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ImmuneCited

Arginine-Nanoenzyme with Timely Angiogenesis for Promoting Diabetic Wound Healing.

Yan Yang, Yushan Yang, Jingsi Jiang, Zongzhou Wu, Jiuyuan Sun et al.
Other ACS applied materials & interfaces 2024 27 인용
PubMed DOI
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Study Design

연구 유형
Other
대상 집단
Diabetic ulcer mice model
중재
Arginine-Nanoenzyme with Timely Angiogenesis for Promoting Diabetic Wound Healing. None
대조군
Untreated diabetic wound controls
일차 결과
Diabetic wound healing via angiogenesis
효과 방향
Positive
비뚤림 위험
Unclear

Abstract

The successful treatment of diabetic wounds requires strategies that promote anti-inflammation, angiogenesis, and re-epithelialization of the wound. Excessive oxidative stress in diabetic ulcers (DUs) inhibits cell proliferation and hinders timely vascular formation and macrophage polarization from pro-inflammatory M1 to anti-inflammatory M2, resulting in a persistent inflammatory environment and a nonhealing wound. We designed arginine-nanoenzyme (FTA) with mimic-catalase and arginine-loading. 2,3,4-trihydroxy benzaldehyde and arginine (Arg) were connected by a Schiff base bond, and the nanoassembly of Arg to FTA was driven by the coordination force between a ferric ion and polyphenol and noncovalent bond force such as a hydrogen bond. FTA could remove excess reactive oxygen species at the wound site in situ and convert it to oxygen to improve hypoxia. Meanwhile, Arg was released and catalytically metabolized by NO synthase in M1 to promote vascular repair in the early phase. In the late phase, the metabolite of Arg catalyzed by arginase in M2 was mainly ornithine, which played a vital role in promoting tissue repair, which implemented angiogenesis timely and prevented hypertrophic scars. Mechanistically, FTA activated the cAMP signaling pathway combined with reducing inflammation and ameliorating angiogenesis, which resulted in excellent therapeutic effects on a DU mice model.

요약

Mechanistically, FTA activated the cAMP signaling pathway combined with reducing inflammation and ameliorating angiogenesis, which resulted in excellent therapeutic effects on a DU mice model.

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