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Gas plasma-spurred wound healing is accompanied by regulation of focal adhesion, matrix remodeling, and tissue oxygenation

机译:气体等离子体 - 刺激伤口愈合伴随着调节局灶性粘附,基质重塑和组织氧合

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In response to injury, efficient migration of skin cells to rapidly close the wound and restore barrier function requires a range of coordinated processes in cell spreading and migration. Gas plasma technology produces therapeutic reactive species that promote skin regeneration by driving proliferation and angiogenesis. However, the underlying molecular mechanisms regulating gas plasma-aided cell adhesion and matrix remodeling essential for wound closure remain elusive. Here, we combined in vitro analyses in primary dermal fibroblasts isolated from murine skin with in vivo studies in a murine wound model to demonstrate that gas plasma treatment changed phosphorylation of signaling molecules such as focal adhesion kinase and paxillin α in adhesion-associated complexes. In addition to cell spreading and migration, gas plasma exposure affected cell surface adhesion receptors (e.g., integrinα5β1, syndecan 4), structural proteins (e.g., vinculin, talin, actin), and transcription of genes associated with differentiation markers of fibroblasts-to-myofibroblasts and epithelial-to-mesenchymal transition, cellular protrusions, fibronectin fibrillogenesis, matrix metabolism, and matrix metalloproteinase activity. Finally, we documented that gas plasma exposure increased tissue oxygenation and skin perfusion during ROS-driven wound healing. Altogether, these results provide critical insights into the molecular machinery of gas plasma-assisted wound healing mechanisms.
机译:响应于损伤,有效的皮肤细胞迁移到快速关闭伤口和恢复屏障功能需要一系列的细胞扩散和迁移的协调过程。气体等离子体技术生产通过驱动增殖和血管生成来促进皮肤再生的治疗反应性物种。然而,调节气体等离子体辅助细胞粘附和基质重塑的底层分子机制仍然是难以捉摸的。在此,我们在小鼠皮肤中分离的原发性皮肤成纤维细胞中的体外分析与小鼠伤口模型中的体内研究分离,以证明气体等离子体处理在粘附相关络合物中改变了信号传导分子等信号分子的磷酸化,例如侧重粘附激酶和帕雪林α。除了细胞扩散和迁移之外,气体等离子体暴露影响细胞表面粘附受体(例如,整合蛋白α5β1,同癸烷4),结构蛋白(例如,Vinculin,山雀,actin)和与成纤维细胞分化标志物相关的基因的转录 - 肌纤维素细胞和上皮 - 间充质转变,细胞突起,纤连蛋白原纤化,基质代谢和基质金属蛋白酶活性。最后,我们记录了在ROS驱动的伤口愈合期间增加了气体等离子体暴露增加了组织氧合和皮肤灌注。总共,这些结果为气体等离子体辅助伤口愈合机制的分子机械提供了关键的见解。

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