3D-Printed HA-Based Scaffolds for Bone Regeneration: Microporosity, Osteoconduction and Osteoclastic Resorption

被引:23
作者
Ghayor, Chafik [1 ]
Bhattacharya, Indranil [1 ]
Guerrero, Julien [1 ]
oezcan, Mutlu [2 ]
Weber, Franz E. [1 ,3 ]
机构
[1] Univ Zurich, Ctr Dent Med Oral Biotechnol & Bioengn, Plattenstr 11, CH-8032 Zurich, Switzerland
[2] Univ Zurich, Div Dent Biomat, Ctr Dent Med, Clin Reconstruct Dent, Plattenstr 11, CH-8032 Zurich, Switzerland
[3] Univ Zurich, Ctr Appl Biotechnol & Mol Med, CABMM, Winterthurerstr 190, CH-8057 Zurich, Switzerland
关键词
hydroxyapatite; microporosity; osteoconduction; macroarchitecture; microarchitecture; nanoarchitecture; bone substitute; additive manufacturing; 3D printing; ceramics; tricalcium phosphate; BMP-INDUCED OSTEOGENESIS; IN-VIVO BEHAVIOR; CALCIUM-PHOSPHATE; MECHANICAL-PROPERTIES; TISSUE; HYDROXYAPATITE; MICROARCHITECTURE; OSTEOINDUCTION; FABRICATION; ELEMENT;
D O I
10.3390/ma15041433
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Additive manufacturing enables the realization of the macro- and microarchitecture of bone substitutes. The macroarchitecture is determined by the bone defect and its shape makes the implant patient specific. The preset distribution of the 3D-printed material in the macroarchitecture defines the microarchitecture. At the lower scale, the nanoarchitecture of 3D-printed scaffolds is dependent on the post-processing methodology such as the sintering temperature. However, the role of microarchitecture and nanoarchitecture of scaffolds for osteoconduction is still elusive. To address these aspects in more detail, we produced lithography-based osteoconductive scaffolds from hydroxyapatite (HA) of identical macro- and microarchitecture and varied their nanoarchitecture, such as microporosity, by increasing the maximum sintering temperatures from 1100 to 1400 degrees C. The different scaffold types were characterized for microporosity, compression strength, and nanoarchitecture. The in vivo results, based on a rabbit calvarial defect model showed that bony ingrowth, as a measure of osteoconduction, was independent from scaffold's microporosity. The same applies to in vitro osteoclastic resorbability, since on all tested scaffold types, osteoclasts formed on their surfaces and resorption pits upon exposure to mature osteoclasts were visible. Thus, for wide-open porous HA-based scaffolds, a low degree of microporosity and high mechanical strength yield optimal osteoconduction and creeping substitution. Based on our study, non-unions, the major complication during demanding bone regeneration procedures, could be prevented.
引用
收藏
页数:12
相关论文
共 50 条
[31]   3D-Printed Piezoelectric Scaffolds with Shape Memory Polymer for Bone Regeneration [J].
Li, Guanlin ;
Li, Zehao ;
Min, Yajun ;
Chen, Shilu ;
Han, Ruijia ;
Zhao, Zheng .
SMALL, 2023, 19 (40)
[32]   3D-Printed Composite Bioceramic Scaffolds for Bone and Cartilage Integrated Regeneration [J].
Xu, Nanjian ;
Lu, Dezhi ;
Qiang, Lei ;
Liu, Yihao ;
Yin, Dalin ;
Wang, Zhiyong ;
Luo, Yongxiang ;
Yang, Chen ;
Ma, Zhenjiang ;
Ma, Hui ;
Wang, Jinwu .
ACS OMEGA, 2023, 8 (41) :37918-37926
[33]   Tuning filament composition and microstructure of 3D-printed bioceramic scaffolds facilitate bone defect regeneration and repair [J].
Chen, Yi ;
Huang, Jiaping ;
Liu, Jiamei ;
Wei, Yingming ;
Yang, Xianyan ;
Lei, Lihong ;
Chen, Lili ;
Wu, Yanmin ;
Gou, Zhongru .
REGENERATIVE BIOMATERIALS, 2021, 8 (02)
[34]   Surface engineering of 3D-printed scaffolds with minerals and a pro-angiogenic factor for vascularized bone regeneration [J].
Lee, Jinkyu ;
Huh, Seung Jae ;
Seok, Ji Min ;
Lee, Sangmin ;
Byun, Hayeon ;
Jang, Gyu Nam ;
Kim, Eunhyung ;
Kim, Se-jeong ;
Park, Su A. ;
Kim, Sung Min ;
Shin, Heungsoo .
ACTA BIOMATERIALIA, 2022, 140 :730-744
[35]   Accelerated degradation mechanism and mechanical behavior of 3D-printed PLA scaffolds for bone regeneration [J].
Zohoor, Sara ;
Abolfathi, Nabiollah ;
Solati-Hashjin, Mehran .
IRANIAN POLYMER JOURNAL, 2023, 32 (10) :1209-1227
[36]   Simultaneously constructing nanotopographical and chemical cues in 3D-printed polylactic acid scaffolds to promote bone regeneration [J].
Wang, Peng ;
Yin, Hua-Mo ;
Li, Xiang ;
Liu, Wei ;
Chu, Yu-Xian ;
Wang, Yu ;
Wang, Yan ;
Xu, Jia-Zhuang ;
Li, Zhong-Ming ;
Li, Ji-Hua .
MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2021, 118
[37]   Assessment of 3D-Printed Polycaprolactone, Hydroxyapatite Nanoparticles and Diacrylate Poly(ethylene glycol) Scaffolds for Bone Regeneration [J].
Sousa, Ana Catarina ;
Biscaia, Sara ;
Alvites, Rui ;
Branquinho, Mariana ;
Lopes, Bruna ;
Sousa, Patricia ;
Valente, Joana ;
Franco, Margarida ;
Santos, Jose Domingos ;
Mendonca, Carla ;
Atayde, Luis ;
Alves, Nuno ;
Mauricio, Ana Colette .
PHARMACEUTICS, 2022, 14 (12)
[38]   Delivering Proangiogenic Factors from 3D-Printed Polycaprolactone Scaffolds for Vascularized Bone Regeneration [J].
Liu, Haoming ;
Du, Yingying ;
Yang, Gaojie ;
Hu, Xixi ;
Wang, Lin ;
Liu, Bin ;
Wang, Jianglin ;
Zhang, Shengmin .
ADVANCED HEALTHCARE MATERIALS, 2020, 9 (23)
[39]   Vascularized 3D printed scaffolds for promoting bone regeneration [J].
Yan, Yufei ;
Chen, Hao ;
Zhang, Hongbo ;
Guo, Changjun ;
Yang, Kai ;
Chen, Kaizhe ;
Cheng, Ruoyu ;
Qian, Niandong ;
Sandler, Niklas ;
Zhang, Yu Shrike ;
Shen, Haokai ;
Qi, Jin ;
Cui, Wenguo ;
Deng, Lianfu .
BIOMATERIALS, 2019, 190 :97-110
[40]   The Development Tendency of 3D-Printed Bioceramic Scaffolds for Applications Ranging From Bone Tissue Regeneration to Bone Tumor Therapy [J].
Fang, Zhixiang ;
Chen, Jihang ;
Pan, Jiangxia ;
Liu, Guoqiang ;
Zhao, Chen .
FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2021, 9