Characterization and in vitro assessment of three-dimensional extrusion Mg-Sr codoped SiO2-complexed porous microhydroxyapatite whisker scaffolds for biomedical engineering

被引:11
作者
Li, Chengyong [1 ]
Yan, Tingting [2 ]
Lou, Zhenkai [1 ]
Jiang, Zhimin [2 ]
Shi, Zhi [1 ]
Chen, Qinghua [2 ]
Gong, Zhiqiang [1 ]
Wang, Bing [1 ]
机构
[1] Kunming Med Univ, Affiliated Hosp 1, Dept Orthoped, Kunming 650032, Yunnan, Peoples R China
[2] Kunming Univ Sci & Technol, Fac Mat Sci & Engn, Kunming 650093, Yunnan, Peoples R China
基金
中国国家自然科学基金;
关键词
Micron hydroxyapatite whiskers; Extrusion molding; Porous ceramic scaffold; Bone tissue engineering; COLLAGEN SCAFFOLDS; SUSTAINED-RELEASE; BONE REGENERATION; HUMAN OSTEOBLAST; BIOACTIVE GLASS; HYDROXYAPATITE; MAGNESIUM; OSTEOCLASTOGENESIS; CYTOTOXICITY; ANGIOGENESIS;
D O I
10.1186/s12938-021-00953-w
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Background Large bone defects have always been a great challenge for orthopedic surgeons. The use of a good bone substitute obtained by bone tissue engineering (BTE) may be an effective treatment method. Artificial hydroxyapatite, a commonly used bone defect filler, is the main inorganic component of bones. Because of its high brittleness, fragility, and lack of osteogenic active elements, its application is limited. Therefore, its fragility should be reduced, its osteogenic activity should be improved, and a more suitable scaffold should be constructed. Methods In this study, a microhydroxyapatite whisker (mHAw) was developed, which was doped with the essential trace active elements Mg2+ and Sr2+ through a low-temperature sintering technique. After being formulated into a slurry, a bionic porous scaffold was manufactured by extrusion molding and freeze drying, and then SiO2 was used to improve the mechanical properties of the scaffold. The hydrophilicity, pore size, surface morphology, surface roughness, mechanical properties, and release rate of the osteogenic elements of the prepared scaffold were detected and analyzed. In in vitro experiments, Sprague-Dawley (SD) rat bone marrow mesenchymal stem cells (rBMSCs) were cultured on the scaffold to evaluate cytotoxicity, cell proliferation, spreading, and osteogenic differentiation. Results Four types of scaffolds were obtained: mHAw-SiO2 (SHA), Mg-doped mHAw-SiO2 (SMHA), Sr-doped mHAw-SiO2 (SSHA), and Mg-Sr codoped mHAw-SiO2 (SMSHA). SHA was the most hydrophilic (WCA 5 degrees), while SMHA was the least (WCA 8 degrees); SMHA had the smallest pore size (247.40 +/- 23.66 mu m), while SSHA had the largest (286.20 +/- 19.04 mu m); SHA had the smallest Young's modulus (122.43 +/- 28.79 MPa), while SSHA had the largest (188.44 +/- 47.89 MPa); and SHA had the smallest compressive strength (1.72 +/- 0.29 MPa), while SMHA had the largest (2.47 +/- 0.25 MPa). The osteogenic active elements Si, Mg, and Sr were evenly distributed and could be sustainably released from the scaffolds. None of the scaffolds had cytotoxicity. SMSHA had the highest supporting cell proliferation and spreading rate, and its ability to promote osteogenic differentiation of rBMSCs was also the strongest. Conclusions These composite porous scaffolds not only have acceptable physical and chemical properties suitable for BTE but also have higher osteogenic bioactivity and can possibly serve as potential bone repair materials.
引用
收藏
页数:20
相关论文
共 62 条
[1]   Bactericidal strontium-releasing injectable bone cements based on bioactive glasses [J].
Brauer, Delia S. ;
Karpukhina, Natalia ;
Kedia, Gopal ;
Bhat, Aditya ;
Law, Robert V. ;
Radecka, Izabela ;
Hill, Robert G. .
JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2013, 10 (78)
[2]   Developing a Strontium-Releasing Graphene Oxide-/Collagen-Based Organic Inorganic Nanobiocomposite for Large Bone Defect Regeneration via MAPK Signaling Pathway [J].
Chen, Yahong ;
Zheng, Zhiwei ;
Zhou, Renpeng ;
Zhang, Huizhong ;
Chen, Chuhsin ;
Xiong, Zhezhen ;
Liu, Kai ;
Wang, Xiansong .
ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (17) :15986-15997
[3]   3D printing of porous hydroxyapatite scaffolds intended for use in bone tissue engineering applications [J].
Cox, Sophie C. ;
Thornby, John A. ;
Gibbons, Gregory J. ;
Williams, Mark A. ;
Mallick, Kajal K. .
MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2015, 47 :237-247
[4]   Expression of vascular endothelial growth factors and their receptors during osteoblast differentiation [J].
Deckers, MML ;
Karperien, M ;
van der Bent, C ;
Yamashita, T ;
Papapoulos, SE ;
Löwik, CWGM .
ENDOCRINOLOGY, 2000, 141 (05) :1667-1674
[5]   Magnesium Chloride promotes Osteogenesis through Notch signaling activation and expansion of Mesenchymal Stem Cells [J].
Diaz-Tocados, Juan M. ;
Herencia, Carmen ;
Martinez-Moreno, Julio M. ;
Montes de Oca, Addy ;
Rodriguez-Ortiz, Maria E. ;
Vergara, Noemi ;
Blanco, Alfonso ;
Steppan, Sonja ;
Almaden, Yolanda ;
Rodriguez, Mariano ;
Munoz-Castaneda, Juan R. .
SCIENTIFIC REPORTS, 2017, 7
[6]   Hierarchically designed bone scaffolds: From internal cues to external stimuli [J].
Du, Yingying ;
Guo, Jason L. ;
Wang, Jianglin ;
Mikos, Antonios G. ;
Zhang, Shengmin .
BIOMATERIALS, 2019, 218
[7]   Fracture healing: mechanisms and interventions [J].
Einhorn, Thomas A. ;
Gerstenfeld, Louis C. .
NATURE REVIEWS RHEUMATOLOGY, 2015, 11 (01) :45-54
[8]   Blood compatibility of magnesium and its alloys [J].
Feyerabend, Frank ;
Wendel, Hans-Peter ;
Mihailova, Boriana ;
Heidrich, Stefanie ;
Agha, Nezha Ahmad ;
Bismayer, Ulrich ;
Willumeit-Roemer, Regine .
ACTA BIOMATERIALIA, 2015, 25 :384-394
[9]   Biomaterial-mediated strategies targeting vascularization for bone repair [J].
Garcia, Jose R. ;
Garcia, Andres J. .
DRUG DELIVERY AND TRANSLATIONAL RESEARCH, 2016, 6 (02) :77-95
[10]   Effects of Silicon Compounds on Biomineralization, Osteogenesis, and Hard Tissue Formation [J].
Goetz, Werner ;
Tobiasch, Edda ;
Witzleben, Steffen ;
Schulze, Margit .
PHARMACEUTICS, 2019, 11 (03)