TY - JOUR
T1 - Covalently Adaptable Hydrogel Based on Hyaluronic Acid and Poly(γ-glutamic acid) for Potential Load-Bearing Tissue Engineering
AU - Ma, Xuebin
AU - Liu, Xin
AU - Wang, Penghui
AU - Wang, Xiaoxue
AU - Yang, Rong
AU - Liu, Shuai
AU - Ye, Zhiwen
AU - Chi, Bo
N1 - Publisher Copyright:
© 2020 American Chemical Society.
PY - 2020/7/20
Y1 - 2020/7/20
N2 - Reversibly cross-linked adaptable hydrogels show great advantages in tissue engineering. The dynamic adaptable networks can overcome three-dimensional (3D) physical restrictions to enable normal cellular functions without hydrogel degradation. However, because of the dynamic reversibility, adaptable hydrogels typically exhibit weak mechanical properties and rapid erosion behaviors. Herein, we develop a facile strategy to prepare stable adaptable hydrogels using dynamic covalent chemistry, stable covalent chemistry, and the interpenetrating polymeric network (IPN) strategy. The developed IPN HA/γ-PGA adaptable hydrogels have stable structures, good mechanical properties, enzymatic degradability, and injectability. Compression test indicates that although containing 95% water, the IPN HA/γ-PGA adaptable hydrogels can suffer more than 85% compressive strain and show a fast shape recovery capacity and good antifatigue ability. Benefitting from the good cytocompatibility of functionalized HA and γ-PGA and the mild preparation process of IPN HA/γ-PGA adaptable hydrogels, NIH 3T3 cells can tolerate the 3D encapsulation process and show high cell viability. Therefore, owing to their desirable properties, the developed HA/γ-PGA adaptable hydrogels have great potential applications for load-bearing tissue engineering.
AB - Reversibly cross-linked adaptable hydrogels show great advantages in tissue engineering. The dynamic adaptable networks can overcome three-dimensional (3D) physical restrictions to enable normal cellular functions without hydrogel degradation. However, because of the dynamic reversibility, adaptable hydrogels typically exhibit weak mechanical properties and rapid erosion behaviors. Herein, we develop a facile strategy to prepare stable adaptable hydrogels using dynamic covalent chemistry, stable covalent chemistry, and the interpenetrating polymeric network (IPN) strategy. The developed IPN HA/γ-PGA adaptable hydrogels have stable structures, good mechanical properties, enzymatic degradability, and injectability. Compression test indicates that although containing 95% water, the IPN HA/γ-PGA adaptable hydrogels can suffer more than 85% compressive strain and show a fast shape recovery capacity and good antifatigue ability. Benefitting from the good cytocompatibility of functionalized HA and γ-PGA and the mild preparation process of IPN HA/γ-PGA adaptable hydrogels, NIH 3T3 cells can tolerate the 3D encapsulation process and show high cell viability. Therefore, owing to their desirable properties, the developed HA/γ-PGA adaptable hydrogels have great potential applications for load-bearing tissue engineering.
KW - adaptable hydrogel
KW - biomimicry
KW - hyaluronic acid
KW - poly(γ-glutamic acid)
KW - tissue engineering
UR - http://www.scopus.com/inward/record.url?scp=85089269420&partnerID=8YFLogxK
U2 - 10.1021/acsabm.0c00112
DO - 10.1021/acsabm.0c00112
M3 - 文章
C2 - 35025478
AN - SCOPUS:85089269420
SN - 2576-6422
VL - 3
SP - 4036
EP - 4043
JO - ACS Applied Bio Materials
JF - ACS Applied Bio Materials
IS - 7
ER -