再生(生物学)
自愈水凝胶
子宫内膜
间质细胞
化学
3D生物打印
生物相容性材料
体内
生物医学工程
细胞生物学
生物物理学
材料科学
组织工程
癌症研究
医学
高分子化学
生物
内科学
生物技术
作者
Ziyuan Fang,Cong Lu,Wenjun Du,Xue Wang,Huiyi Yang,Miaojie Shi,Tingting Liu,Yajie Xie,Shufang Wang,Xiangbo Xu,Haihang Li,Hanbi Wang,Yudong Zheng
标识
DOI:10.1016/j.ijbiomac.2023.123943
摘要
The disadvantages of mainstream therapies for endometrial injury are difficult to resolve, herein, we suggest an omnibearing improvement strategy by introducing an injectable multifunctional self-assembled dual-crosslinked sodium alginate/recombinant collagen hydrogel. The hydrogel possessed a reversible and dynamic double network based on dynamic covalent bonds and ionic interactions, which also contributed to excellent capability in viscosity and injectability. Moreover, it was also biodegradable with a suitable speed, giving off active ingredients during the degradation process and eventually disappearing completely. In vitro tests exhibited that the hydrogel was biocompatible and able to enhance endometrial stromal cells viability. These features synergistically promoted cell multiplication and maintenance of endometrial hormone homeostasis, which accelerated endometrial matrix regeneration and structural reconstruction after severe injury in vivo. Furthermore, we explored the interrelation between the hydrogel characteristics, endometrial structure, and postoperative uterine recovery, which would benefit deep research on regulation of uterine repair mechanism and optimization of hydrogel materials. The injectable hydrogel could achieve favourable therapeutic efficacy without the need of exogenous hormones or cells, which would be of clinical value in endometrium regeneration.
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