Liu Wenwen, Su Penglei, Gonzales Arthur, Chen Su, Wang Na, Wang Jinshu, Li Hongyi, Zhang Zhenting, Webster Thomas J
Laboratory of Biomaterials and Biomechanics, Beijing Key Laboratory of Tooth Regeneration and Function Reconstruction, School of Stomatology, Capital Medical University, Beijing, People's Republic of China ; Photoelectrochemical Research Group, Key Laboratory of Advanced Functional Materials, School of Materials Science and Engineering, Beijing University of Technology, Beijing, People's Republic of China ; Chemical Engineering Department, Northeastern University, Boston, MA, USA.
Photoelectrochemical Research Group, Key Laboratory of Advanced Functional Materials, School of Materials Science and Engineering, Beijing University of Technology, Beijing, People's Republic of China.
Int J Nanomedicine. 2015 Mar 12;10:1997-2019. doi: 10.2147/IJN.S74418. eCollection 2015.
To optimize mesenchymal stem cell differentiation and antibacterial properties of titanium (Ti), nano-sized zinc oxide (ZnO) particles with tunable concentrations were incorporated into TiO2 nanotubes (TNTs) using a facile hydrothermal strategy. It is revealed here for the first time that the TNTs incorporated with ZnO nanoparticles exhibited better biocompatibility compared with pure Ti samples (controls) and that the amount of ZnO (tailored by the concentration of Zn(NO3)2 in the precursor) introduced into TNTs played a crucial role on their osteogenic properties. Not only was the alkaline phosphatase activity improved to about 13.8 U/g protein, but the osterix, collagen-I, and osteocalcin gene expressions was improved from mesenchymal stem cells compared to controls. To further explore the mechanism of TNTs decorated with ZnO on cell functions, a response surface mathematical model was used to optimize the concentration of ZnO incorporation into the Ti nanotubes for stem cell differentiation and antibacterial properties for the first time. Both experimental and modeling results confirmed (R (2) values of 0.8873-0.9138 and 0.9596-0.9941, respectively) that Ti incorporated with appropriate concentrations (with an initial concentration of Zn(NO3)2 at 0.015 M) of ZnO can provide exceptional osteogenic properties for stem cell differentiation in bone cells with strong antibacterial effects, properties important for improving dental and orthopedic implant efficacy.
为优化钛(Ti)的间充质干细胞分化及抗菌性能,采用简便的水热法将浓度可调的纳米级氧化锌(ZnO)颗粒掺入二氧化钛纳米管(TNTs)中。首次发现,与纯钛样品(对照)相比,掺入ZnO纳米颗粒的TNTs具有更好的生物相容性,并且引入TNTs中的ZnO量(由前体中Zn(NO3)2的浓度调整)对其成骨性能起着关键作用。与对照相比,间充质干细胞的碱性磷酸酶活性不仅提高到约13.8 U/g蛋白质,而且osterix、胶原蛋白I和骨钙素基因表达也得到改善。为进一步探究ZnO修饰的TNTs对细胞功能的作用机制,首次使用响应面数学模型来优化ZnO掺入钛纳米管的浓度,以实现干细胞分化和抗菌性能。实验和建模结果均证实(R(2)值分别为0.8873 - 0.9138和0.9596 - 0.9941),掺入适当浓度(初始浓度的Zn(NO3)2为0.015 M)ZnO的Ti可为骨细胞中的干细胞分化提供优异的成骨性能,并具有强大的抗菌效果,这些性能对于提高牙科和骨科植入物的疗效至关重要。