伤口愈合的可生物降解微粒:体外研究。

IF 5.7 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Zeynep Imir Tekneci, Akmal Bin Sabri, Adam A. Dundas, Derek J. Irvine, Amir M. Ghaemmaghami and Morgan R. Alexander
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引用次数: 0

摘要

伤口愈合是一个复杂的过程,可能导致健康组织再生,但有问题的慢性伤口表现为纤维化和持续炎症。为了改善创面效果,首次研究了促增殖聚合物作为生物可吸收颗粒的应用。生物可吸收聚(D, l -乳酸)(PDLLA)微粒的表面用一种促增殖和抗增殖的聚合物装饰,这种聚合物可以附着在表面至少21天。与未经微颗粒处理的细胞相比,具有促增殖聚合物表面化学的微颗粒在体外48小时后可使成纤维细胞增殖增加5倍。研究发现,这些细胞可以移动,在微粒之间建立桥梁,从而促进细胞的延伸和增殖,加速伤口愈合周期的关键阶段。用蛋白质组学检测了吸附蛋白,发现独特的蛋白粘附在具有增殖表面化学的微粒上。这些蛋白包括膜联蛋白,嗅觉蛋白4和静脉蛋白,这些蛋白的作用已经被强调,以获得由微颗粒引起的刺激增殖环境的机制洞察。使用3D Orbi-SIMS研究了暴露于微颗粒培养基中的脂质沉积/保留,并强调了脂质的优先吸附,包括甾醇、脂肪酸和鞘脂,这些脂质与促愈合和抗愈合聚合物相关。这种机制的洞察力有助于推进这项技术,以解决慢性伤口愈合的紧迫问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Wound-healing biodegradable microparticles: an in vitro investigation

Wound-healing biodegradable microparticles: an in vitro investigation

Wound healing is a complex process that may result in healthy tissue regeneration, but problematic chronic wounds exhibit fibrosis and persistent inflammation. To improve wound outcomes, the application of pro-proliferative polymers as bioresorbable particles was investigated for the first time. The surface of bioresorbable poly(D,L-lactic acid) (PDLLA) microparticles is decorated with a pro- and anti-proliferative polymer that adheres to the surface for a minimum of 21 days. Microparticles with a pro-proliferative polymer surface chemistry have been shown to increase fibroblast proliferation in vitro by 5 fold after 48 hours compared to cells without microparticle treatment. The cells are found to move to establish bridges between the microparticles, which facilitate cell elongation and proliferation, accelerating a key stage of the wound healing cycle. Adsorbed proteins were examined using proteomics, and unique proteins were found to adhere to microparticles exhibiting proliferative surface chemistry. These proteins include annexin, olfactomedin 4 and vimentin, and the roles of these proteins have been highlighted to gain a mechanistic insight into the stimulated proliferative environment caused by the microparticles. The lipid deposition/retention from exposure to the culture media of microparticles was investigated using 3D Orbi-SIMS and highlights preferential adsorption of lipids, including sterols, fatty acids and sphingolipids, which correlates with pro- and anti-healing polymers. This mechanistic insight helps advance this technology to address the pressing issue of chronic wound healing.

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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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