Magnetoelectric Nanoparticles Incorporated Biomimetic Matrix for Wireless Electrical Stimulation and Nerve Regeneration.
Yusheng ZhangSuping ChenZhanwen XiaoXiaoyin LiuChengheng WuKai WuAmin LiuDan WeiJing SunLiangxue ZhouHong-Song FanPublished in: Advanced healthcare materials (2021)
Electrical stimulation is regarded pivotal to promote repair of nerve injuries, however, failed to get extensive application in vivo due to the challenges in noninvasive electrical loading accompanying with construction of biomimetic cell niche. Herein, a new concept of magneto responsive electric 3D matrix for remote and wireless electrical stimulation is demonstrated. By the preparation of magnetoelectric core/shell structured Fe3 O4 @BaTiO3 NPs-loaded hyaluronan/collagen hydrogels, which recapitulate considerable magneto-electricity and vital features of native neural extracellular matrix, the enhancement of neurogenesis both in cellular level and spinal cord injury in vivo with external pulsed magnetic field applied is proved. The findings pave the way for a novel class of remote controlling and delivering electricity through extracellular niches-mimicked hydrogel network, arising prospects not only in neurogenesis but also in human-computer interaction with higher resolution.
Keyphrases
- spinal cord injury
- extracellular matrix
- tissue engineering
- wound healing
- drug delivery
- spinal cord
- neuropathic pain
- cancer therapy
- endothelial cells
- stem cells
- neural stem cells
- single cell
- peripheral nerve
- hyaluronic acid
- cerebral ischemia
- cell therapy
- drug release
- single molecule
- pluripotent stem cells
- bone marrow
- rare case
- blood brain barrier