3D printing of high-strength photo-crosslinking flaxseed gum bioink for cartilage regeneration

被引:1
|
作者
Shu, Kegang [1 ,2 ]
Huang, Zuquan [1 ,2 ,3 ]
Pei, Xiaomin [1 ,2 ,3 ]
Yew, Pek Yin Michelle [4 ,5 ]
Wei, Shanshan [6 ]
Yang, Yuan [1 ,2 ]
Lan, Ying [1 ,2 ]
Kai, Dan [4 ,7 ,8 ]
Zheng, Li [1 ,2 ,9 ]
Zhao, Jinmin [1 ,2 ]
机构
[1] Guangxi Med Univ, Affiliated Hosp 1, Guangxi Engn Ctr Biomed Mat Tissue & Organ Regener, Nanning 530021, Guangxi, Peoples R China
[2] Guangxi Med Univ, Affiliated Hosp 1, Collaborat Innovat Ctr Regenerat Med & Med BioReso, Nanning 530021, Guangxi, Peoples R China
[3] Guangxi Med Univ, Life Sci Inst, Nanning 530021, Guangxi, Peoples R China
[4] ASTAR, Inst Mat Res & Engn IMRE, 2 Fusionopolis Way,08-03 Innovis, Singapore 138634, Singapore
[5] Natl Univ Singapore, Coll Design & Engn, Dept Biomed Engn, Singapore 117583, Singapore
[6] Guangxi Med Univ, Med Imaging Dept, Canc Hosp, Nanning 530021, Peoples R China
[7] ASTAR, Inst Sustainabil Chem Energy & Environm ISCE2, 2 Fusionopolis Way,08-03 Innovis, Singapore 138634, Singapore
[8] Nanyang Technol Univ, Sch Chem Chem Engn & Biotechnol, 21 Nanyang Link, Singapore 637371, Singapore
[9] Guangxi Med Univ, Dept Orthoped, Guangxi Key Lab Regenerat Med, Affiliated Hosp 1, Nanning 530021, Peoples R China
关键词
3D bioprinting; Natural hydrogels; Mechanical reinforcement; Tissue engineering; Chondrogenesis; COLLAGEN SCAFFOLDS; HYALURONIC-ACID; TISSUE; HYDROGELS; GELATIN; POLYSACCHARIDES; RELEASE; SYSTEM;
D O I
10.1016/j.compositesb.2023.110864
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Three-dimensional (3D) bioprinting provides a new possibility for personal customization of cartilage tissues. Although biocompatible, most natural biopolymer inks have poor mechanical strength to bear repeated extrusion, incomparable with load-bearing cartilage. By utilizing a heteropolysaccharide called flaxseed gum (FG), a strong photo-crosslinked methacrylated FG (FGMA) bioink was synthetized and integrated with stem cells for cartilage defect therapy. As a hybrid bioink, FGMA has favorable 3D printability and shown to exhibit high mechanical strength and superior fatigue resistant ability. 4% FGMA2 (MA substitution = 8.1%) has the modulus of about 41 times of GelMA and could maintain its structure integrity under 60% deformation after 2000 cycles. FGMA2 has a degradation period of about 66 days, similar to that of GelMA. In vitro study shows that FGMA2 has excellent biocompatibility with stem cells and chondrogenic potential, both beneficial to cartilage regeneration in the cartilage lesion model. More importantly, in vivo study demonstrated that the regenerated neo-cartilage tissue by FGMA2 displayed the similar morphology and matchable mechanical strength to the natural cartilage after 8 weeks. In conclusion, FGMA has demonstrated this potential as a high-performance bioink for 3D printing for tissue/organ regeneration.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Development of Printable Natural Cartilage Matrix Bioink for 3D Printing of Irregular Tissue Shape
    Chi Sung Jung
    Byeong Kook Kim
    Junhee Lee
    Byoung-Hyun Min
    Sang-Hyug Park
    [J]. Tissue Engineering and Regenerative Medicine, 2018, 15 : 155 - 162
  • [22] Visible light-mediated photo-crosslinking of sugar beet pectin for 3D bioprinting
    Mubarok, Wildan
    Kotani, Takashi
    Sakai, Shinji
    [J]. TISSUE ENGINEERING PART A, 2023, 29 (13-14)
  • [23] Development of Printable Natural Cartilage Matrix Bioink for 3D Printing of Irregular Tissue Shape
    Jung, Chi Sung
    Kim, Byeong Kook
    Lee, Junhee
    Min, Byoung-Hyun
    Park, Sang-Hyug
    [J]. TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2018, 15 (02) : 155 - 162
  • [24] Recent advances in high-strength and elastic hydrogels for 3D printing in biomedical applications
    Xu, Cancan
    Dai, Guohao
    Hong, Yi
    [J]. ACTA BIOMATERIALIA, 2019, 95 : 50 - 59
  • [25] Integrating 3D Printing with Graphene Nanoplatelets for Improved Cartilage Regeneration
    Winans, Christopher R.
    Castro, Nathan J.
    Zhang, Lijie Grace
    [J]. TISSUE ENGINEERING PART A, 2014, 20 : S140 - S140
  • [26] A cryopreservable cell-laden GelMa-based scaffold fabricated using a 3D printing process supplemented with an in situ photo-crosslinking
    Lee, JaeYoon
    Kim, GeunHyung
    [J]. JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2020, 85 (85) : 249 - 257
  • [27] 3D Bioprinting Using Synovium-Derived MSC-Laden Photo-Cross- Linked ECM Bioink for Cartilage Regeneration
    Sang, Shengbo
    Mao, Xingjia
    Cao, Yanyan
    Liu, Zixian
    Shen, Zhizhong
    Li, Meng
    Jia, Wendan
    Guo, Zijian
    Wang, Zehua
    Xiang, Chuan
    Sun, Lei
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2023, 15 (07) : 8895 - 8913
  • [28] Author Correction: 3D printing of high-strength bioscaffolds for the synergistic treatment of bone cancer
    Hongshi Ma
    Tao Li
    Zhiguang Huan
    Meng Zhang
    Zezheng Yang
    Jinwu Wang
    Jiang Chang
    Chengtie Wu
    [J]. NPG Asia Materials, 2019, 11
  • [29] Fresh and Hardened Properties of 3D High-Strength Printing Concrete and Its Recent Applications
    Fatih Özalp
    Halit Dilşad Yilmaz
    [J]. Iranian Journal of Science and Technology, Transactions of Civil Engineering, 2020, 44 : 319 - 330
  • [30] Photocurable 3D printing high-strength gels for flexible wearable devices and surgical models
    Li, Huijie
    An, Jian
    Bao, Qingbo
    Rong, Youjie
    Fei, Jianhua
    Zhang, Xiaomin
    Huang, Xiaobo
    [J]. POLYMER, 2023, 286