Sep 2026· ACS Applied Materials and Interfaces· Vol 18, pp. 52034-52054· 0 citations· 52 references
Medicine
TL;DR
A modular polyacrylamide-co-acrylic acid N-hydroxysuccinimide (PAM-AA-NHS) hydrogel platform offering chemical versatility and mechanical tunability for precision care is reported, with favorable hemocompatibility, cytocompatibility, and significant in vivo wound healing performance.
Abstract
Adapting multifunctional wound dressings to complex physiological environments remains a major clinical challenge. Herein, we report a modular polyacrylamide-co-acrylic acid N-hydroxysuccinimide (PAM-AA-NHS) hydrogel platform offering chemical versatility and mechanical tunability for precision care. To impart specific bio functionalities, adhesive-active functional materials, including tannic acid (TA), oxidized dextran (ODex), and catechol-conjugated chitosan (CHI-C), were individually incorporated into the hydrogel. TA-modified hydrogel demonstrated exceptional freeze-tolerant adhesion, retaining over 50% of its original adhesive strength at -20 °C and enabling effective wound healing under low-temperature conditions. ODex functionalization exhibited potent antibacterial activity (>95% inhibition), suggesting its potential for the management of infection-prone wounds. Furthermore, CHI-C-integrated hydrogel showed enhanced mechanical strength (tensile: 55.64 ± 3.71 kPa; compressive: 525.07 ± 13.80 kPa) and promoted erythrocyte aggregation via electrostatic interactions, achieving effective hemostasis under high-pressure bleeding conditions with blood loss reduced to 41.67 ± 4.11 mg in liver and 70.33 ± 6.60 mg in cardiac injury models. All hydrogel variants displayed favorable hemocompatibility, cytocompatibility, and significant in vivo wound healing performance. Collectively, this study presents a modular hydrogel system with tailored functional characteristics for diverse wound-management requirements, including low-temperature protection, antibacterial protection, and hemorrhage control.
Bioadhesives in surgery are receiving increasing attention because of their ease of handling and desirable ability to promote wound closure; however, their mechanical mismatch with skin tissue and insufficient multifunctionality hinder clinical application. A mechanically compliant, multifunctional bioadhesive hydrogel...
Meng Wu, Yan Shi, Jinrui Li et al.· Acta Biomaterialia· 0 citations
Bacterial infection perturbs the wound microenvironment, thereby profoundly impeding the healing process. Functional hydrogels exhibit unique advantages for treating infected wounds because they possess high drug-loading capacity and well-controlled release performance. Herein, we constructed a dynamic covalent network...
Hai-Tao Zhu, Yu Jiang, Fan Jia et al.· International journal of pha...· 0 citations
Results indicate that the developed CMC-based hydrogels possess suitable physicochemical, biological, and antimicrobial properties for potential wound dressing applications.
Hebatalla E. Kandil, A. Soliman, E. Ali· Cellulose· 0 citations
The wound dressing with good injectability, self‐healing ability, tissue adhesion, and especially antibacterial properties has significant potential in the healthcare field. Here, we developed an injectable hydrogel through the one‐pot radical polymerization of acrylic acid (AA) in the presence of quaternized chitosa...
Lei Wu, Jia-Yu Chi, Ying-Ye Shen et al.· Journal of Applied Polymer S...· 0 citations
A multifunctional self-adhesive hydrogel for integrated hemostatic, antibacterial, and regenerative wound management with a synergistic dual-crosslinked network, acting as a promising strategy for the treatment of infected wounds.
She-Ji Weng, Zhong-Qin Lin, Kai Tan et al.· ACS Biomaterials Science & E...· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.