上睑下垂
外体
细胞生物学
内皮祖细胞
祖细胞
分泌物
微泡
生物
化学
细胞凋亡
医学
干细胞
内科学
小RNA
程序性细胞死亡
生物化学
基因
作者
Wu Xiong,Xi Zhang,Jianda Zhou,Jie Chen,Yu Liu,Yu Yan,Mei-xin Tan,Hongyu Huang,Yuqi Si,Wei Yang
出处
期刊:Cytotherapy
[Elsevier]
日期:2023-09-26
卷期号:26 (1): 36-50
被引量:9
标识
DOI:10.1016/j.jcyt.2023.08.013
摘要
Abstract
Background aims
Treating chronic non-healing diabetic wounds and achieving complete skin regeneration has always been a critical clinical challenge. Methods
In order to address this issue, researchers conducted a study aiming to investigate the role of miR-126-3p in regulating the downstream gene PIK3R2 and promoting diabetic wound repair in endothelial progenitor cell (EPC)–derived extracellular vesicles. The study involved culturing EPCs with astragaloside IV, transfecting them with miR-126-3p inhibitor or mock plasmid, interfering with high glucose-induced damage in human umbilical vein endothelial cells (HUVECs) and treating diabetic skin wounds in rats. Results
The healing of rat skin wounds was observed through histological staining. The results revealed that treatment with miR-126-3p–overexpressing EPC-derived extracellular vesicles accelerated the healing of rat skin wounds and resulted in better tissue repair with slower scar formation. In addition, the transfer of EPC-derived extracellular vesicles with high expression of miR-126-3p to high glucose-damaged HUVECs increased their proliferation and invasion, reduced necrotic and apoptotic cell numbers and improved tube formation. In this process, the expression of angiogenic factors vascular endothelial growth factor (VEGF)A, VEGFB, VEGFC, basic fibroblast growth factor and Ang-1 significantly increased, whereas the expression of caspase-1, NRLP3, interleukin-1β, inteleukin-18, PIK3R2 and SPRED1 was suppressed. Furthermore, miR-126-3p was able to target and inhibit the expression of the PIK3R2 gene, thereby restoring the proliferation and migration ability of high glucose-damaged HUVEC. Conclusions
In summary, these research findings demonstrate the important role of miR-126-3p in regulating downstream genes and promoting diabetic wound repair, providing a new approach for treating chronic non-healing diabetic wounds.
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