Self-healing hydrogel as an injectable implant: translation in brain diseases

被引:0
作者
Junpeng Xu
Shan-hui Hsu
机构
[1] National Taiwan University,Institute of Polymer Science and Engineering
[2] National Health Research Institutes,Institute of Cellular and System Medicine
来源
Journal of Biomedical Science | / 30卷
关键词
Self-healing hydrogel; Injectable implant; Neural tissue engineering; Translation medicine; Stroke; Neurodegenerative disease; Traumatic brain injury;
D O I
暂无
中图分类号
学科分类号
摘要
Tissue engineering biomaterials are aimed to mimic natural tissue and promote new tissue formation for the treatment of impaired or diseased tissues. Highly porous biomaterial scaffolds are often used to carry cells or drugs to regenerate tissue-like structures. Meanwhile, self-healing hydrogel as a category of smart soft hydrogel with the ability to automatically repair its own structure after damage has been developed for various applications through designs of dynamic crosslinking networks. Due to flexibility, biocompatibility, and ease of functionalization, self-healing hydrogel has great potential in regenerative medicine, especially in restoring the structure and function of impaired neural tissue. Recent researchers have developed self-healing hydrogel as drug/cell carriers or tissue support matrices for targeted injection via minimally invasive surgery, which has become a promising strategy in treating brain diseases. In this review, the development history of self-healing hydrogel for biomedical applications and the design strategies according to different crosslinking (gel formation) mechanisms are summarized. The current therapeutic progress of self-healing hydrogels for brain diseases is described as well, with an emphasis on the potential therapeutic applications validated by in vivo experiments. The most recent aspect as well as the design rationale of self-healing hydrogel for different brain diseases is also addressed.
引用
收藏
相关论文
共 1240 条
[91]  
Tai C-H(2021)A bioinspired mineral-organic composite hydrogel as a self-healable and mechanically robust bone graft for promoting bone regeneration Chem Eng J 413 73-188
[92]  
Chen T-Y(2010)Iron-clad fibers: a metal-based biological strategy for hard flexible coatings Science 328 5296-3054
[93]  
Hsu S-H(2010)Protein- and metal-dependent interactions of a prominent protein in mussel adhesive plaques* J Biol Chem 285 548-122
[94]  
Li Q(2022)Antibacterial adhesive self-healing hydrogels to promote diabetic wound healing Acta Biomater 146 6167-408
[95]  
Shao X(2017)Self-healing silk fibroin-based hydrogel for bone regeneration: dynamic metal-ligand self-assembly approach Adv Func Mater 27 102-634
[96]  
Dai X(2000)Imines, enamines and oximes J Chem Soc Perkin Trans 1 368-1644
[97]  
Guo Q(2019)Smart polymers for cell therapy and precision medicine J Biomed Sci 26 374-1122
[98]  
Yuan B(2020)Design strategies of conductive hydrogel for biomedical applications Molecules 25 14630-392
[99]  
Liu Y(2019)Degradable conductive injectable hydrogels as novel antibacterial, anti-oxidant wound dressings for wound healing Chem Eng J 362 72-337
[100]  
Jiang W(2017)A self-healing cellulose nanocrystal-poly (ethylene glycol) nanocomposite hydrogel via Diels-Alder click reaction ACS Sustain Chem Eng 5 8114-706