间充质干细胞
氧化应激
伤口愈合
化学
海藻糖
成纤维细胞
内生
细胞生物学
真皮成纤维细胞
活性氧
抗氧化剂
活力测定
旁分泌信号
细胞培养
细胞
炎症
干细胞
生物化学
氧化磷酸化
药理学
转录组
角质形成细胞
组织工程
分子生物学
超氧化物歧化酶
细胞损伤
作者
Z P Wang,Xin Liu,Xin Chen,Jie Jing,Qiuyang Chen,Feiyang Zhou,Ziqin Chen,Wei Fang,Li Wang,Yuanyuan Wang,Zian Li,Qiang Wang,Jing Gao,J. Zhao,Guangchao Xu,Rongqing Pang
标识
DOI:10.1177/21621918261438590
摘要
OBJECTIVE: Oxidative stress limits mesenchymal stem cell (MSC) efficacy in tissue repair by reducing retention and survival at injury sites. Endogenous production of trehalose may enhance MSC resilience and promote skin wound healing. APPROACH: imaging. Histology and immunofluorescence were used to assess wound healing, collagen deposition, and angiogenesis. Conditioned medium (CM) was used to evaluate paracrine functions. RNA-seq identified differentially expressed genes, and mechanisms were validated using the NRF2 inhibitor ML385. RESULTS: , TPS1-MSCs displayed higher retention, accelerated healing, and neovascularization. CM from TPS1-MSCs promoted keratinocyte migration, fibroblast collagen secretion, and enhanced the tube-forming capacity of endothelial cells. Transcriptome analysis revealed enrichment in the NRF2-HMOX1 pathway. TPS1-MSCs showed elevated levels of p62, nuclear NRF2, and HMOX1. ML385 treatment impaired the observed antioxidant capacity. INNOVATION: Engineering MSCs for endogenous trehalose synthesis enhanced oxidative stress resistance and retention through NRF2-HMOX1 activation, suggesting a potential novel MSC-based wound repair strategy. CONCLUSION: TPS1-MSCs improved antioxidant capacity and wound healing, potentially through the NRF2-HMOX1 pathway, and may represent a promising therapy for skin wounds. [Figure: see text] [Figure: see text].
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