利用创新的靶向血管生成疗法修复缺血性糖尿病足溃疡:从纳米药物和微rna到高压氧治疗。

Fatigracy Canha, Raquel Soares
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摘要

糖尿病是一种全球高患病率的代谢性疾病,其特点是慢性高血糖导致血管或非血管并发症的发生。正是这些并发症导致了糖尿病患者,尤其是血管性糖尿病患者的高死亡率。本研究的重点是糖尿病足溃疡(DFUs),这是2型糖尿病(T2DM)最常见的并发症之一,引起显著的发病率、死亡率和医疗费用。由于高血糖环境,该过程几乎所有阶段的解除管制都阻碍了DFUs的愈合。虽然目前存在治疗DFU患者的疗法,但它们被证明是不够的。在目前的工作中,血管生成被强调为增殖阶段的一部分,当增殖阶段减少时,在DFU和其他慢性伤口的愈合受损中起着重要作用。因此,寻找针对血管生成的新治疗策略是人们非常感兴趣的。在本研究中,我们概述了具有治疗潜力的分子靶点和作用于血管生成的治疗方法。为此,检索了2018年至2021年PubMed和Scopus数据库中的文章,回顾了血管生成作为DFU的治疗靶点。研究了生长因子、microrna和信号通路作为分子靶点,并探索了负压、高压氧治疗和纳米药物的使用作为治疗方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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The use of innovative targeted angiogenic therapies for ischemic diabetic foot ulcer repair: From nanomedicine and microRNAs toward hyperbaric oxygen therapy.

Diabetes mellitus is a metabolic disease that has a high prevalence worldwide and is characterized by chronic hyperglycemia leading to the development of vascular or nonvascular complications. It is these complications that result in huge mortality rates in patients with diabetes, especially vascular ones. This work focuses on diabetic foot ulcers (DFUs), which are one of the most common complications of type 2 diabetes mellitus (T2DM) and cause significant morbidity, mortality, and healthcare costs. The healing of DFUs is hindered by deregulation of nearly all phases of this process because of the hyperglycemic environment. Although therapies currently exist to treat a patient with DFU, they are proving inadequate. In the present work, angiogenesis is highlighted as part of the proliferative phase, which, when diminished, plays an important role in the impaired healing of DFU and other chronic wounds. Therefore, the search for new therapeutic strategies targeting angiogenesis is of great interest. In this study, we provide an overview of molecular targets with therapeutic potential and therapies that act on angiogenesis. To this end, a search of articles in PubMed and Scopus databases from 2018 to 2021 was performed to review angiogenesis as a therapeutic target for DFU. Growth factors, microRNAs, and signaling pathways were investigated as molecular targets, and negative pressure, hyperbaric oxygen therapy, and the use of nanomedicine were explored as therapies.

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