TY - JOUR
T1 - Dynamic regulable sodium alginate/poly(γ-glutamic acid) hybrid hydrogels promoted chondrogenic differentiation of stem cells
AU - Wang, Penghui
AU - Pu, Yajie
AU - Ren, Yanhan
AU - Yang, Rong
AU - Zhang, Wenjie
AU - Tan, Xiaoyan
AU - Xue, Wenliang
AU - Liu, Shuai
AU - Li, Shuang
AU - Chi, Bo
N1 - Publisher Copyright:
© 2021 Elsevier Ltd
PY - 2022/1/1
Y1 - 2022/1/1
N2 - Traditional hydrogels often fail to match the dynamic interactions between mechanical and cellular behaviors exhibited by the natural cartilage extracellular matrix. In this research, we constructed a novel hybrid hydrogels system based on sodium alginate and polyglutamic acid. By controlling the grafting rate and concentration of polymer, the gelation time and mechanical strength can be adjusted between range of 8–28 s and 60–144 kPa. By adding microcrystalline cellulose into the system, so that the degradation time was prolonged (125%) and the swelling rate was reduced (470%). Additionally, the presence of hydrazone bonds gives the system some dynamic response characteristics, and the hydrogel exhibits excellent self healing and injectable ability. It was found that the system had positive cytocompatibility (80%), which accelerated regulatory gene expression in cartilage tissue. In conclusion, this injectable hydrogel with self-healing and customizable mechanical strength will have broad application prospects in future biomedical engineering.
AB - Traditional hydrogels often fail to match the dynamic interactions between mechanical and cellular behaviors exhibited by the natural cartilage extracellular matrix. In this research, we constructed a novel hybrid hydrogels system based on sodium alginate and polyglutamic acid. By controlling the grafting rate and concentration of polymer, the gelation time and mechanical strength can be adjusted between range of 8–28 s and 60–144 kPa. By adding microcrystalline cellulose into the system, so that the degradation time was prolonged (125%) and the swelling rate was reduced (470%). Additionally, the presence of hydrazone bonds gives the system some dynamic response characteristics, and the hydrogel exhibits excellent self healing and injectable ability. It was found that the system had positive cytocompatibility (80%), which accelerated regulatory gene expression in cartilage tissue. In conclusion, this injectable hydrogel with self-healing and customizable mechanical strength will have broad application prospects in future biomedical engineering.
KW - Biomimetic extracellular matrix
KW - Cartilage tissue engineering
KW - Dynamic hydrogel
KW - Mechanical regulation
KW - Stem cell
UR - http://www.scopus.com/inward/record.url?scp=85115889893&partnerID=8YFLogxK
U2 - 10.1016/j.carbpol.2021.118692
DO - 10.1016/j.carbpol.2021.118692
M3 - 文章
C2 - 34742419
AN - SCOPUS:85115889893
SN - 0144-8617
VL - 275
JO - Carbohydrate Polymers
JF - Carbohydrate Polymers
M1 - 118692
ER -