自愈水凝胶
伤口愈合
炎症
慢性伤口
糖基化
化学
细胞生物学
药理学
氧化应激
活性氧
免疫系统
氧化磷酸化
病态的
组织修复
材料科学
控制释放
动力学
癌症研究
受体
临床治疗
调解人
皮肤修复
生物化学
药物输送
抗氧化剂
葡萄糖氧化酶
作者
Jianyang Zhao,Yuan Hu,Caikun Liu,Chenchen Yan,Hua Li,Zekun Chen,Zhiqiang Nie,Xiayi Xu,Miao Cui,Pengchao Zhao,Liming Bian
摘要
Diabetic wounds present a pressing clinical challenge due to their self-perpetuating pathological microenvironment, where oxidative stress, the accumulation of advanced glycation end-products and their receptors (AGE-RAGE), and chronic inflammation form a vicious cycle that impedes healing. The effective delivery of therapeutic agents by existing antioxidant hydrogels is compromised by their poor conformability to complex wound geometries due to rapid crosslinking kinetics, resulting in the failure to correct these interconnected pathological processes. Here, we synthesize an organoselenium polymer (OSP) capable of microphase-separation to extend acylhydrazone crosslinking kinetics, thereby producing a tissue-conforming organoselenium hydrogel (TCOH) that effectively presents organoselenium motifs to the pathological diabetic wound bed. The TCOH can effectively restore redox homeostasis, enhance angiogenesis, and reprogram the immune microenvironment by promoting M2 macrophage polarization. Transcriptomic profiling and Western Blot analyses concurrently confirm the restoration of glycolipid metabolism and suppression of AGE-RAGE and NF-κB signaling. This multifaceted restoration of the pro-healing microenvironment results in accelerated wound closure, enhanced collagen deposition, and functional tissue regeneration. Our work establishes a new paradigm in chronic wound management by integrating dynamic material adaptation with multi-targeted pathological regulation, offering a promising therapeutic platform for various redox- and AGE-related chronic diseases.
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