Development of an Antiswelling Hydrogel System Incorporating M2-Exosomes and Photothermal Effect for Diabetic Wound Healing.
Weichang LiShujie WuLin RenBingyu FengZhipei ChenZongtai LiBin ChengJuan XiaPublished in: ACS nano (2023)
Diabetic wounds represent a persistent global health challenge with a substantial impact on patients' health and overall well-being. Herein, a hydrogel system that integrates functionalized gold nanorods (AuNRs) and M2 macrophage-derived exosomes (M2-Exos) was developed to achieve an efficient and synergistic therapy for diabetic wounds. We introduced an ion-cross-linked dissipative network into a prefabricated covalent cross-linked network (long-chain polymer network), which was prepared using AuNRs as a specific cross-linker. The ion network was then cross-linked with the long-chain polymer in situ to form a specific network structure, imparting antiswelling and photothermal effects to the hydrogel. This integrated hydrogel system effectively scavenged reactive oxygen species levels, inhibited inflammation, promoted angiogenesis, and stimulated photothermal antibacterial activity through near-infrared (NIR) irradiation. To demonstrate the potential of the hydrogel, we established experimental animal models of oral mucosa ulceration and full-thickness skin defects. In vivo results confirmed that M2-Exos released from the hydrogels played a crucial role in wound closure. Furthermore, the synergistic effect of AuNRs and NIR photothermal effects eradicated bacterial infections in the wound area. Overall, our integrated hydrogel system is a promising tool for accelerating chronic diabetic wound healing and tissue regeneration. This study highlights the potential benefits of combining bioactive M2-Exos and the photothermal effect of AuNRs into an antiswelling hydrogel platform to achieve satisfactory wound healing in patients with diabetes.
Keyphrases
- wound healing
- photodynamic therapy
- cancer therapy
- drug release
- drug delivery
- global health
- reactive oxygen species
- stem cells
- public health
- mesenchymal stem cells
- end stage renal disease
- mental health
- healthcare
- ejection fraction
- oxidative stress
- adipose tissue
- fluorescence imaging
- type diabetes
- high throughput
- peritoneal dialysis
- bone marrow
- quantum dots
- newly diagnosed
- optical coherence tomography
- radiation induced
- mass spectrometry
- social media
- endothelial cells
- climate change
- drug induced
- fluorescent probe