Nanoscale Topography of Anodic TiO2 Nanostructures Is Crucial for Cell-Surface Interactions

被引:14
作者
Park, Jung [1 ]
Tesler, Alexander B. [2 ]
Gongadze, Ekaterina [3 ]
Iglic, Ales [3 ,4 ]
Schmuki, Patrik [2 ,5 ]
Mazare, Anca [2 ]
机构
[1] Univ Hosp Erlangen, Dept Pediat, Div Mol Pediat, D-91054 Erlangen, Germany
[2] Friedrich Alexander Univ Erlangen Nurnberg, Dept Mat Sci WW4 LKO, D-91054 Erlangen, Germany
[3] Univ Ljubljana, Fac Elect Engn, Lab Phys, Ljubljana SI-1000, Slovenia
[4] Univ Ljubljana, Fac Med, Inst Biochem, Pharmacogenet Lab, Vrazov Trg 2, Ljubljana 1000, Slovenia
[5] Palacky Univ Olomouc, Czech Adv Technol & Res Inst CATRIN, Reg Ctr Adv Technol & Mat, Olomouc 779 00, Czech Republic
关键词
TiO2; nanotubes; nanopores; anodization; surface topography; stem cells; integrin; NANOTUBE ARRAYS; STEM-CELLS; TITANIUM; DIFFERENTIATION; ADHESION; BEHAVIOR; LAYERS; BIOCOMPATIBILITY; MORPHOLOGY; GROWTH;
D O I
10.1021/acsami.3c16033
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Anodic titanium dioxide (TiO2 ) nanostructures, i.e., obtained by electrochemical anodization, have excellent control over the nanoscale morphology and have been extensively investigated in biomedical applications owing to their sub-100 nm nanoscale topography range and beneficial effects on biocompatibility and cell interactions. Herein, we obtain TiO2 nanopores (NPs) and nanotubes (NTs) with similar morphologies, namely, 15 nm diameter and 500 nm length, and investigate their characteristics and impact on stem cell adhesion. We show that the transition of TiO2 NPs to NTs occurs via a pore/wall splitting mechanism and the removal of the fluoride-rich layer. Furthermore, in contrast to the case of NPs, we observe increased cell adhesion and proliferation on nanotubes. The enhanced mesenchymal stem cell adhesion/proliferation seems to be related to a 3-fold increase in activated integrin clustering, as confirmed by immunogold labeling with beta 1 integrin antibody on the nanostructured layers. Moreover, computations of the electric field and surface charge density show increased values at the inner and outer sharp edges of the top surfaces of the NTs, which in turn can influence cell adhesion by increasing the bridging interactions mediated by proteins and molecules in the environment. Collectively, our results indicate that the nanoscale surface architecture of the lateral spacing topography can greatly influence stem cell adhesion on substrates for biomedical applications.
引用
收藏
页码:4430 / 4438
页数:9
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