Aug 2026· International Journal of Biological Macromolecules· Vol 380, pp.
154104
· 0 citations· 74 references
Medicine
TL;DR
The in vivo experiments and transcriptome analysis demonstrated that the combination of CTA hydrogel and NIR treatment significantly accelerated the healing process of MRSA-infected wounds by eliminating antibiotic-resistant bacterial infections, regulating inflammatory responses, promoting collagen deposition and angiogenesis.
Abstract
Skin wound infection is a key factor that hinders the healing process and repair outcome of wounds, especially when it involves drug-resistant bacteria, which is extremely difficult to eliminate. Therefore, developing wound dressings with the ability to kill drug-resistant bacteria holds great value. Herein, carboxymethyl chitosan (CMCS) and 2,4,6-trihydroxybenzaldehyde (THBA)@silver ion chelates were assembled into a triple dynamically cross-linked hydrogel (CTA) through imine bonds, hydrogen bonds, and polyphenol metal chelate bonds. The CTA0.15 hydrogel exhibits sensitive near-infrared response properties. When exposed to 808 nm near-infrared light with a power density of 0.3 W/cm2, the temperature can easily rise to between 45 °C and 50 °C, enabling photothermal sterilization. Combined with the strong antibacterial activity of silver ions and the photothermal effect of the hydrogel, it can quickly (15 min) and completely eliminate common pathogenic bacteria (E. coli and S. aureus) and drug-resistant bacteria (MRSA) in vitro. In addition, this hydrogel also possesses injectability, tissue adhesiveness, self-healing property, shape adaptability, antioxidant capability, catalase (CAT)-like activity, and biocompatibility. The in vivo experiments and transcriptome analysis demonstrated that the combination of CTA hydrogel and NIR treatment significantly accelerated the healing process of MRSA-infected wounds by eliminating antibiotic-resistant bacterial infections, regulating inflammatory responses, promoting collagen deposition and angiogenesis.
Methicillin-resistant Staphylococcus aureus (MRSA)-infected wounds present a significant clinical challenge due to persistent inflammation and impaired tissue regeneration. Here, we developed an IR780SS-engineered hydrogel with a hydrogen-bond-regulated network for infected wound treatment. In this system, IR780SS serves not only as a NIR photosensitizer, but also as an active component that interacts with the hydrogel matrix through hydrogen bonding, hydrophobic interactions, and π-π stacking. These interactions improve the stability and dispersion of IR780SS within the hydrogel and help preserve its photoactivity. Under 808 nm NIR irradiation, the hydrogel generates mild local hyperthermia and abundant ROS, producing antibacterial effects through combined action of PTT and PDT mechanisms. This treatment disrupts bacterial membranes and induces severe oxidative damage inside bacterial cells, leading to the near-complete elimination of drug-resistant bacteria. In a MRSA-infected wound model, rapid bacterial clearance promoted the transition from the inflammatory phase to the proliferative phase and resulted in a wound closure rate of 85.6% on day 11. Histological and immunofluorescence analyses further confirmed improved tissue repair, including enhanced re-epithelialization, angiogenic responses, and collagen remodeling, as evidenced by increased cytokeratin 14 (CK14) and smooth muscle actin (α-SMA) expression, together with more organized collagen deposition. These results suggest that integrating IR780SS into a hydrogen-bonded hydrogel not only enables effective antibacterial phototherapy but also facilitates functional wound reconstruction, providing valuable insight into the clinical development of regenerative dressings for MRSA-infected wounds.
This work demonstrates a safe and effective strategy for combating MDR infections through the combined action of photothermal therapy and nanozyme catalysis, offering promising potential for clinical wound management.
Weiwei Zhang, Lixiang Fan, Xuanjun Zhang et al.· ACS Applied Materials and In...· 0 citations
A pioneering near-infrared activated antibacterial EPLGA/OHADA@HMCuS hydrogel was formulated by doping hollow mesoporous copper sulfide (HMCuS) into the three-dimensional spatial network structure formed between gallic acid-modified ε-polylysine (EPL-GA) and dopamine-engineered and oxidized hyaluronic acid (OHADA) and showcased favorable biocompatibility, sustaining cellular viability.
N. Wang, Wei Jiang, Feiyu Lu et al.· Biomaterials Advances· 0 citations
Gel-P@Z exhibited a slow and sustained release of Gly-POX and achieved >99% antibacterial efficacy against drug-resistant bacteria without toxicity, and RNA-seq analysis revealed that Gel-P@Z accelerated healing via upregulation of the TGF-β signaling pathway, driving fibroblast-to-myofibroblast transition and promoting tissue fibrosis.
Chuanliang Fu, Wenjing Zhang, Renyuan Wang et al.· Materials Today Bio· 0 citations
The antibacterial experiments results show that the combination of antibacterial and anti-inflammation mediated by TAPP/Mn3O4@CS-GA hydrogel can accelerate infected wound healing.
Ningning Xu, Yu Liu, Shuling Yu et al.· International Journal of Bio...· 0 citations
This work developed a synergistic single-platform strategy for precise regulation of diabetic wound microenvironments, providing a promising therapeutic alternative for refractory diabetic wound treatment.