Efficacy of 3D printed anatomically equivalent thermoplastic polyurethane guide conduits in promoting the regeneration of critical-sized peripheral nerve defects

被引:3
|
作者
Zennifer, Allen [1 ]
Chellappan, David Raj [2 ]
Chinnaswamy, Prabu [3 ]
Subramanian, Anuradha [1 ]
Sundaramurthi, Dhakshinamoorthy [1 ]
Sethuraman, Swaminathan [1 ]
机构
[1] SASTRA Deemed Univ, Ctr Nanotechnol & Adv Biomat, ABCDE Innovat Ctr, Sch Chem & Biotechnol,Tissue Engn & Addit Mfg TEAM, Thanjavur 613401, Tamil Nadu, India
[2] SASTRA Deemed Univ, Sch Chem & Biotechnol, Cent Anim Facil, Thanjavur 613 401, Tamil Nadu, India
[3] Vet Coll & Res Inst, Dept Vet Pathol, Orathanadu 614625, Tamil Nadu, India
关键词
peripheral nerve injuries; 3D printing; thermoplastic polyurethane; nerve regeneration; reverse engineering; BIODEGRADABLE POLYURETHANE; IN-VITRO; NANOFIBERS; CELLS; BIOCOMPATIBILITY; SCAFFOLDS; GELATIN;
D O I
10.1088/1758-5090/ad5fbe
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Three-dimensional (3D) printing is an emerging tool for creating patient-specific tissue constructs analogous to the native tissue microarchitecture. In this study, anatomically equivalent 3D nerve conduits were developed using thermoplastic polyurethane (TPU) by combining reverse engineering and material extrusion (i.e. fused deposition modeling) technique. Printing parameters were optimized to fabricate nerve-equivalent TPU constructs. The TPU constructs printed with different infill densities supported the adhesion, proliferation, and gene expression of neuronal cells. Subcutaneous implantation of the TPU constructs for three months in rats showed neovascularization with negligible local tissue inflammatory reactions and was classified as a non-irritant biomaterial as per ISO 10993-6. To perform in vivo efficacy studies, nerve conduits equivalent to rat's sciatic nerve were fabricated and bridged in a 10 mm sciatic nerve transection model. After four months of implantation, the sensorimotor function and histological assessments revealed that the 3D printed TPU conduits promoted the regeneration in critical-sized peripheral nerve defects equivalent to autografts. This study proved that TPU-based 3D printed nerve guidance conduits can be created to replicate the complicated features of natural nerves that can promote the regeneration of peripheral nerve defects and also show the potential to be extended to several other tissues for regenerative medicine applications.
引用
收藏
页数:26
相关论文
共 50 条
  • [31] Enhancement of critical-sized bone defect regeneration by magnesium oxide-reinforced 3D scaffold with improved osteogenic and angiogenic properties
    Chen, Bo
    Lin, Zhengjie
    Saiding, Qimanguli
    Huang, Yongcan
    Sun, Yi
    Zhai, Xinyun
    Ning, Ziyu
    Liang, Hai
    Qiao, Wei
    Yu, Bingsheng
    Yeung, W. K. Kelvin
    Shen, Jie
    JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 2023, 135 : 186 - 198
  • [32] The effect of enhanced bone marrow in conjunction with 3D-printed PLA-HA in the repair of critical-sized bone defects in a rabbit model
    Liu, Zhiqing
    Chu, Wenxiang
    Zhang, Linyuan
    Wang, Yueting
    Zhai, Zanjing
    Liu, Fengxiang
    ANNALS OF TRANSLATIONAL MEDICINE, 2021, 9 (14)
  • [33] Reconstructing Critical-Sized Mandibular Defects in a Rabbit Model: Enhancing Angiogenesis and Facilitating Bone Regeneration via a Cell-Loaded 3D-Printed Hydrogel-Ceramic Scaffold Application
    Daneshi, Seyyed Sajad
    Tayebi, Lobat
    Talaei-Khozani, Tahereh
    Tavanafar, Saeid
    Hadaegh, Amir Hossein
    Rasoulianboroujeni, Morteza
    Rastegari, Banafsheh
    Asadi-Yousefabad, Seyedeh-Leili
    Nammian, Pegah
    Zare, Shahrokh
    Mussin, Nadiar M.
    Kaliyev, Asset A.
    Zhelisbayeva, Kulyash R.
    Tanideh, Nader
    Tamadon, Amin
    ACS BIOMATERIALS SCIENCE & ENGINEERING, 2024, 10 (05) : 3316 - 3330
  • [34] Point-of-care treatment of geometrically complex midfacial critical-sized bone defects with 3D-Printed scaffolds and autologous stromal vascular fraction
    Singh, Srujan
    Nyberg, Ethan L.
    O'Sullivan, Aine N.
    Farris, Ashley
    Rindone, Alexandra N.
    Zhang, Nicholas
    Whitehead, Emma C.
    Zhou, Yuxiao
    Mihaly, Eszter
    Achebe, Chukwuebuka C.
    Zbijewski, Wojciech
    Grundy, Will
    Garlick, David
    Jackson, Nicolette D.
    Taguchi, Takashi
    Takawira, Catherine
    Lopez, Joseph
    Lopez, Mandi J.
    Grant, Michael P.
    Grayson, Warren L.
    BIOMATERIALS, 2022, 282
  • [35] Cell-free 3D scaffold with two-stage delivery of miRNA-26a to regenerate critical-sized bone defects
    Xiaojin Zhang
    Yan Li
    Y. Eugene Chen
    Jihua Chen
    Peter X. Ma
    Nature Communications, 7
  • [36] Cell-free 3D scaffold with two-stage delivery of miRNA-26a to regenerate critical-sized bone defects
    Zhang, Xiaojin
    Li, Yan
    Chen, Y. Eugene
    Chen, Jihua
    Ma, Peter X.
    NATURE COMMUNICATIONS, 2016, 7
  • [37] 3D Printed Tricalcium Phosphate Scaffolds and Regional Gene Therapy. a Multidisciplinary Approach to Heal a Critical-Sized Rat Femoral Defect Model
    Alluri, Ram K.
    Song, Xuan
    Bougioukli, Sofia
    Pannell, William
    Vakhshori, Venus
    Sugiyama, Osamu
    Tang, Amy
    Chen, Yong
    Lieberman, Jay R.
    MOLECULAR THERAPY, 2018, 26 (05) : 389 - 390
  • [38] Mesenchymal stem cell seeded, biomimetic 3D printed scaffolds induce complete bridging of femoral critical sized defects
    Szivek, John A.
    Gonzales, David A.
    Wojtanowski, Andrew M.
    Martinez, Michael A.
    Smith, Jordan L.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2019, 107 (02) : 242 - 252
  • [39] 3D-printed dual-ion chronological release functional platform reconstructs neuro-vascularization network for critical-sized bone defect regeneration
    Xia, Yuhao
    Jing, Xirui
    Wu, Xiaopei
    Zhuang, Pengzhen
    Guo, Xiaodong
    Dai, Honglian
    CHEMICAL ENGINEERING JOURNAL, 2023, 465
  • [40] Applying 3D-printed prostheses to reconstruct critical-sized bone defects of tibial diaphysis (> 10 cm) caused by osteomyelitis and aseptic non-union
    Liu, Bingchuan
    Wang, Liwei
    Li, Xingcai
    Chen, Zhuo
    Hou, Guojin
    Zhou, Fang
    Wang, Caimei
    Tian, Yun
    JOURNAL OF ORTHOPAEDIC SURGERY AND RESEARCH, 2024, 19 (01):