Bioinspired Provisional Matrix Stimulates Regenerative Healing of Diabetic Wounds.

IF 3.4 3区 医学 Q2 CELL BIOLOGY
Walker D Short, Phillip A Kogan, Nava P Rijal, Aditya Kaul, Benjamin W Padon, Carlos Zgheib, Hongkwan Cho, Bradley A Herbig, Bradley A King, Timothy M Crombleholme, Swathi Balaji, Daria A Narmoneva
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Abstract

This study tested the hypothesis that diabetic wound treatment with biomimetic pro-angiogenic, proteolytically and mechanically stable RADA16-II peptide nanofibers promotes regenerative wound healing via attenuation of inflammation and stimulation of neovascularization. Two full-thickness excisional dorsal skin wounds were created on 8-10 week old female db/db mice and treated with nanofiber hydrogel or saline (control). Animals were euthanized on days 7, 14, 28, and 56 and their wounds were analysed for morphology, vascularization, strength, and inflammation. We observed that in situ treatment of db/db mouse wounds with nanofiber hydrogel resulted in regenerative healing, indicated by the increased presence of elastin fibrils, restored biomechanical properties, and reestablishment of a mature epidermis complete with basal, suprabasal, and stratified layers compared to saline-treated wounds. Additionally, wounds treated with nanofiber hydrogel exhibited enhanced neovascularization, increased expression of anti-inflammatory cytokine interleukin-10, reduced expression of inflammation markers and transforming growth factor-β1 and -β2, as well as decreased myofibroblast counts. Overall, this novel drug-free approach enables accelerated diabetic wound healing by shifting inflammatory and pro-fibrotic cytokine balance towards factors associated with neovascularization-driven regenerative healing in the wound microenvironment. Our results demonstrate that in situ manipulation of the wound microenvironment using bio-mimetic peptide NF matrix may be a promising strategy for faster and more durable wound closure to improve healing of chronic wounds.

生物灵感临时基质刺激糖尿病伤口再生愈合。
本研究验证了一个假设,即使用具有促血管生成、蛋白水解和机械稳定性的仿生RADA16-II肽纳米纤维治疗糖尿病伤口,通过抑制炎症和刺激新生血管来促进再生伤口愈合。8-10周龄雌性db/db小鼠背部创面全层切除创面,用纳米纤维水凝胶或生理盐水(对照组)处理。分别于第7、14、28和56天对动物实施安乐死,分析伤口形态、血管化、强度和炎症。我们观察到,与盐水处理的伤口相比,纳米纤维水凝胶原位处理db/db小鼠伤口导致再生愈合,这表明弹性蛋白原纤维的存在增加,生物力学特性恢复,成熟表皮的重建,包括基底、基底上和层状层。此外,纳米纤维水凝胶处理后的伤口新生血管增强,抗炎细胞因子白细胞介素-10表达增加,炎症标志物和转化生长因子-β1和-β2表达减少,肌成纤维细胞计数减少。总的来说,这种新型的无药物方法通过将炎症和促纤维化细胞因子平衡转向伤口微环境中与新血管驱动的再生愈合相关的因素,从而加速糖尿病伤口愈合。我们的研究结果表明,使用仿生肽NF基质原位操作伤口微环境可能是一种有前途的策略,可以更快,更持久地关闭伤口,以改善慢性伤口的愈合。
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来源期刊
Wound Repair and Regeneration
Wound Repair and Regeneration 医学-皮肤病学
CiteScore
5.90
自引率
3.40%
发文量
71
审稿时长
6-12 weeks
期刊介绍: Wound Repair and Regeneration provides extensive international coverage of cellular and molecular biology, connective tissue, and biological mediator studies in the field of tissue repair and regeneration and serves a diverse audience of surgeons, plastic surgeons, dermatologists, biochemists, cell biologists, and others. Wound Repair and Regeneration is the official journal of The Wound Healing Society, The European Tissue Repair Society, The Japanese Society for Wound Healing, and The Australian Wound Management Association.
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