TY - JOUR
T1 - Multifunctional Adhesive Hydrogels
T2 - From Design to Biomedical Applications
AU - Tang, Shaoxin
AU - Feng, Keru
AU - Yang, Rui
AU - Cheng, Yang
AU - Chen, Meiyue
AU - Zhang, Hui
AU - Shi, Nianyuan
AU - Wei, Zhao
AU - Ren, Hui
AU - Ma, Yufei
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2025/1/14
Y1 - 2025/1/14
N2 - Adhesive hydrogels characterized by structural properties similar to the extracellular matrix, excellent biocompatibility, controlled degradation, and tunable mechanical properties have demonstrated significant potential in biomedical applications, including tissue engineering, biosensors, and drug delivery systems. These hydrogels exhibit remarkable adhesion to target substrates and can be rationally engineered to meet specific requirements. In recent decades, adhesive hydrogels have experienced significant advancements driven by the introduction of numerous multifunctional design strategies. This review initially summarizes the chemical bond-based design strategies for tissue adhesion, encompassing static covalent bonds, dynamic covalent bonds, and non-covalent interactions. Subsequently, the multiple functionalities imparted by these diverse design strategies, including highly stretchable and tough performances, responsiveness to microenvironments, anti-freezing/heating properties, conductivity, antibacterial activity, and hemostatic properties are discussed. In addition, recent advances in the biomedical applications of adhesive hydrogels, focusing on tissue repair, drug delivery, medical devices, and wearable sensors are reviewed. Finally, the current challenges are highlighted and future trends in this rapidly evolving field are discussed.
AB - Adhesive hydrogels characterized by structural properties similar to the extracellular matrix, excellent biocompatibility, controlled degradation, and tunable mechanical properties have demonstrated significant potential in biomedical applications, including tissue engineering, biosensors, and drug delivery systems. These hydrogels exhibit remarkable adhesion to target substrates and can be rationally engineered to meet specific requirements. In recent decades, adhesive hydrogels have experienced significant advancements driven by the introduction of numerous multifunctional design strategies. This review initially summarizes the chemical bond-based design strategies for tissue adhesion, encompassing static covalent bonds, dynamic covalent bonds, and non-covalent interactions. Subsequently, the multiple functionalities imparted by these diverse design strategies, including highly stretchable and tough performances, responsiveness to microenvironments, anti-freezing/heating properties, conductivity, antibacterial activity, and hemostatic properties are discussed. In addition, recent advances in the biomedical applications of adhesive hydrogels, focusing on tissue repair, drug delivery, medical devices, and wearable sensors are reviewed. Finally, the current challenges are highlighted and future trends in this rapidly evolving field are discussed.
KW - adhesion mechanism
KW - adhesive hydrogel
KW - biomedical application
KW - multifunctional hydrogel
KW - tissue adhesion
UR - https://www.scopus.com/pages/publications/85210369492
U2 - 10.1002/adhm.202403734
DO - 10.1002/adhm.202403734
M3 - 文献综述
C2 - 39604246
AN - SCOPUS:85210369492
SN - 2192-2640
VL - 14
JO - Advanced Healthcare Materials
JF - Advanced Healthcare Materials
IS - 2
M1 - 2403734
ER -