胎鼠真皮间充质干细胞通过诱导M2型巨噬细胞极化促进创面愈合。

IF 3.6 3区 医学 Q3 CELL & TISSUE ENGINEERING
Zhen-Yu Xia, Yi Wang, Nian Shi, Mei-Qi Lu, Yun-Xiang Deng, Yong-Jun Qi, Xing-Lei Wang, Jie Zhao, Du-Yin Jiang
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引用次数: 0

摘要

背景:间充质干细胞存在于多种组织中,具有显著的愈合和免疫调节特性,影响巨噬细胞极化,对伤口修复至关重要。然而,慢性伤口呈现显著的治疗挑战,需要新的策略来改善愈合结果。目的:探讨胎儿真皮间充质干细胞(FDMSCs)通过调节巨噬细胞极化,特别是通过促进M2表型来解决慢性伤口的炎症反应,从而促进伤口愈合的潜力。方法:从BalB/C小鼠中分离FDMSCs,与RAW264.7巨噬细胞共培养,观察其对巨噬细胞极化的影响。采用流式细胞术、定量逆转录酶聚合酶链反应和组织学分析来评估小鼠模型中巨噬细胞表型和伤口愈合的变化。使用GraphPad Prism进行统计分析。结果:在共培养的RAW264.7巨噬细胞中,FDMSCs诱导巨噬细胞从M1表型向M2表型极化,表明促炎标志物(诱导性一氧化氮合酶、白细胞介素-6)减少,抗炎标志物(甘露糖受体(CD206)、精氨酸酶-1)增加。流式细胞术证实了这些变化。在急性皮肤伤口模型中,与对照组相比,fdmsc处理的小鼠伤口愈合更快,胶原沉积增强,血管再生改善。精氨酸酶-1的显著升高进一步表明M2巨噬细胞环境富集。结论:FDMSCs可有效调节巨噬细胞从M1到M2的极化,减少炎症,增强组织修复,显示其作为一种免疫调节策略在伤口愈合中的潜力。这些发现突出了FDMSCs在慢性伤口治疗中的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fetal mice dermal mesenchymal stem cells promote wound healing by inducing M2 type macrophage polarization.

Background: Mesenchymal stem cells, found in various tissues, possess significant healing and immunomodulatory properties, influencing macrophage polarization, which is essential for wound repair. However, chronic wounds present significant therapeutic challenges, requiring novel strategies to improve healing outcomes.

Aim: To investigate the potential of fetal dermal mesenchymal stem cells (FDMSCs) in enhancing wound healing through modulation of macrophage polarization, specifically by promoting the M2 phenotype to address inflammatory responses in chronic wounds.

Methods: FDMSCs were isolated from BalB/C mice and co-cultured with RAW264.7 macrophages to assess their effects on macrophage polarization. Flow cytometry, quantitative reverse transcriptase polymerase chain reaction, and histological analyses were employed to evaluate shifts in macrophage phenotype and wound healing in a mouse model. Statistical analysis was performed using GraphPad Prism.

Results: FDMSCs induced macrophage polarization from the M1 to M2 phenotype, as demonstrated by a reduction in pro-inflammatory markers (inducible nitric oxide synthase, interleukin-6) and an increase in anti-inflammatory markers [mannose receptor (CD206), arginase-1] in co-cultured RAW264.7 macrophages. These shifts were confirmed by flow cytometry. In an acute skin wound model, FDMSC-treated mice exhibited faster wound healing, enhanced collagen deposition, and improved vascular regeneration compared to controls. Significantly higher expression of arginase-1 further indicated an enriched M2 macrophage environment.

Conclusion: FDMSCs effectively modulate macrophage polarization from M1 to M2, reduce inflammation, and enhance tissue repair, demonstrating their potential as an immunomodulatory strategy in wound healing. These findings highlight the promising therapeutic application of FDMSCs in managing chronic wounds.

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来源期刊
World journal of stem cells
World journal of stem cells Biochemistry, Genetics and Molecular Biology-Molecular Biology
CiteScore
7.80
自引率
4.90%
发文量
750
期刊介绍: The World Journal of Stem Cells (WJSC) is a leading academic journal devoted to reporting the latest, cutting-edge research progress and findings of basic research and clinical practice in the field of stem cells. It was launched on December 31, 2009 and is published monthly (12 issues annually) by BPG, the world''s leading professional clinical medical journal publishing company.
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