TY - JOUR
T1 - Microneedle-integrated dynamic hydrogel for intrinsic bioactivity-driven microenvironment regulation in wound healing
AU - Qu, Xiaoyan
AU - Hu, Chaoyan
AU - Shen, Yumeng
AU - Zhang, Liuyang
AU - Zhao, Yanzi
AU - Lei, Bo
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/10
Y1 - 2026/10
N2 - Impaired skin wound healing is often associated with excessive inflammation, elevated oxidative stress, and insufficient vascular regeneration. Herein, we designed a microneedle-integrated hydrogel system based on phenylboronic acid-functionalized gelatin methacrylate (GelMA-PBA), incorporating polydopamine-modified bioactive glass nanoparticles (BGN@PDA) for the treatment of full-thickness skin wounds. The dynamic boronic ester-based network enables stable nanoparticle incorporation and supports effective local delivery, allowing regulation of the wound microenvironment without relying on exogenous therapeutic agents. In vitro , the system showed good biocompatibility, reduced intracellular ROS levels and inflammatory responses, and enhanced cell migration and angiogenesis-related activities. In vivo , it promoted wound closure and tissue regeneration, as evidenced by improved re-epithelialization, collagen remodeling, and vascularization in a full-thickness skin defect model. These results suggest that integrating a dynamic hydrogel network with intrinsically bioactive nanoparticles provides an effective materials-based approach for regulating the wound microenvironment and promoting skin regeneration.
AB - Impaired skin wound healing is often associated with excessive inflammation, elevated oxidative stress, and insufficient vascular regeneration. Herein, we designed a microneedle-integrated hydrogel system based on phenylboronic acid-functionalized gelatin methacrylate (GelMA-PBA), incorporating polydopamine-modified bioactive glass nanoparticles (BGN@PDA) for the treatment of full-thickness skin wounds. The dynamic boronic ester-based network enables stable nanoparticle incorporation and supports effective local delivery, allowing regulation of the wound microenvironment without relying on exogenous therapeutic agents. In vitro , the system showed good biocompatibility, reduced intracellular ROS levels and inflammatory responses, and enhanced cell migration and angiogenesis-related activities. In vivo , it promoted wound closure and tissue regeneration, as evidenced by improved re-epithelialization, collagen remodeling, and vascularization in a full-thickness skin defect model. These results suggest that integrating a dynamic hydrogel network with intrinsically bioactive nanoparticles provides an effective materials-based approach for regulating the wound microenvironment and promoting skin regeneration.
KW - Bioactive glass nanoparticles
KW - Inflammation modulation
KW - Microneedle delivery
KW - Skin wound healing
KW - Vascular regeneration
UR - https://www.scopus.com/pages/publications/105047046145
U2 - 10.1016/j.apmt.2026.103384
DO - 10.1016/j.apmt.2026.103384
M3 - 文章
AN - SCOPUS:105047046145
SN - 2352-9407
VL - 52
JO - Applied Materials Today
JF - Applied Materials Today
M1 - 103384
ER -