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纳米载体介导的局部胰岛素递送促进伤口愈合

Nanocarrier-Mediated Topical Insulin Delivery for Wound Healing.

作者信息

Macedo Ana S, Mendes Francisca, Filipe Patrícia, Reis Salette, Fonte Pedro

机构信息

Associated Lab for Green Chemistry (LAQV), REQUIMTE, Department of Chemical Sciences-Applied Chemistry Lab, Faculty of Pharmacy, University of Porto, Rua de Jorge Viterbo Ferreira 228, 4050-313 Porto, Portugal.

Faculdade de Ciências, Universidade de Lisboa, 1749-016 Lisboa, Portugal.

出版信息

Materials (Basel). 2021 Jul 30;14(15):4257. doi: 10.3390/ma14154257.

Abstract

Wound care has been clinically demanding due to inefficacious treatment that represents an economic burden for healthcare systems. In Europe, approximately 7 million people are diagnosed with untreated wounds, leading to a cost between 6.000€ and 10.000€ per patient/year. In the United States of America, 1.5 million people over 65 years old suffer from chronic wounds. A promising therapeutic strategy is the use of exogenous growth factors because they are decreased at the wound site, limiting the recovery of the skin. Insulin is one of the cheapest growth factors in the market able to accelerate the re-epithelialization and stimulate angiogenesis and cell migration. However, the effectiveness of topical insulin in wound healing is hampered by the proteases in the wound bed. The encapsulation into nanoparticles improves its stability in the wound, providing adhesion to the mucosal surface and allowing its sustained release. The aim of this review is to perform a standing point about a promising strategy to treat different types of wounds by the topical delivery of insulin-loaded nanocarriers.

摘要

由于治疗效果不佳,伤口护理在临床上一直是一项艰巨的任务,这对医疗保健系统来说是一种经济负担。在欧洲,约有700万人被诊断患有未治疗的伤口,导致每位患者每年的费用在6000欧元至10000欧元之间。在美国,150万65岁以上的人患有慢性伤口。一种有前景的治疗策略是使用外源性生长因子,因为它们在伤口部位减少,限制了皮肤的恢复。胰岛素是市场上最便宜的生长因子之一,能够加速上皮再形成并刺激血管生成和细胞迁移。然而,伤口床中的蛋白酶阻碍了局部胰岛素在伤口愈合中的有效性。将其封装到纳米颗粒中可提高其在伤口中的稳定性,使其能够粘附在粘膜表面并实现持续释放。本综述的目的是对通过局部递送载胰岛素纳米载体治疗不同类型伤口的一种有前景的策略进行阐述。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8442/8348788/3b44a1e71516/materials-14-04257-g001.jpg

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