Dual-functional chameleon microneedles based on Cel/Fe-GA-OKGM/Gel for programmed biofilm eradication and real-time healing surveillance in chronic wounds

Wound dressings play a critical role in wound management, yet engineering specialized solutions for biofilm-compromised chronic infections remains a formidable challenge. To address this, we developed a cellulase (Cel)-integrated hydrogel microneedle (MN) patch—comprising gallic acid (GA)-grafted oxidized konjac glucomannan (GA-OKGM), gelatin (Gel), and iron ions (denoted as Cel/Fe-GA-OKGM/Gel MNs)—for the programmed therapy and monitoring of chronic infected wounds. This hydrogel system features dual crosslinking via Fe-phenolic hydroxyl coordination bonds (GA-Fe) and Schiff base linkages (OKGM-Gel). By leveraging the physical penetration of MNs, surface-loaded cellulase efficiently degrades biofilms, thereby overcoming biofilm-mediated antimicrobial resistance. In vivo and in vitro studies demonstrate that these MNs exhibit potent biofilm-disrupting, antibacterial, anti-inflammatory, antioxidant, and macrophage-polarizing properties, collectively reprogramming the wound microenvironment to accelerate healing. Furthermore, the GA-Fe complex undergoes microenvironment-dependent chromatic transitions within wounds, serving as a real-time visual biomarker that dynamically reflects the progression of healing and infection status. This dual-functional “chameleon” system thus holds exceptional promise for the precise management of chronic infected wounds and future clinical translation.

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Publication Details

Journal
Bio-Design and Manufacturing
Published
2026-09-12
DOI
https://doi.org/10.1631/bdm.2500505
Primary Topic
Wound Healing and Treatments
Type
article
Field-Weighted Citation Impact
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article

Dual-functional chameleon microneedles based on Cel/Fe-GA-OKGM/Gel for programmed biofilm eradication and real-time healing surveillance in chronic wounds

Yinglei Zhai, Qida Zong, Ruizeng Luo, Zhou Li et al.
Bio-Design and Manufacturing
Wound Healing and Treatments
article

Dual-functional chameleon microneedles based on Cel/Fe-GA-OKGM/Gel for programmed biofilm eradication and real-time healing surveillance in chronic wounds

Yinglei Zhai, Qida Zong, Ruizeng Luo, Zhou Li, Qianwen Zhang, Xi Pan, Wei Sun, Feizhi Weng
article en

Abstract

Wound dressings play a critical role in wound management, yet engineering specialized solutions for biofilm-compromised chronic infections remains a formidable challenge. To address this, we developed a cellulase (Cel)-integrated hydrogel microneedle (MN) patch—comprising gallic acid (GA)-grafted oxidized konjac glucomannan (GA-OKGM), gelatin (Gel), and iron ions (denoted as Cel/Fe-GA-OKGM/Gel MNs)—for the programmed therapy and monitoring of chronic infected wounds. This hydrogel system features dual crosslinking via Fe-phenolic hydroxyl coordination bonds (GA-Fe) and Schiff base linkages (OKGM-Gel). By leveraging the physical penetration of MNs, surface-loaded cellulase efficiently degrades biofilms, thereby overcoming biofilm-mediated antimicrobial resistance. In vivo and in vitro studies demonstrate that these MNs exhibit potent biofilm-disrupting, antibacterial, anti-inflammatory, antioxidant, and macrophage-polarizing properties, collectively reprogramming the wound microenvironment to accelerate healing. Furthermore, the GA-Fe complex undergoes microenvironment-dependent chromatic transitions within wounds, serving as a real-time visual biomarker that dynamically reflects the progression of healing and infection status. This dual-functional “chameleon” system thus holds exceptional promise for the precise management of chronic infected wounds and future clinical translation.

Bio-Design and Manufacturing
Shenyang Pharmaceutical University (CN), Chinese Academy of Sciences (CN), Haikou City People's Hospital (CN), Beijing Institute of Nanoenergy and Nanosystems (CN), Haikou Experimental Station (CN), University of South China (CN)
Openalex Percentile: Top 14%
Wound Healing and Treatments
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