化学
再生医学
肽
药理学
生物医学工程
自组装肽
复合数
伤口愈合
抗菌肽
糖尿病
抗菌活性
组织工程
自愈水凝胶
生物物理学
作者
Yao Lin,Baicheng Xing,Xiong Zhang,Guanghua Lu,Huaiyuan Zhang,Yuxin Zhang,Xingchao Wang,Ziyan Zhang,Zhong Wang,Ying Zhang,Yong Gao,Chunrui Yang,Junyan Zhang,Wenyu Qiao,Yufeng Zhou
标识
DOI:10.1186/s12951-026-05014-9
摘要
Diabetic wound infections remain highly refractory to treatment due to persistent bacterial colonization, oxidative stress, dysregulated inflammation, vascular insufficiency, and impaired extracellular-matrix remodeling. Current therapeutic strategies remain limited by poor tissue penetration, inadequate infection control, and ineffective inflammatory-oxidative microenvironment modulation. Here, we engineered a sonosensitive antimicrobial peptide composite hydrogel, FFRK8@ZnO 2 @fHAMA, by integrating human host-defense-peptide-derived FFRK8, microenvironment-responsive ZnO 2 microspheres, and fish-collagen-modified hyaluronic acid methacrylate (fHAMA) into an injectable bioactive matrix. Upon low-intensity pulsed ultrasound (LIPUS) irradiation, this hydrogel acts as a multifunctional regenerative dressing that couple broad-spectrum bacterial eradication with oxidative-stress attenuation, macrophage repolarization, angiogenic activation and extracellular-matrix reconstruction. Distinct from conventional passive dressings or antibiotic-dependent therapies, FFRK8@ZnO 2 @fHAMA enables non-invasive and spatiotemporally precise activation, sustained local therapeutic retention and coordinated immune-redox-metabolic microenvironment remodeling while maintaining favorable biosafety. This sonosensitive peptide hydrogel offers a powerful bioactive strategy for repairing infected diabetic wound and may inspire next-generation therapeutic modality for chronic non-healing tissue regeneration.
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