Umbelliferone alleviates impaired wound healing and skin barrier dysfunction in high glucose-exposed dermal fibroblasts and diabetic skins.

IF 4.8 3区 医学 Q1 GENETICS & HEREDITY Journal of Molecular Medicine-Jmm Pub Date : 2024-12-01 Epub Date: 2024-10-04 DOI:10.1007/s00109-024-02491-z
Dong Yeon Kim, Young-Hee Kang, Min-Kyung Kang
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Abstract

Skin wound healing is a complex process involving various cellular and molecular events. However, chronic wounds, particularly in individuals with diabetes, often experience delayed wound healing, potentially leading to diabetic skin complications. In this study, we examined the effects of umbelliferone on skin wound healing using dermal fibroblasts and skin tissues from a type 2 diabetic mouse model. Our results demonstrate that umbelliferone enhances several crucial aspects of wound healing. It increases the synthesis of key extracellular matrix components such as collagen I and fibronectin, as well as proteins involved in cell migration like EVL and Fascin-1. Additionally, umbelliferone boosts the secretion of angiogenesis factors VEGF and HIF-1α, enhances the expression of cell adhesion proteins including E-cadherin, ZO-1, and Occludin, and elevates levels of skin hydration-related proteins like HAS2 and AQP3. Notably, umbelliferone reduces the expression of HYAL, thereby potentially decreasing tissue permeability. As a result, it promotes extracellular matrix deposition, activates cell migration and proliferation, and stimulates pro-angiogenic factors while maintaining skin barrier functions. In summary, these findings underscore the therapeutic potential of umbelliferone in diabetic wound care, suggesting its promise as a treatment for diabetic skin complications. KEY MESSAGES: Umbelliferone suppressed the breakdown of extracellular matrix components in the skin dermis while promoting their synthesis. Umbelliferone augmented the migratory and proliferative capacities of fibroblasts. Umbelliferone activated the release of angiogenic factors in diabetic wounds, leading to accelerated wound healing. Umbelliferone bolstered intercellular adhesion and reinforced the skin barrier by preventing moisture loss and preserving skin hydration.

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伞形酮能缓解高糖暴露的真皮成纤维细胞和糖尿病皮肤的伤口愈合障碍和皮肤屏障功能障碍。
皮肤伤口愈合是一个复杂的过程,涉及各种细胞和分子事件。然而,慢性伤口,尤其是糖尿病患者的伤口愈合往往出现延迟,有可能导致糖尿病皮肤并发症。在这项研究中,我们使用 2 型糖尿病小鼠模型的真皮成纤维细胞和皮肤组织研究了伞形酮对皮肤伤口愈合的影响。我们的研究结果表明,伞形酮能增强伤口愈合的几个关键方面。它能增加细胞外基质关键成分(如胶原蛋白 I 和纤维连接蛋白)以及参与细胞迁移的蛋白质(如 EVL 和 Fascin-1)的合成。此外,伞形酮还能促进血管生成因子 VEGF 和 HIF-1α 的分泌,增强 E-cadherin、ZO-1 和 Occludin 等细胞粘附蛋白的表达,并提高 HAS2 和 AQP3 等皮肤水合相关蛋白的水平。值得注意的是,伞形酮能减少 HYAL 的表达,从而降低组织的渗透性。因此,它能促进细胞外基质沉积,激活细胞迁移和增殖,刺激促血管生成因子,同时保持皮肤屏障功能。总之,这些发现强调了伞形酮在糖尿病伤口护理方面的治疗潜力,表明它有望成为糖尿病皮肤并发症的治疗药物。关键信息:伞形酮抑制皮肤真皮层细胞外基质成分的分解,同时促进其合成。伞形酮能增强成纤维细胞的迁移和增殖能力。伞形酮能激活糖尿病伤口血管生成因子的释放,从而加速伤口愈合。伞形酮增强了细胞间的粘附力,并通过防止水分流失和保持皮肤水合来强化皮肤屏障。
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来源期刊
Journal of Molecular Medicine-Jmm
Journal of Molecular Medicine-Jmm 医学-医学:研究与实验
CiteScore
9.30
自引率
0.00%
发文量
100
审稿时长
1.3 months
期刊介绍: The Journal of Molecular Medicine publishes original research articles and review articles that range from basic findings in mechanisms of disease pathogenesis to therapy. The focus includes all human diseases, including but not limited to: Aging, angiogenesis, autoimmune diseases as well as other inflammatory diseases, cancer, cardiovascular diseases, development and differentiation, endocrinology, gastrointestinal diseases and hepatology, genetics and epigenetics, hematology, hypoxia research, immunology, infectious diseases, metabolic disorders, neuroscience of diseases, -omics based disease research, regenerative medicine, and stem cell research. Studies solely based on cell lines will not be considered. Studies that are based on model organisms will be considered as long as they are directly relevant to human disease.
期刊最新文献
Correction to: Liquid biopsies for multiple myeloma in a time of precision medicine. Extragustatory bitter taste receptors in head and neck health and disease. Emerging technologies in regenerative medicine: The future of wound care and therapy. Umbelliferone alleviates impaired wound healing and skin barrier dysfunction in high glucose-exposed dermal fibroblasts and diabetic skins. Hypoxia drives estrogen receptor β-mediated cell growth via transcription activation in non-small cell lung cancer.
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