Biomaterial-based 3D bioprinting strategy for orthopedic tissue engineering

被引:65
作者
Chae, Suhun [1 ,3 ]
Cho, Dong-Woo [1 ,2 ,4 ]
机构
[1] Pohang Univ Sci & Technol, Dept Mech Engn, 77 Cheongam Ro, Pohang 37673, Gyeongsangbugdo, South Korea
[2] Yonsei Univ, Inst Convergence Res & Educ Adv Technol, 50 Yonsei Ro, Seoul 03722, South Korea
[3] EDmicBio Inc, 111 Hoegi Ro, Seoul 02445, South Korea
[4] Pohang Univ Sci & Technol, Dept Mech Engn, 77 Cheongam Ro, Pohang 37673, Gyeongsangbugdo, South Korea
基金
新加坡国家研究基金会;
关键词
3D bioprinting; Biofabrication; Biomaterial; Tissue-specific bioink; Orthopedic tissue engineering; IN-VITRO; GELATIN; SCAFFOLDS; CONSTRUCTS; COLLAGEN; FABRICATION; HYDROGELS; ALGINATE; POLYMERS; DEFECTS;
D O I
10.1016/j.actbio.2022.08.004
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The advent of three-dimensional (3D) bioprinting has enabled impressive progress in the development of 3D cellular constructs to mimic the structural and functional characteristics of natural tissues. Bioprint-ing has considerable translational potential in tissue engineering and regenerative medicine. This review highlights the rational design and biofabrication strategies of diverse 3D bioprinted tissue constructs for orthopedic tissue engineering applications. First, we elucidate the fundamentals of 3D bioprinting tech-niques and biomaterial inks and discuss the basic design principles of bioprinted tissue constructs. Next, we describe the rationale and key considerations in 3D bioprinting of tissues in many different aspects. Thereafter, we outline the recent advances in 3D bioprinting technology for orthopedic tissue engineering applications, along with detailed strategies of the engineering methods and materials used, and discuss the possibilities and limitations of different 3D bioprinted tissue products. Finally, we summarize the current challenges and future directions of 3D bioprinting technology in orthopedic tissue engineering and regenerative medicine. This review not only delineates the representative 3D bioprinting strategies and their tissue engineering applications, but also provides new insights for the clinical translation of 3D bioprinted tissues to aid in prompting the future development of orthopedic implants. Statement of significance 3D bioprinting has driven major innovations in the field of tissue engineering and regenerative medicine; aiming to develop a functional viable tissue construct that provides an alternative regenerative therapy for musculoskeletal tissue regeneration. 3D bioprinting-based biofabrication strategies could open new clinical possibilities for creating equivalent tissue substitutes with the ability to customize them to meet patient demands. In this review, we summarize the significance and recent advances in 3D bioprinting technology and advanced bioinks. We highlight the rationale for biofabrication strategies using 3D bio-printing for orthopedic tissue engineering applications. Furthermore, we offer ample perspective and new insights into the current challenges and future direction of orthopedic bioprinting translation research.(c) 2022 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:4 / 20
页数:17
相关论文
共 175 条
[61]   Early rehabilitation for volumetric muscle loss injury augments endogenous regenerative aspects of muscle strength and oxidative capacity [J].
Greising, Sarah M. ;
Warren, Gordon L. ;
Southern, W. Michael ;
Nichenko, Anna S. ;
Qualls, Anita E. ;
Corona, Benjamin T. ;
Call, Jarrod A. .
BMC MUSCULOSKELETAL DISORDERS, 2018, 19
[62]  
Griffin M, 2020, TISSUE ENG PART B-RE, V26, P272, DOI [10.1089/ten.teb.2019.0224, 10.1089/ten.TEB.2019.0224]
[63]   A definition of bioinks and their distinction from biomaterial inks [J].
Groll, J. ;
Burdick, J. A. ;
Cho, D-W ;
Derby, B. ;
Gelinsky, M. ;
Heilshorn, S. C. ;
Juengst, T. ;
Malda, J. ;
Mironov, V. A. ;
Nakayama, K. ;
Ovsianikov, A. ;
Sun, W. ;
Takeuchi, S. ;
Yoo, J. J. ;
Woodfield, T. B. F. .
BIOFABRICATION, 2019, 11 (01)
[64]   High-throughput laser printing of cells and biomaterials for tissue engineering [J].
Guillemot, F. ;
Souquet, A. ;
Catros, S. ;
Guillotin, B. ;
Lopez, J. ;
Faucon, M. ;
Pippenger, B. ;
Bareille, R. ;
Remy, M. ;
Bellance, S. ;
Chabassier, P. ;
Fricain, J. C. ;
Amedee, J. .
ACTA BIOMATERIALIA, 2010, 6 (07) :2494-2500
[65]   Laser assisted bioprinting of engineered tissue with high cell density and microscale organization [J].
Guillotin, Bertrand ;
Souquet, Agnes ;
Catros, Sylvain ;
Duocastella, Marti ;
Pippenger, Benjamin ;
Bellance, Severine ;
Bareille, Reine ;
Remy, Murielle ;
Bordenave, Laurence ;
Amedee, Joelle ;
Guillemot, Fabien .
BIOMATERIALS, 2010, 31 (28) :7250-7256
[66]   Therapeutic effect of decellularized extracellular matrix-based hydrogel for radiation esophagitis by 3D printed esophageal stent [J].
Ha, Dong-Heon ;
Chae, Suhun ;
Lee, Jae Yeon ;
Kim, Jae Yun ;
Yoon, Jungbin ;
Sen, Tugce ;
Lee, Sung-Woo ;
Kim, Hak Jae ;
Cho, Jae Ho ;
Cho, Dong-Woo .
BIOMATERIALS, 2021, 266
[67]   Biofabrication and Signaling Strategies for Tendon/Ligament Interfacial Tissue Engineering [J].
Heidari, Behzad Shiroud ;
Ruan, Rui ;
De-Juan-Pardo, Elena M. ;
Zheng, Minghao ;
Doyle, Barry .
ACS BIOMATERIALS SCIENCE & ENGINEERING, 2021, 7 (02) :383-399
[68]   Focal Cartilage Defects in the Knee Impair Quality of Life as Much as Severe Osteoarthritis A Comparison of Knee Injury and Osteoarthritis Outcome Score in 4 Patient Categories Scheduled for Knee Surgery [J].
Heir, Stig ;
Nerhus, Tor K. ;
Rotterud, Jan H. ;
Loken, Sverre ;
Ekeland, Arne ;
Engebretsen, Lars ;
Aroen, Asbjorn .
AMERICAN JOURNAL OF SPORTS MEDICINE, 2010, 38 (02) :231-237
[69]   Three-dimensional printing of complex biological structures by freeform reversible embedding of suspended hydrogels [J].
Hinton, Thomas J. ;
Jallerat, Quentin ;
Palchesko, Rachelle N. ;
Park, Joon Hyung ;
Grodzicki, Martin S. ;
Shue, Hao-Jan ;
Ramadan, Mohamed H. ;
Hudson, Andrew R. ;
Feinberg, Adam W. .
SCIENCE ADVANCES, 2015, 1 (09)
[70]   Bioink properties before, during and after 3D bioprinting [J].
Hoelzl, Katja ;
Lin, Shengmao ;
Tytgat, Liesbeth ;
Van Vlierberghe, Sandra ;
Gu, Linxia ;
Ovsianikov, Aleksandr .
BIOFABRICATION, 2016, 8 (03)