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Engineering of an electrically charged hydrogel implanted into a traumatic brain injury model for stepwise neuronal tissue reconstruction

Authors :
Satoshi Tanikawa
Yuki Ebisu
Tomáš Sedlačík
Shingo Semba
Takayuki Nonoyama
Akira Hirota
Taiga Takahashi
Kazushi Yamaguchi
Masamichi Imajo
Hinako Kato
Takuya Nishimura
Zen-ichi Tanei
Masumi Tsuda
Tomomi Nemoto
Jian Ping Gong
Shinya Tanaka
Publication Year :
2022
Publisher :
Cold Spring Harbor Laboratory, 2022.

Abstract

Neural regeneration is extremely difficult to achieve. In traumatic brain injuries, the loss of brain parenchyma volume hinders neural regeneration. In this study, neuronal tissue engineering was performed by using electrically charged hydrogels composed of cationic and anionic monomers in a 1:1 ratio (C1A1 hydrogel), which served as an effective scaffold for the attachment of neural stem cells (NSCs). In the 3D environment of porous C1A1 hydrogels engineered by the cryogelation technique, NSCs differentiated into neuroglial cells. The C1A1 porous hydrogel was implanted into brain defects in a mouse traumatic damage model. The VEGF-immersed C1A1 porous hydrogel promoted host-derived vascular network formation together with the infiltration of macrophages/microglia and astrocytes into the gel. Furthermore, the stepwise transplantation of GFP-labeled NSCs supported differentiation to glial and neuronal cells. Therefore, this two-step method for neural regeneration may become a new approach for therapeutic brain tissue reconstruction after brain damage in the future.One Sentence SummaryBrain tissue reconstruction using charged hydrogel and stepwise NCS injection

Details

Database :
OpenAIRE
Accession number :
edsair.doi...........276d3cf5f1e91b0e9cc1b1667f032117
Full Text :
https://doi.org/10.1101/2022.02.16.480448