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Hydrogen bonding-mediated phase-transition gelatin-based bioadhesives to regulate immune microenvironment for diabetic wound healing

明胶 伤口愈合 免疫系统 材料科学 氢键 生物医学工程 化学 纳米技术 医学 免疫学 生物化学 有机化学 分子
作者
Zhuoling Tian,Ruoheng Gu,Wenyue Xie,Xing Su,Zuoying Yuan,Zhuo Wan,Hao Wang,Yaqian Liu,Yuting Feng,Xiaozhi Liu,Jianyong Huang
出处
期刊:Bioactive Materials [Elsevier BV]
卷期号:46: 434-447 被引量:15
标识
DOI:10.1016/j.bioactmat.2024.12.014
摘要

Gelatin-based biomaterials have emerged as promising candidates for bioadhesives due to their biodegradability and biocompatibility. However, they often face limitations due to the uncontrollable phase transition of gelatin, which is dominated by hydrogen bonds between peptide chains. Here, we developed controllable phase transition gelatin-based (CPTG) bioadhesives by regulating the dynamic balance of hydrogen bonds between the peptide chains using 2-hydroxyethylurea (HU) and punicalagin (PA). These CPTG bioadhesives exhibited significant enhancements in adhesion energy and injectability even at 4 °C compared to traditional gelatin bioadhesives. The developed bioadhesives could achieve self-reinforcing interfacial adhesion upon contact with moist wound tissues. This effect was attributed to HU diffusion, which disrupted the dynamic balance of hydrogen bonds and therefore induced a localized structural densification. This process was further facilitated by the presence of pyrogallol from PA. Furthermore, the CPTG bioadhesive could modulate the immune microenvironment, offering antibacterial, antioxidant, and immune-adjustable properties, thereby accelerating diabetic wound healing, as confirmed in a diabetic wound rat model. This proposed design strategy is not only crucial for developing controllable phase-transition bioadhesives for diverse applications, but also paves the way for broadening the potential applications of gelatin-based biomaterials. • The controllable phase transitions in CPTG biomaterials are achieved by diminishing hydrogen-bonds between peptide chains. • The CPTG bioadhesives exhibit good injectability at 4 °C. • The CPTG bioadhesives adhere firmly to tissue even at 4 °C, demonstrating stable adhesion independent of temperature. • The CPTG bioadhesives accelerate diabetic wound healing by effective immunomodulation.
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