一氧化碳释放载体 CO@TPyP-FeMOFs 在炎性伤口愈合中调节巨噬细胞表型。

IF 3.2 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Yixian Mu , Xinlei Yang , Yinhong Xie , Jie Luo , Sui Wu , JinMing Yang , Wei Zhao , Junying Chen , Yajun Weng
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引用次数: 0

摘要

慢性伤口的愈合受到长期炎症的严重限制。一氧化碳(CO)是一种生物活性分子,在调节炎症、促进伤口愈合和组织重塑方面具有很高的潜力。将一氧化碳作为气态药物用于慢性伤口的策略已经出现,但控制一氧化碳在伤口部位的持续释放仍是一大挑战。本研究制备了一种卟啉-铁基金属有机框架 TPyP-FeMOFs。合成的 TPyP-FeMOFs 经过高温真空活化(AcTPyP-FeMOFs),AcTPyP-FeMOFs 的铁(II)含量相对较高。一氧化碳吸附等温线表明,AcTPyP-FeMOFs 能化学吸附一氧化碳,因此一氧化碳的释放具有持续性和延长性。体外评估结果表明,CO@TpyP-FeMOFs 可降低脂多糖(LPS)激活的巨噬细胞的炎症水平,将巨噬细胞极化为 M2 抗炎表型,并通过改变病理微环境促进成纤维细胞的增殖。体内研究证实,CO@TpyP-FeMOFs 可促进 LPS 皮肤伤口延迟修复模型的愈合,并减少巨噬细胞和中性粒细胞的招募。体外和体内研究都证实,CO@TpyP-FeMOFs 可通过调节表型和炎症因子的表达来作用于巨噬细胞。因此,以巨噬细胞为目标的 CO 释放和病理微环境调节是一种很有前景的伤口愈合策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Carbon monoxide-releasing Vehicle CO@TPyP-FeMOFs modulating macrophages phenotype in inflammatory wound healing

Carbon monoxide-releasing Vehicle CO@TPyP-FeMOFs modulating macrophages phenotype in inflammatory wound healing

Healing of chronic wounds has been critically limited by prolonged inflammation. Carbon monoxide (CO) is a biologically active molecule with high potential based on its efficacy in modulating inflammation, promoting wound healing and tissue remodeling. Strategies to use CO as a gaseous drug to chronic wounds have emerged, but controlling the sustained release of CO at the wound site remains a major challenge. In this work, a porphyrin-Fe based metal organic frameworks, TPyP-FeMOFs was prepared. The synthesized TPyP-FeMOFs was high-temperature vacuum activated (AcTPyP-FeMOFs) and AcTPyP-FeMOFs had a relatively high Fe (II) content. CO sorption isotherms showed that AcTPyP-FeMOFs chemisorbed CO and thus CO release was sustained and prolonged. In vitro evaluation results showed that CO@TPyP-FeMOFs reduced the inflammatory level of lipopolysaccharide (LPS) activated macrophages, polarized macrophages to M2 anti-inflammatory phenotype, and promoted the proliferation of fibroblasts by altering the pathological microenvironment. In vivo study confirmed CO@TPyP-FeMOFs promoted healing in a LPS model of delayed cutaneous wound repair and reduced macrophages and neutrophils recruitment. Both in vitro and in vivo studies verified that CO@TPyP-FeMOFs acted on macrophages by modulating phenotype and inflammatory factor expression. Thus, CO release targeting macrophages and pathological microenvironment modulation presented a promising strategy for wound healing.

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来源期刊
Nitric oxide : biology and chemistry
Nitric oxide : biology and chemistry 生物-生化与分子生物学
CiteScore
7.50
自引率
7.70%
发文量
74
审稿时长
52 days
期刊介绍: Nitric Oxide includes original research, methodology papers and reviews relating to nitric oxide and other gasotransmitters such as hydrogen sulfide and carbon monoxide. Special emphasis is placed on the biological chemistry, physiology, pharmacology, enzymology and pathological significance of these molecules in human health and disease. The journal also accepts manuscripts relating to plant and microbial studies involving these molecules.
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