Review on vat photopolymerization additive manufacturing of bioactive ceramic bone scaffolds

被引:24
作者
Guo, Wang [1 ,2 ]
Li, Bowen [1 ]
Li, Ping [1 ]
Zhao, Lei [1 ]
You, Hui [1 ,2 ]
Long, Yu [1 ,2 ]
机构
[1] Guangxi Univ, Sch Mech Engn, Guangxi Key Lab Mfg Syst & Adv Mfg Technol, Nanning 530004, Peoples R China
[2] Guangxi Univ, State Key Lab Featured Met Mat & Life Cycle Safet, Nanning 530004, Peoples R China
关键词
MECHANICAL-PROPERTIES; HYDROXYAPATITE SCAFFOLDS; COMPOSITE SCAFFOLDS; POROUS SCAFFOLDS; FABRICATION; SUSPENSIONS; SURFACE; PERFORMANCE; BEHAVIOR; DESIGN;
D O I
10.1039/d3tb01236k
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
Bone defects frequently occur in clinical settings due to trauma, disease, tumors, and other causes. The clinical use of autologous bones and allograft bone, however, has several limitations, such as limited sources, donor site morbidity, and immunological rejection. Nevertheless, there is newfound hope for regenerating and repairing bone defects through the development and integration of bone tissue engineering scaffold and additive manufacturing (AM) technology, also known as 3D printing. In particular, vat photopolymerization (VPP)-AM of bioactive ceramic bone scaffolds has garnered significant interest from interdisciplinary researchers in recent years. On the one hand, VPP-AM demonstrates clear advantages in printing accuracy and speed compared to other AM and non-AM technologies. On the other hand, bioactive ceramic materials exhibit superior bioactivity, biodegradability, and mechanical properties compared to metals, polymers, and bioinert ceramics, making them one of the most promising biomaterials for developing bone scaffolds. This paper reviews the research progress of VPP-AM of bioactive ceramic bone scaffolds, covering the process principles of various VPP-AM technologies, the performance requirements and preparation process of VPP ceramic slurry, the VPP process of bioactive ceramic bone scaffolds, and the research progress on different material types of VPP bioactive ceramic scaffolds. Firstly, we provide a brief introduction to the process principles and medical applications of various VPP technologies. Secondly, we explore the composition of the VPP ceramic slurry system, discussing the function of various components and their effects on printing quality. Thirdly, we delve into the performance requirements of bone scaffolds and summarize the research progress of VPP bioactive ceramic bone scaffolds of various material types including hydroxyapatite (HA), tricalcium phosphate (TCP), bioglass (BG), etc.; Finally, we discuss the challenges currently faced by VPP-AM bioactive ceramic bone scaffolds and propose possible development directions for the future. Bone defects frequently occur in clinical settings due to trauma, disease, tumors, and other causes.
引用
收藏
页码:9572 / 9596
页数:25
相关论文
共 145 条
[11]  
Belsure N., 2022, 3D PRINTING ORAL HLT, P69
[12]   DLP printed β-tricalcium phosphate functionalized ceramic scaffolds promoted angiogenesis and osteogenesis in long bone defects [J].
Bi, Gangyuan ;
Mo, Lina ;
Liu, Sa ;
Zhong, Xiupeng ;
Yang, Junzhong ;
Yuan, Zhongrun ;
Chen, Shenggui ;
Ren, Li .
CERAMICS INTERNATIONAL, 2022, 48 (18) :26274-26286
[13]   3D Printing and Performance Study of Porous Artificial Bone Based on HA-ZrO2-PVA Composites [J].
Bie, Hongling ;
Chen, Honghao ;
Shan, Lijun ;
Tan, C. Y. ;
Al-Furjan, M. S. H. ;
Ramesh, S. ;
Gong, Youping ;
Liu, Y. F. ;
Zhou, R. G. ;
Yang, Weibo ;
Wang, Honghua .
MATERIALS, 2023, 16 (03)
[14]   Influence of random and designed porosities on 3D printed tricalcium phosphate-bioactive glass scaffolds [J].
Bose, Susmita ;
Bhattacharjee, Arjak ;
Banerjee, Dishary ;
Boccaccini, Aldo R. ;
Bandyopadhyay, Amit .
ADDITIVE MANUFACTURING, 2021, 40
[15]   Powder-based 3D printing for bone tissue engineering [J].
Brunello, G. ;
Sivolella, S. ;
Meneghello, R. ;
Ferroni, L. ;
Gardin, C. ;
Piattelli, A. ;
Zavan, B. ;
Bressan, E. .
BIOTECHNOLOGY ADVANCES, 2016, 34 (05) :740-753
[16]   Fabrication and properties of zirconia/hydroxyapatite composite scaffold based on digital light processing [J].
Cao, Ying ;
Shi, Tianshu ;
Jiao, Chen ;
Liang, Huixin ;
Chen, Ruoyu ;
Tian, Zongjun ;
Zou, Anchao ;
Yang, Youwen ;
Wei, Zhen ;
Wang, Changjiang ;
Shen, Lida .
CERAMICS INTERNATIONAL, 2020, 46 (02) :2300-2308
[17]   Oral implants placed in bone defects treated with Bio-Oss®, Ostim®-Paste or PerioGlas: an experimental study in the rabbit tibiae [J].
Carmagnola, Daniela ;
Abati, Silvio ;
Celestino, Silvio ;
Chiapasco, Matteo ;
Bosshardt, Dieter ;
Lang, Niklaus P. .
CLINICAL ORAL IMPLANTS RESEARCH, 2008, 19 (12) :1246-1253
[18]   A review on fabricating tissue scaffolds using vat photopolymerization [J].
Chartrain, Nicholas A. ;
Williams, Christopher B. ;
Whittington, Abby R. .
ACTA BIOMATERIALIA, 2018, 74 :90-111
[19]   Additive manufacturing by digital light processing: a review [J].
Chaudhary, Rajat ;
Fabbri, Paride ;
Leoni, Enrico ;
Mazzanti, Francesca ;
Akbari, Raziyeh ;
Antonini, Carlo .
PROGRESS IN ADDITIVE MANUFACTURING, 2023, 8 (02) :331-351
[20]   Influence of irradiation parameters on the curing and interfacial tensile strength of HAP printed part fabricated by SLA-3D printing [J].
Chen, Qinghua ;
Zou, Bin ;
Lai, Qingguo ;
Zhao, Yun ;
Zhu, Kaiwen .
JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2022, 42 (14) :6721-6732