Bionic tracheal tissue regeneration using a ring-shaped scaffold comprised of decellularized cartilaginous matrix and silk fibroin

被引:30
|
作者
Gao, Erji [1 ]
Li, Gao [3 ]
Cao, Runfeng [1 ,5 ]
Xia, Huitang [2 ]
Xu, Yong [1 ]
Jiang, Gening [1 ]
Xiao, Kaiyan [2 ]
Chen, Jie [2 ]
Chen, Ru [4 ]
Duan, Liang [1 ]
机构
[1] Tongji Univ, Shanghai Pulm Hosp, Sch Med, Dept Thorac Surg, Shanghai, Peoples R China
[2] Shanghai Jiao Tong Univ, Shanghai Peoples Hosp 9, Dept Anesthesiol, Shanghai Key Lab Tissue Engn,Sch Med, Shanghai, Peoples R China
[3] Hainan Med Univ, Dept Thorac Surg, Hainan Gen Hosp, Hainan Affiliated Hosp, Haikou, Hainan, Peoples R China
[4] Hainan Med Univ, Dept Breast, Hainan Gen Hosp, Hainan Affiliated Hosp, Haikou, Hainan, Peoples R China
[5] Shanghai Jiao Tong Univ, Shanghai Childrens Hosp, Dept Cardiothorac Surg, Shanghai, Peoples R China
基金
中国国家自然科学基金; 海南省自然科学基金; 上海市自然科学基金;
关键词
Cartilaginous ring; Bionic trachea; Decellularized cartilaginous matrix; Silk fibroin; Bone marrow stem cells; STROMAL CELLS; CROSS-LINKING; CHONDROGENIC DIFFERENTIATION; ENGINEERED TRACHEA; STEM-CELLS; CHONDROCYTES; PROLIFERATION;
D O I
10.1016/j.compositesb.2021.109470
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Reconstruction of full-circumferential segmental tracheal defect remains an international dilemma and the key challenge is the lack of a bionic tracheal substitute, with a specific configuration of cartilaginous rings inter-spersed with vascularized fibrous tissue (CRVFT). We previously demonstrated the formation of a bionic tracheal substitute with CRVFT in-vivo. However, it is still desirable to develop a scaffold with proper mechanical strength and chondroinductive activity to promote in-vivo cartilage formation, which could circumvent the painstaking procedure of in-vitro cultivation. Herein, we prepared a ring-shaped porous silk fibroin (SF)-rein-forced decellularized cartilaginous matrix (DCM) (DCM/SF) scaffold, which displayed suitable pore size (206.7 +/- 12.5 mu m) and porosity (92.7 +/- 2.5%) and was biocompatible for cell colonization. The addition of SF considerable enhanced anti-contraction capacity and Young's modulus, while diminishing water absorption and degradation rate of the DCM/SF scaffold. Further, the DCM/SF scaffold obviously promoted chondrogenesis of the embedded bone marrow stem cells (BMSCs), compared to DCM or SF scaffold alone. In addition, a cartilaginous ring was formed using the DCM/SF scaffold, which was repopulated with BMSCs after subcutaneous implantation in nude mouse. Moreover, a bionic tracheal tissue with remarkable CRVFT was achieved via the interrupted stacking of BMSC-DCM/SF constructs on a stent, before subcutaneous implantation into a rabbit for 4 weeks. The bionic trachea was fully revascularized and displayed comparable biochemical compositions and mechanical strength resembling to those of normal trachea. This study introduces a reliable new approach for bionic tracheal tissue regeneration and significantly advances the ongoing repair of segmental tracheal defect.
引用
收藏
页数:13
相关论文
共 9 条
  • [1] Bionic tracheal tissue regeneration using a ring-shaped scaffold comprised of decellularized cartilaginous matrix and silk fibroin
    Gao, Erji
    Li, Gao
    Cao, Runfeng
    Xia, Huitang
    Xu, Yong
    Jiang, Gening
    Xiao, Kaiyan
    Chen, Jie
    Chen, Ru
    Duan, Liang
    Composites Part B: Engineering, 2022, 229
  • [2] Construction of multifunctional tracheal substitute based on silk fibroin methacryloyl and hyaluronic acid methacryloyl with decellularized cartilaginous matrix for tracheal defect repair
    Shan, Yibo
    Zhu, Jianwei
    Lu, Yi
    Shen, Zhiming
    Pan, Shu
    Chen, Hao
    Chen, Wenxuan
    Shi, Hongcan
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2025, 308
  • [3] Pro-angiogenic decellularized vessel matrix gel modified by silk fibroin for rapid vascularization of tissue engineering scaffold
    Fu, Qiang
    Xia, Bin
    Huang, Xiang
    Wang, Fuping
    Chen, Zhongmin
    Chen, Guobao
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2021, 109 (09) : 1701 - 1713
  • [4] The synergistic effects of 3-D porous silk fibroin matrix scaffold properties and hydrodynamic environment in cartilage tissue regeneration
    Wang, Yun
    Bella, Erika
    Lee, Christopher S. D.
    Migliaresi, Claudio
    Pelcastre, Linda
    Schwartz, Zvi
    Boyan, Barbara D.
    Motta, Antonella
    BIOMATERIALS, 2010, 31 (17) : 4672 - 4681
  • [5] A biofunctional-modified silk fibroin scaffold with mimic reconstructed extracellular matrix of decellularized pulp/collagen/fibronectin for bone tissue engineering in alveolar bone resorption
    Sangkert, Supaporn
    Kamonmattayakul, Suttatip
    Chai, Wen Lin
    Meesane, Jirut
    MATERIALS LETTERS, 2016, 166 : 30 - 34
  • [6] Bioprinting of transparent and adhesive corneal patches: Integrating photo-crosslinkable dopamine-conjugated silk fibroin and decellularized cornea matrix for sutureless tissue integration and regeneration
    Ghosh, Anwesha
    Bera, Ashis Kumar
    Adhikari, Jaideep
    Ghosh, Soham
    Singh, Vivek
    Basu, Sayan
    Pati, Falguni
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2025, 306
  • [7] A biofunctional-modified silk fibroin scaffold with mimic reconstructed extracellular matrix of decellularized pulp/collagen/fibronectin for bone tissue engineering in alveolar bone resorption (vol 166, pg 30, 2016)
    Sangkert, Supaporn
    Kamolmatyakul, Suttatip
    Chai, Wen Lin
    Meesane, Jirut
    MATERIALS LETTERS, 2018, 229 : 348 - 348
  • [8] Time-dependent bladder tissue regeneration using bilayer bladder acellular matrix graft-silk fibroin scaffolds in a rat bladder augmentation model
    Zhao, Yang
    He, Yi
    Guo, Jian-hua
    Wu, Jia-sheng
    Zhou, Zhe
    Zhang, Ming
    Li, Wei
    Zhou, Juan
    Xiao, Dong-dong
    Wang, Zhong
    Sun, Kang
    Zhu, Ying-jian
    Lu, Mu-jun
    ACTA BIOMATERIALIA, 2015, 23 : 91 - 102
  • [9] Time-dependent bladder tissue regeneration using bilayer bladder acellular matrix graft-silk fibroin scaffolds in a rat bladder augmentation model (vol 23, pg 91, 2015)
    Zhao, Yang
    He, Yi
    Zhou, Zhe
    Guo, Jian-hua
    Wu, Jia-sheng
    Zhang, Ming
    Li, Wei
    Zhou, Juan
    Xiao, Dong-dong
    Wang, Zhong
    Sun, Kang
    Zhu, Ying-jian
    Lu, Mu-jun
    ACTA BIOMATERIALIA, 2016, 33 : 324 - 324