复合材料。通过 XRD、FT-IR、XPS 和 Raman 分析,清楚地证明了 HA 的形成和 HG 的引入。TEM 和 SEM 图像显示了由于 HA 和 HG 之间的内部相互作用力而形成的网状空间结构,这为细胞黏附提供了应变刺激。随后,研究了 HA/HG 复合材料的外部表面性能,结果表明,通过增加 HG 的含量可以人为调节 HA/HG 复合材料的粗糙度和亲水能力。此外,还研究了 HA/HG 复合材料的细胞增殖率。与纯 HA 相比,HA/5%HG 具有更高的细胞增殖率(264.81%),并促进了 MC3T3-E1 细胞的铺展和生长。最后,详细阐明了 HA/HG 与细胞黏附之间的调节机制。HA/HG 复合材料对细胞黏附的优异调节行为使它们成为骨重建和修复的有前途的候选材料。本工作为可修饰生物材料的设计提供了参考,并为骨重建工程的未来研究提供了很多启示。