4.7 Article

bFGF Promotes the Migration of Human Dermal Fibroblasts under Diabetic Conditions through Reactive Oxygen Species Production via the PI3K/Akt-Rac1-JNK Pathways

期刊

出版社

IVYSPRING INT PUBL
DOI: 10.7150/ijbs.11921

关键词

bFGF; human dermal fibroblast

资金

  1. Zhejiang Provincial Program for the Cultivation of High-level Innovative Health talents
  2. National Natural Science Funding of China [81372112, 81372064, 81302775, 81472165]
  3. Zhejiang Provincial Natural Science Foundation of China [Y14H150023, Y14H090062, LY13H030008, LY14H150008]
  4. State Key Basic Research Development Program [2012CB518105]
  5. Zhejiang Provincial Project of Key Group [2010R50042]

向作者/读者索取更多资源

Fibroblasts play a pivotal role in the process of cutaneous wound repair, whereas their migratory ability under diabetic conditions is markedly reduced. In this study, we investigated the effect of basic fibroblast growth factor (bFGF) on human dermal fibroblast migration in a high-glucose environment. bFGF significantly increased dermal fibroblast migration by increasing the percentage of fibroblasts with a high polarity index and reorganizing F-actin. A significant increase in intracellular reactive oxygen species (ROS) was observed in dermal fibroblasts under diabetic conditions following bFGF treatment. The blockage of bFGF-induced ROS production by either the ROS scavenger N-acetyl-L-cysteine (NAC) or the NADPH oxidase inhibitor diphenylene iodonium chloride (DPI) almost completely neutralized the increased migration rate of dermal fibroblasts promoted by bFGF. Akt, Rac1 and JNK were rapidly activated by bFGF in dermal fibroblasts, and bFGF-induced ROS production and promoted dermal fibroblast migration were significantly attenuated when suppressed respectively. In addition, bFGF-induced increase in ROS production was indispensable for the activation of focal adhesion kinase (FAK) and paxillin. Therefore, our data suggested that bFGF promotes the migration of human dermal fibroblasts under diabetic conditions through increased ROS production via the PI3K/Akt-Rac1-JNK pathways.

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