从富含杀菌蛋白的活化中性粒细胞中提取的工程纳米颗粒具有分子清创能力,可促进感染性伤口愈合。

IF 6.3 1区 医学 Q1 DERMATOLOGY Burns & Trauma Pub Date : 2024-06-20 eCollection Date: 2024-01-01 DOI:10.1093/burnst/tkae018
Hangfei Jin, Xiao Wen, Ran Sun, Yanzhen Yu, Zaiwen Guo, Yunxi Yang, Linbin Li, Bingwei Sun
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引用次数: 0

摘要

背景:细菌感染对皮肤伤口构成了相当大的威胁,尤其是在难以治疗的糖尿病伤口中。全身使用的抗生素往往难以渗透伤口深层组织,局部使用的抗生素可能会导致过敏,因此有必要开发新的方法来有效治疗伤口深层组织中的病菌。中性粒细胞是血液中最主要的免疫细胞,激活后会通过脱颗粒迅速释放大量分子,具有直接消灭病原体的能力。本研究旨在开发新型的中性粒细胞工程纳米颗粒(NVs),并探索其杀菌特性和在促进感染性伤口愈合中的应用:方法:从外周血中分离出中性粒细胞,并通过乙酸薄荷醇肉豆蔻酯(PMA)刺激使其体外活化。将活化的中性粒细胞依次挤出,然后进行超速离心,制备出工程NV,并与中性粒细胞衍生的外泌体在形态、大小分布和蛋白质含量方面进行了比较。采用展板技术、LIVE/DEAD 背光细菌检测法和细菌形态观察法评估了 NVs 在体外的杀菌效果。使用伤口收缩面积测量、组织病理学检查、炎症因子评估和免疫化学染色评估了 NVs 在体内的治疗效果:结果:体外用 PMA 刺激活化的中性粒细胞会迅速释放大量杀菌蛋白。就形态和颗粒大小而言,NVs 与外泌体相似,但它们富含的杀菌蛋白明显更高。在体外,NVs 表现出显著的杀菌效果,这可能是由溶菌酶等杀菌蛋白的富集介导的。在全厚感染性皮肤缺损模型中,这些 NVs 明显加快了伤口愈合,导致细菌负荷明显减少、炎症因子下调和胶原沉积增强:我们开发了源自活化中性粒细胞的工程化 NV,可作为一种新型的清创方法,靶向清除深层组织中的细菌,最终促进感染性伤口愈合。
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Engineered nanovesicles from activated neutrophils with enriched bactericidal proteins have molecular debridement ability and promote infectious wound healing.

Background: Bacterial infections pose a considerable threat to skin wounds, particularly in the case of challenging-to-treat diabetic wounds. Systemic antibiotics often struggle to penetrate deep wound tissues and topically applied antibiotics may lead to sensitization, necessitating the development of novel approaches for effectively treating germs in deep wound tissues. Neutrophils, the predominant immune cells in the bloodstream, rapidly release an abundance of molecules via degranulation upon activation, which possess the ability to directly eliminate pathogens. This study was designed to develop novel neutrophil cell engineered nanovesicles (NVs) with high production and explore their bactericidal properties and application in promoting infectious wound healing.

Methods: Neutrophils were isolated from peripheral blood and activated in vitro via phorbol myristate acetate (PMA) stimulation. Engineered NVs were prepared by sequentially extruding activated neutrophils followed by ultracentrifugation and were compared with neutrophil-derived exosomes in terms of morphology, size distribution and protein contents. The bactericidal effect of NVs in vitro was evaluated using the spread plate technique, LIVE/DEAD backlight bacteria assay and observation of bacterial morphology. The therapeutic effects of NVs in vivo were evaluated using wound contraction area measurements, histopathological examinations, assessments of inflammatory factors and immunochemical staining.

Results: Activated neutrophils stimulated with PMA in vitro promptly release a substantial amount of bactericidal proteins. NVs are similar to exosomes in terms of morphology and particle size, but they exhibit a significantly higher enrichment of bactericidal proteins. In vitro, NVs demonstrated a significant bactericidal effect, presumably mediated by the enrichment of bactericidal proteins such as lysozyme. These NVs significantly accelerated wound healing, leading to a marked reduction in bacterial load, downregulation of inflammatory factors and enhanced collagen deposition in a full-thickness infectious skin defect model.

Conclusions: We developed engineered NVs derived from activated neutrophils to serve as a novel debridement method targeting bacteria in deep tissues, ultimately promoting infectious wound healing.

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来源期刊
Burns & Trauma
Burns & Trauma 医学-皮肤病学
CiteScore
8.40
自引率
9.40%
发文量
186
审稿时长
6 weeks
期刊介绍: The first open access journal in the field of burns and trauma injury in the Asia-Pacific region, Burns & Trauma publishes the latest developments in basic, clinical and translational research in the field. With a special focus on prevention, clinical treatment and basic research, the journal welcomes submissions in various aspects of biomaterials, tissue engineering, stem cells, critical care, immunobiology, skin transplantation, and the prevention and regeneration of burns and trauma injuries. With an expert Editorial Board and a team of dedicated scientific editors, the journal enjoys a large readership and is supported by Southwest Hospital, which covers authors'' article processing charges.
期刊最新文献
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