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利用纤维蛋白基系统促进血管生成和调节炎症反应治疗高血糖创面。

Use of a fibrin-based system for enhancing angiogenesis and modulating inflammation in the treatment of hyperglycemic wounds.

机构信息

Network of Excellence for Functional Biomaterials, National University of Ireland, Galway, Ireland.

Regenerative Medicine Institute, National University of Ireland, Galway, Ireland.

出版信息

Biomaterials. 2014 Feb;35(6):2001-10. doi: 10.1016/j.biomaterials.2013.11.003. Epub 2013 Dec 10.

Abstract

The complex pathophysiology of chronic ulceration in diabetic patients is poorly understood; diabetes-related lower limb amputation is a major health issue, which has limited effective treatment regimes in the clinic. This study attempted to understand the complex pathology of hyperglycemic wound healing by showing profound changes in gene expression profiles in wounded human keratinocytes in hyperglycemic conditions compared to normal glucose conditions. In the hyper-secretory wound microenvironment of hyperglycemia, Rab18, a secretory control molecule, was found to be significantly downregulated. Using a biomaterial platform for dual therapy targeting the two distinct pathways, this study aimed to resolve the major dysregulated pathways in hyperglycemic wound healing. To complement Rab18, and promote angiogenesis eNOS was also targeted, and this novel Rab18-eNOS therapy via a dynamically controlled 'fibrin-in-fibrin' delivery system, demonstrated enhanced wound closure, by increasing functional angiogenesis and reducing inflammation, in an alloxan-induced hyperglycemic preclinical ear ulcer model of compromised wound healing.

摘要

糖尿病患者慢性溃疡的复杂病理生理学机制尚未完全阐明;糖尿病相关的下肢截肢是一个主要的健康问题,临床上对此的有效治疗方案有限。本研究试图通过比较高糖条件下与正常葡萄糖条件下受伤的人角质形成细胞的基因表达谱,来了解高血糖创面愈合的复杂病理。在高血糖的高分泌性创面微环境中,发现分泌调控分子 Rab18 显著下调。本研究使用一种针对两种不同途径的双重治疗的生物材料平台,旨在解决高血糖创面愈合中主要失调的途径。为了补充 Rab18,促进血管生成,本研究还靶向 eNOS,通过动态控制的“纤维蛋白在纤维蛋白内”递药系统,在阿霉素诱导的高血糖临床前耳溃疡模型中,该新型 Rab18-eNOS 疗法通过增加功能性血管生成和减少炎症,增强了创面闭合,改善了创面愈合受损的情况。

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