Innovative bioinks for 3D bioprinting: Exploring technological potential and regulatory challenges

被引:1
作者
Mathur, Vidhi [1 ]
Agarwal, Prachi [1 ]
Kasturi, Meghana [2 ]
Srinivasan, Varadharajan [3 ]
Seetharam, Raviraja N. [1 ]
Vasanthan, Kirthanashri S. [1 ]
机构
[1] Manipal Acad Higher Educ, Manipal Ctr Biotherapeut Res, Manipal 576104, Karnataka, India
[2] Univ Michigan, Dept Mech Engn, Dearborn, MI USA
[3] Manipal Acad Higher Educ, Manipal Inst Technol, Dept Civil Engn, Manipal 576104, Karnataka, India
来源
JOURNAL OF TISSUE ENGINEERING | 2025年 / 16卷
关键词
3D bioprinting; bioinks; crosslinking; biomedical application; MESENCHYMAL STEM-CELLS; EXTRACELLULAR-MATRIX; CROSS-LINKING; MECHANICAL-PROPERTIES; IN-VITRO; COLLAGEN; DECELLULARIZATION; DIFFERENTIATION; SCAFFOLDS; HYDROGELS;
D O I
10.1177/20417314241308022
中图分类号
Q813 [细胞工程];
学科分类号
摘要
The field of three dimensional (3D) bioprinting has witnessed significant advancements, with bioinks playing a crucial role in enabling the fabrication of complex tissue constructs. This review explores the innovative bioinks that are currently shaping the future of 3D bioprinting, focusing on their composition, functionality, and potential for tissue engineering, drug delivery, and regenerative medicine. The development of bioinks, incorporating natural and synthetic materials, offers unprecedented opportunities for personalized medicine. However, the rapid technological progress raises regulatory challenges regarding safety, standardization, and long-term biocompatibility. This paper addresses these challenges, examining the current regulatory frameworks and the need for updated guidelines to ensure patient safety and product efficacy. By highlighting both the technological potential and regulatory hurdles, this review offers a comprehensive overview of the future landscape of bioinks in bioprinting, emphasizing the necessity for cross-disciplinary collaboration between scientists, clinicians, and regulatory bodies to achieve successful clinical applications.
引用
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页数:31
相关论文
共 174 条
[1]  
Abelardo E., 2017, 3D bioprinting for reconstructive surgery: techniques and applications, P137
[2]   Precise stacking of decellularized extracellular matrix based 3D cell-laden constructs by a 3D cell printing system equipped with heating modules [J].
Ahn, Geunseon ;
Min, Kyung-Hyun ;
Kim, Changhwan ;
Lee, Jeong-Seok ;
Kang, Donggu ;
Won, Joo-Yun ;
Cho, Dong-Woo ;
Kim, Jun-Young ;
Jin, Songwan ;
Yun, Won-Soo ;
Shim, Jin-Hyung .
SCIENTIFIC REPORTS, 2017, 7
[3]  
Allevi, Follow this guide for cell mixing and bioink loading
[4]  
Amir Hossein AkbariZahmati., 2017, Internal Medicine and Medical Investigation Journal, V2, P76, DOI 10.24200/imminv.v2i3.63
[5]  
[Anonymous], Engineering considerations in the design of tissue specific bioink for 3D bioprinting applications-Biomaterials Science, DOI [10.1039/D4BM01192A, DOI 10.1039/D4BM01192A]
[6]  
Antebi B, 2015, TISSUE ENG PART C-ME, V21, P171, DOI [10.1089/ten.tec.2014.0092, 10.1089/ten.TEC.2014.0092]
[7]   Bioinks and bioprinting technologies to make heterogeneous and biomimetic tissue constructs [J].
Ashammakhi, N. ;
Ahadian, S. ;
Xu, C. ;
Montazerian, H. ;
Ko, H. ;
Nasiri, R. ;
Barros, N. ;
Khademhosseini, A. .
MATERIALS TODAY BIO, 2019, 1
[8]   Nanoengineered Granular Hydrogel Bioinks with Preserved Interconnected Microporosity for Extrusion Bioprinting [J].
Ataie, Zaman ;
Kheirabadi, Sina ;
Zhang, Jenna Wanjing ;
Kedzierski, Alexander ;
Petrosky, Carter ;
Jiang, Rhea ;
Vollberg, Christian ;
Sheikhi, Amir .
SMALL, 2022, 18 (37)
[9]   Nanofiber/hydrogel composite scaffolds based on alginate sulfate and extracellular matrix for cartilage tissue engineering applications [J].
Azarsa, Sina ;
Pezeshki-Modaress, Mohamad ;
Yazdian, Fatemeh ;
Bagher, Zohreh ;
Chahsetareh, Hadi ;
Simorgh, Sara ;
Heidari, Maryam Kavousi ;
Davachi, Seyed Mohammad .
PROCESS BIOCHEMISTRY, 2024, 136 :60-71
[10]   3D bioprinting of corneal models: A review of the current state and future outlook [J].
Balters, Leon ;
Reichl, Stephan .
JOURNAL OF TISSUE ENGINEERING, 2023, 14