Overview on 3D Bioprinting Technology: Potentials and Current Challenges

被引:2
|
作者
Yakimova, M. S. [1 ]
Aboushanab, S. A. S. [1 ]
Ivantsova, M. N. [1 ]
Kamel, M. [1 ]
机构
[1] Ural Fed Univ, Inst Chem Engn, 28 Mira St, Ekaterinburg 620002, Russia
关键词
SCAFFOLDS; ARCHITECTURE; FABRICATION;
D O I
10.1063/5.0035377
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Today, around the world, we can see how transplant capabilities have potentially grown. Organ transplants can not only extend the life of patients but also significantly improve their quality of life. Until now, cornea, liver, kidneys, lungs, heart, spleen, thyroid gland, parathyroid gland, and pancreas have already been transplanted to people. However, there is a serious problem of the shortage of donors. Hence, it is necessary to develop novel methods for creating artificial organs. These methods help us to look for the possible ways of developing the best implants. Three-dimensional bioprinting is an additive bioproduction technology that can accelerate translational research. This may allow the production of artificial tissues and organs that completely replace the damaged organ. In addition, this area of research is diversified thanks to the constant modernization of all bioprinters and biomaterials, which play an important role in creating the architecture and functionality of bioprinting design. Here, our research summaries the methods of three-dimensional bioprinting technology and the development of tissue/organ models used in pharmaceutical and toxicological studies.
引用
收藏
页数:6
相关论文
共 50 条
  • [21] Recent advances and challenges in materials for 3D bioprinting
    Mao, Hongli
    Yang, Li
    Zhu, Haofang
    Wu, Lihuang
    Ji, Peihong
    Yang, Jiquan
    Gu, Zhongwei
    PROGRESS IN NATURAL SCIENCE-MATERIALS INTERNATIONAL, 2020, 30 (05) : 618 - 634
  • [22] 3D Bioprinting: An Enabling Technology to Understand Melanoma
    Fernandes, Samantha
    Vyas, Cian
    Lim, Peggy
    Pereira, Ruben F.
    Viros, Amaya
    Bartolo, Paulo
    CANCERS, 2022, 14 (14)
  • [23] 3D Bioprinting Technology and Hydrogels Used in the Process
    Lima, Tainara de P. L.
    Canelas, Caio Augusto d. A.
    Concha, Viktor O. C.
    Costa, Fernando A. M. da
    Passos, Marcele F.
    JOURNAL OF FUNCTIONAL BIOMATERIALS, 2022, 13 (04)
  • [24] Advances in 3D bioprinting technology for liver regeneration
    Li, Changcan
    Jiang, Zhuoran
    Yang, Huayu
    HEPATOBILIARY SURGERY AND NUTRITION, 2022, 11 (06) : 917 - 919
  • [25] Managing Collaborative Strategy in 3D Bioprinting Technology
    Kim, Keun Hwan
    Shim, We
    So, Dae Sup
    Jun, Seung Pyo
    2018 PORTLAND INTERNATIONAL CONFERENCE ON MANAGEMENT OF ENGINEERING AND TECHNOLOGY (PICMET '18): MANAGING TECHNOLOGICAL ENTREPRENEURSHIP: THE ENGINE FOR ECONOMIC GROWTH, 2018,
  • [26] Progress in 3D Bioprinting Technology for Osteochondral Regeneration
    Lafuente-Merchan, Markel
    Ruiz-Alonso, Sandra
    Garcia-Villen, Fatima
    Gallego, Idoia
    Galvez-Martin, Patricia
    Saenz-del-Burgo, Laura
    Pedraz, Jose Luis
    PHARMACEUTICS, 2022, 14 (08)
  • [27] 3D Bioprinting Technology and its Potential for Orthopedics
    Zamborsky, R.
    Kokavec, M.
    Danisovic, L.
    TISSUE ENGINEERING PART A, 2016, 22 : S69 - S70
  • [28] 3D bioprinting technology for regenerative medicine applications
    Sundaramurthi, Dhakshinamoorthy
    Rauf, Sakandar
    Hauser, Charlotte A. E.
    INTERNATIONAL JOURNAL OF BIOPRINTING, 2016, 2 (02) : 9 - 26
  • [29] 3D bioprinting and the current applications in tissue engineering
    Huang, Ying
    Zhang, Xiao-Fei
    Gao, Guifang
    Yonezawa, Tomo
    Cui, Xiaofeng
    BIOTECHNOLOGY JOURNAL, 2017, 12 (08)
  • [30] Current Progress in 3D Bioprinting of Tissue Analogs
    Zhang, Shiqing
    Wang, Haibin
    SLAS TECHNOLOGY, 2019, 24 (01): : 70 - 78