化学
粘附
伤口愈合
抗菌活性
自愈水凝胶
金黄色葡萄球菌
壳聚糖
铜绿假单胞菌
体内
纳米纤维
组织粘连
炎症
氧化应激
肿胀 的
细胞粘附
透明质酸
伤口敷料
药理学
慢性伤口
大肠杆菌
抗氧化剂
生物物理学
生物材料
再生(生物学)
生物活性
微生物学
儿茶酚
糖尿病足
生物相容性
纤维素
活性氧
生物化学
细菌
作者
Sihao Liu,Chengyu Zhang,Zhenyu CHEN,Heng Chang,Wei Qi,Yuefei Wang,Rongxin Su
标识
DOI:10.1021/acs.biomac.6c00795
摘要
Diabetic skin injury is a serious clinical challenge due to impaired healing and infection. Here, we developed a sandcastle worm-inspired hydrogel featuring a phosphate–catechol–amine synergistic network based on a poly(acrylic acid- co -acrylamide) network, functionalized with dopamine-grafted cellulose nanofibers (DA-PCNF) and quaternized chitosan (QCS), to accelerate diabetic wound healing. The hydrogel exhibits strong tissue adhesion (78.82 ± 2.55 kPa) and broad-spectrum antibacterial activity (99.67% killing of Escherichia coli and 99.55% killing of Staphylococcus aureus in vitro). More importantly, it exhibits pH-responsive swelling and adhesion behaviors, maintaining robust adhesion under mildly acidic wound conditions while attenuating adhesion under neutral conditions to facilitate atraumatic dressing removal. Antioxidant assays indicated that the hydrogel exhibits scavenging activity against various free radicals with efficiencies ranging from 30% to 40%, attributable to the catechol groups. In vivo application of the hydrogel to infected diabetic wounds significantly accelerated healing (99.82%, on day 12 after Pseudomonas aeruginosa -infected wound formation), with reduced inflammation and enhanced tissue regeneration. These findings demonstrate that the catechol–nanocellulose/chitosan polymeric hydrogel effectively overcomes adhesion, infection, and oxidative stress barriers in diabetic wound healing, making it a promising candidate for difficult-to-heal chronic ulcers.
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