TY - JOUR
T1 - Self-Evolving Hydrogel Dressing Temporally Accelerates Infected Diabetic Wound Healing
AU - Liu, Chenyang
AU - Zhao, Huichen
AU - Qian, Junmin
AU - Xiao, Mofan
AU - Wang, Jinlei
AU - Wang, Yaping
AU - Li, Xinyu
AU - Han, Bei
AU - Bai, Zhuanli
AU - Xu, Weijun
AU - Suo, Aili
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Diabetic wounds usually involve disorganized redox and immune homeostasis and are prone to bacterial infection, often leading to delayed healing and worse outcomes. However, existing therapeutic strategies cannot simultaneously achieve potent antibacterial action and temporal microenvironment modulation. Herein, a self-evolving hyaluronan/poly(aspartic acid) hydrogel dressing integrating in situ Ag+-to-Ag nanozyme conversion function and hydrolyzable Fe3N/Fe3O4 nanoheterojunction (nHJ) is presented to meet the intricate requirements of consecutive healing stages. At infectious inflammatory stage, nHJ-based self-oxygenated photodynamic and photothermal effects synergize with Ag+ to combat multidrug-resistant biofilm-forming bacteria. Subsequently, Ag nanozymes with superoxide dismutase/catalase-like activities continuously scavenge reactive oxygen species while generating oxygen, facilitating macrophage M1-to-M2 repolarization and ensuing inflammatory-to-proliferative phase transition. Accumulated ammonia enhances cell proliferation, migration and angiogenesis. The dressing demonstrates exceptional biocompatibility and bioactivity in accelerating Staphylococcus aureus-infected full-thickness cutaneous wound healing in a diabetic rat model, as validated by hemostatic, broad-spectrum antibacterial, antioxidative and immunomodulatory abilities, enhanced oxygenation and cell proliferation, and extensive collagen deposition, vascularization and re-epithelialization. RNA-seq results further reveal the activation of multiple pro-healing signaling axes. Consequently, this platform offers a powerful dynamic strategy of realizing robust antibacterial activity and active temporal niche modulation to guide the healing of infected diabetic wounds.
AB - Diabetic wounds usually involve disorganized redox and immune homeostasis and are prone to bacterial infection, often leading to delayed healing and worse outcomes. However, existing therapeutic strategies cannot simultaneously achieve potent antibacterial action and temporal microenvironment modulation. Herein, a self-evolving hyaluronan/poly(aspartic acid) hydrogel dressing integrating in situ Ag+-to-Ag nanozyme conversion function and hydrolyzable Fe3N/Fe3O4 nanoheterojunction (nHJ) is presented to meet the intricate requirements of consecutive healing stages. At infectious inflammatory stage, nHJ-based self-oxygenated photodynamic and photothermal effects synergize with Ag+ to combat multidrug-resistant biofilm-forming bacteria. Subsequently, Ag nanozymes with superoxide dismutase/catalase-like activities continuously scavenge reactive oxygen species while generating oxygen, facilitating macrophage M1-to-M2 repolarization and ensuing inflammatory-to-proliferative phase transition. Accumulated ammonia enhances cell proliferation, migration and angiogenesis. The dressing demonstrates exceptional biocompatibility and bioactivity in accelerating Staphylococcus aureus-infected full-thickness cutaneous wound healing in a diabetic rat model, as validated by hemostatic, broad-spectrum antibacterial, antioxidative and immunomodulatory abilities, enhanced oxygenation and cell proliferation, and extensive collagen deposition, vascularization and re-epithelialization. RNA-seq results further reveal the activation of multiple pro-healing signaling axes. Consequently, this platform offers a powerful dynamic strategy of realizing robust antibacterial activity and active temporal niche modulation to guide the healing of infected diabetic wounds.
KW - diabetic wound
KW - dual dynamic hyaluronic acid/poly(aspartic acid) hydrogel
KW - FeN/FeO nanoheterojunction
KW - silver nanozymes
KW - temporal niche regulation
UR - https://www.scopus.com/pages/publications/105036314874
U2 - 10.1002/adma.202523302
DO - 10.1002/adma.202523302
M3 - 文章
AN - SCOPUS:105036314874
SN - 0935-9648
JO - Advanced Materials
JF - Advanced Materials
ER -