Microenvironmental dynamics of diabetic wounds and insights for hydrogel-based therapeutics.
Ying ZhaoYulan ZhaoBing XuHongwei LiuQiang ChangPublished in: Journal of tissue engineering (2024)
The rising prevalence of diabetes has underscored concerns surrounding diabetic wounds and their potential to induce disability. The intricate healing mechanisms of diabetic wounds are multifaceted, influenced by ambient microenvironment, including prolonged hyperglycemia, severe infection, inflammation, elevated levels of reactive oxygen species (ROS), ischemia, impaired vascularization, and altered wound physicochemical properties. In recent years, hydrogels have emerged as promising candidates for diabetic wound treatment owing to their exceptional biocompatibility and resemblance to the extracellular matrix (ECM) through a three-dimensional (3D) porous network. This review will first summarize the microenvironment alterations occurring in the diabetic wounds, aiming to provide a comprehensive understanding of its pathogenesis, then a comprehensive classification of recently developed hydrogels will be presented, encompassing properties such as hypoglycemic effects, anti-inflammatory capabilities, antibacterial attributes, ROS scavenging abilities, promotion of angiogenesis, pH responsiveness, and more. The primary objective is to offer a valuable reference for repairing diabetic wounds based on their unique microenvironment. Moreover, this paper outlines potential avenues for future advancements in hydrogel dressings to facilitate and expedite the healing process of diabetic wounds.
Keyphrases
- wound healing
- extracellular matrix
- type diabetes
- reactive oxygen species
- stem cells
- anti inflammatory
- air pollution
- drug delivery
- cardiovascular disease
- dna damage
- tissue engineering
- machine learning
- oxidative stress
- endothelial cells
- adipose tissue
- risk assessment
- hyaluronic acid
- vascular endothelial growth factor
- particulate matter
- metal organic framework