Bioprinted anisotropic scaffolds with fast stress relaxation bioink for engineering 3D skeletal muscle and repairing volumetric muscle loss *

被引:48
|
作者
Li, Ting [1 ]
Hou, Juedong [1 ]
Wang, Ling [3 ]
Zeng, Guanjie [1 ]
Wang, Zihan [1 ]
Yu, Liu [1 ]
Yang, Qiao [3 ]
Yin, Junfeiyang [1 ]
Long, Meng [1 ]
Chen, Lizhi [1 ]
Chen, Siyuan [4 ]
Zhang, Hongwu [1 ]
Li, Yanbing [1 ]
Wu, Yaobin [1 ]
Huang, Wenhua [1 ,2 ]
机构
[1] Southern Med Univ, Guangdong Engn Res Ctr Translat Med Printing Appli, Sch Basic Med Sci, Dept Human Anat,Guangdong Prov Key Lab Med Biomech, Guangzhou, Peoples R China
[2] Southern Med Univ, Affiliated Hosp Southern Med Univ 3, Guangdong Med Innovat Platform Translat 3D Printin, Guangzhou, Peoples R China
[3] Southern Med Univ, Biomat Res Ctr, Sch Biomed Engn, Guangdong 510515, Peoples R China
[4] Southern Med Univ, Sch Clin Med 1, Guangzhou 510515, Peoples R China
基金
中国国家自然科学基金;
关键词
Viscoelasticity; IPN hydrogel; 3D printing gel-in-gel; 3D aligned biomimetic scaffold; Volumetric muscle loss; COMPOSITE SCAFFOLDS; IN-VITRO; TISSUE; HYDROGELS; CONSTRUCTS; MODEL; ADHESION; COLLAGEN; SYSTEM;
D O I
10.1016/j.actbio.2022.08.037
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Viscoelastic hydrogels can enhance 3D cell migration and proliferation due to the faster stress relaxation promoting the arrangement of the cellular microenvironment. However, most synthetic photocurable hydrogels used as bioink materials for 3D bioprinting are typically elastic. Developing a photocurable hydrogel bioink with fast stress relaxation would be beneficial for 3D bioprinting engineered 3D skeletal muscles in vitro and repairing volumetric muscle loss (VML) in vivo ; however, this remains an ongoing challenge. This study aims to develop an interpenetrating network (IPN) hydrogel with tunable stress relaxation using a combination of gelatin methacryloyl (GelMA) and fibrinogen. These IPN hydrogels with faster stress relaxation showed higher 3D cellular proliferation and better differentiation. A 3D anisotropic biomimetic scaffold was further developed via a printing gel-in-gel strategy, where the extrusion printing of cell-laden viscoelastic FG hydrogel within Carbopol supported gel. The 3D engineered skeletal muscle tissue was further developed via 3D aligned myotube formation and contraction. Furthermore, the cellfree 3D printed scaffold was implanted into a rat VML model, and both the short and long-term repair results demonstrated its ability to enhance functional skeletal muscle tissue regeneration. These data suggest that such viscoelastic hydrogel provided a suitable 3D microenvironment for enhancing 3D myogenic differentiation, and the 3D bioprinted anisotropic structure provided a 3D macroenvironment for myotube organization, which indicated the potential in skeletal muscle engineering and VML regeneration.
引用
收藏
页码:21 / 36
页数:16
相关论文
共 50 条
  • [1] Engineering 3D skeletal muscle primed for neuromuscular regeneration following volumetric muscle loss
    Gilbert-Honick, Jordana
    Iyer, Shama R.
    Somers, Sarah M.
    Takasuka, Hannah
    Lovering, Richard M.
    Wagner, Kathryn R.
    Mao, Hai-Quan
    Grayson, Warren L.
    BIOMATERIALS, 2020, 255
  • [2] Development Of Decellularized ECM- based 3D Bioprinted Muscle Constructs With Dual Growth Factors Delivery For Repairing Volumetric Muscle Loss Injury
    Ju, Y.
    Poerio, A.
    Lee, H.
    Alwan, A.
    Lee, S.
    Atala, A.
    Yoo, J.
    TISSUE ENGINEERING PART A, 2022, 28 : 184 - 185
  • [3] 3d Printed Composite Skeletal Muscle Fascicles For The Treatment Of Volumetric Muscle Loss
    Quint, J. P.
    Samandari, M.
    Tamayol, A.
    TISSUE ENGINEERING PART A, 2022, 28 : 88 - 89
  • [4] 3D Bioprinting of Functional Skeletal Muscle Tissue for Volumetric Muscle Tissue Loss
    Kim, J.
    Ko, I.
    Seol, Y.
    Atala, A.
    Yoo, J. J.
    Lee, S.
    TISSUE ENGINEERING PART A, 2016, 22 : S5 - S5
  • [5] A 3D cell printed muscle construct with tissue-derived bioink for the treatment of volumetric muscle loss
    Choi, Yeong-Jin
    Jun, Young-Joon
    Kim, Dong Yeon
    Yi, Hee-Gyeong
    Chae, Su-Hun
    Kang, Junsu
    Lee, Juyong
    Gao, Ge
    Kong, Jeong-Sik
    Jang, Jinah
    Chung, Wan Kyun
    Rhie, Jong-Won
    Cho, Dong-Woo
    BIOMATERIALS, 2019, 206 : 160 - 169
  • [6] 3D Bioprinted Human Skeletal Muscle Constructs for Muscle Function Restoration
    Kim, Ji Hyun
    Seol, Young-Joon
    Ko, In Kap
    Kang, Hyun-Wook
    Lee, Young Koo
    Yoo, James J.
    Atala, Anthony
    Lee, Sang Jin
    SCIENTIFIC REPORTS, 2018, 8
  • [7] 3D Bioprinted Human Skeletal Muscle Constructs for Muscle Function Restoration
    Ji Hyun Kim
    Young-Joon Seol
    In Kap Ko
    Hyun-Wook Kang
    Young Koo Lee
    James J. Yoo
    Anthony Atala
    Sang Jin Lee
    Scientific Reports, 8
  • [8] Biomimetic scaffolds for regeneration of volumetric muscle loss in skeletal muscle injuries
    Grasman, Jonathan M.
    Zayas, Michelle J.
    Page, Raymond L.
    Pins, George D.
    ACTA BIOMATERIALIA, 2015, 25 : 2 - 15
  • [9] Effects of Bioactive Molecules on Skeletal Muscle Development In 3d Bioprinted Muscle Constructs
    vanSchaayk, Margaret
    Kim, Ji Hyun
    Yoo, James J.
    Atala, Anthony
    Lee, Sang Jin
    TISSUE ENGINEERING PART A, 2017, 23 : S159 - S159
  • [10] 3D in vitro models of skeletal muscle: myopshere, myobundle and bioprinted muscle construct
    Frederic Dessauge
    Cindy Schleder
    Marie-Hélène Perruchot
    Karl Rouger
    Veterinary Research, 52