Axon-like aligned conductive CNT/GelMA hydrogel fibers combined with electrical stimulation for spinal cord injury recovery

被引:33
作者
Yao, Shenglian [1 ]
Yang, Yongdong [2 ,3 ]
Li, Chenyu [1 ]
Yang, Kaitan [3 ]
Song, Xin [1 ]
Li, Chuanhong [3 ]
Cao, Zheng [2 ]
Zhao, He [2 ,3 ]
Yu, Xing [3 ]
Wang, Xiumei [2 ]
Wang, Lu-Ning [1 ]
机构
[1] Univ Sci & Technol Beijing, Sch Mat Sci & Engn, Beijing 100083, Peoples R China
[2] Tsinghua Univ, Sch Mat Sci & Engn, Key Lab Adv Mat, Minist Educ, Beijing 100084, Peoples R China
[3] Beijing Univ Chinese Med, Dongzhimen Hosp, Dept Gastroenterol, 5 Hai Yun Cang, Beijing, Peoples R China
基金
北京市自然科学基金; 中国国家自然科学基金;
关键词
Conductive hydrogel fibers; CNT/GelMA; Electrical stimulation; NSCs differentiation; Spinal cord injury; DIFFERENTIATION; REPAIR;
D O I
10.1016/j.bioactmat.2024.01.021
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Rehabilitation and regenerative medicine are two promising approaches for spinal cord injury (SCI) recovery, but their combination has been limited. Conductive biomaterials could bridge regenerative scaffolds with electrical stimulation by inducing axon regeneration and supporting physiological electrical signal transmission. Here, we developed aligned conductive hydrogel fibers by incorporating carbon nanotubes (CNTs) into methacrylate acylated gelatin (GelMA) hydrogel via rotating liquid bath electrospinning. The electrospun CNT/GelMA hydrogel fibers mimicked the micro-scale aligned structure, conductivity, and soft mechanical properties of neural axons. For in vitro studies, CNT/GelMA hydrogel fibers supported PC12 cell proliferation and aligned adhesion, which was enhanced by electrical stimulation (ES). Similarly, the combination of aligned CNT/GelMA hydrogel fibers and ES promoted neuronal differentiation and axon-like neurite sprouting in neural stem cells (NSCs). Furthermore, CNT/GelMA hydrogel fibers were transplanted into a T9 transection rat spinal cord injury model for in vivo studies. The results showed that the incorporating CNTs could remain at the injury site with the GelMA fibers biodegraded and improve the conductivity of regenerative tissue. The aligned structure of the hydrogel could induce the neural fibers regeneration, and the ES enhanced the remyelination and axonal regeneration. Behavioral assessments and electrophysiological results suggest that the combination of aligned CNT/GelMA hydrogel fibers and ES could significantly restore motor function in rats. This study demonstrates that conductive aligned CNT/GelMA hydrogel fibers can not only induce neural regeneration as a scaffold but also support ESto promote spinal cord injury recovery. The conductive hydrogel fibers enable merging regenerative medicine and rehabilitation, showing great potential for satisfactory locomotor recovery after SCI.
引用
收藏
页码:534 / 548
页数:15
相关论文
共 49 条
  • [1] Gelatin Methacrylate Hydrogel for Tissue Engineering Applications-A Review on Material Modifications
    Bupphathong, Sasinan
    Quiroz, Carlos
    Huang, Wei
    Chung, Pei-Feng
    Tao, Hsuan-Ya
    Lin, Chih-Hsin
    [J]. PHARMACEUTICALS, 2022, 15 (02)
  • [2] Electrofluidic control of bioactive molecule delivery into soft tissue models based on gelatin methacryloyl hydrogels using threads and surgical sutures
    Cabot, Joan M.
    Daikuara, Luciana Y.
    Yue, Zhilian
    Hayes, Patricia
    Liu, Xiao
    Wallace, Gordon G.
    Paull, Brett
    [J]. SCIENTIFIC REPORTS, 2020, 10 (01)
  • [3] White matter regeneration induced by aligned fibrin nanofiber hydrogel contributes to motor functional recovery in canine T12 spinal cord injury
    Cao, Zheng
    Man, Weitao
    Xiong, Yuhui
    Guo, Yi
    Yang, Shuhui
    Liu, Dongkang
    Zhao, He
    Yang, Yongdong
    Yao, Shenglian
    Li, Chuzhong
    Zhao, Lingyun
    Sun, Xiaodan
    Guo, Hua
    Wang, Guihuai
    Wang, Xiumei
    [J]. REGENERATIVE BIOMATERIALS, 2022, 9
  • [4] Structural alignment guides oriented migration and differentiation of endogenous neural stem cells for neurogenesis in brain injury treatment
    Chai, Yi
    Zhao, He
    Yang, Shuhui
    Gao, Xiaohan
    Cao, Zheng
    Lu, Jiaju
    Sun, Qingling
    Liu, Wei
    Zhang, Zhe
    Yang, Junyi
    Wang, Xuelin
    Chen, Tuoyu
    Kong, Xiangdong
    Mikos, Antonios G.
    Zhang, Xiaohua
    Zhang, Yuqi
    Wang, Xiumei
    [J]. BIOMATERIALS, 2022, 280
  • [5] Bioinspired Hydrogel Electrospun Fibers for Spinal Cord Regeneration
    Chen, Chunmao
    Tang, Jincheng
    Gu, Yong
    Liu, Lili
    Liu, Xingzhi
    Deng, Lianfu
    Martins, Claudia
    Sarmento, Bruno
    Cui, Wenguo
    Chen, Liang
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2019, 29 (04)
  • [6] Wirelessly Powered Electrical-Stimulation Based on Biodegradable 3D Piezoelectric Scaffolds Promotes the Spinal Cord Injury
    Chen, Ping
    Xu, Chao
    Wu, Ping
    Liu, Kun
    Chen, Feixiang
    Chen, Yun
    Dai, Honglian
    Luo, Zhiqiang
    [J]. ACS NANO, 2022, 16 (10) : 16513 - 16528
  • [7] Spinal cord repair: advances in biology and technology
    Courtine, Gregoire
    Sofroniew, Michael V.
    [J]. NATURE MEDICINE, 2019, 25 (06) : 898 - 908
  • [8] Cooperative assembly of a designer peptide and silk fibroin into hybrid nanofiber gels for neural regeneration after spinal cord injury
    Feng, Feng
    Song, Xiyong
    Tan, Zan
    Tu, Yujie
    Xiao, Longyou
    Xie, Pengfei
    Ma, Yahao
    Sun, Xiumin
    Ma, Junwu
    Rong, Limin
    He, Liumin
    [J]. SCIENCE ADVANCES, 2023, 9 (25)
  • [9] Fabrication of a biomimetic spinal cord tissue construct with heterogenous mechanical properties using intrascaffold cell assembly
    Firouzian, Kevin F.
    Song, Yu
    Lin, Feng
    Zhang, Ting
    [J]. BIOTECHNOLOGY AND BIOENGINEERING, 2020, 117 (10) : 3094 - 3107
  • [10] High resolution and dynamic imaging of biopersistence and bioreactivity of extra and intracellular MWNTs exposed to microglial cells
    Goode, Angela E.
    Carter, Daniel A. Gonzalez
    Motskin, Michael
    Pienaar, Ilse S.
    Chen, Shu
    Hu, Sheng
    Ruenraroengsak, Pakatip
    Ryan, Mary P.
    Shaffer, Milo S. P.
    Dexter, David T.
    Porter, Alexandra E.
    [J]. BIOMATERIALS, 2015, 70 : 57 - 70