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NF-κB signaling is key in the wound healing processes of silk fibroin

丝素 伤口愈合 纤维连接蛋白 NF-κB 基因敲除 波形蛋白 细胞生物学 细胞周期蛋白D1 αBκ 信号转导 癌症研究 化学 分子生物学 生物 材料科学 细胞 免疫学 细胞周期 生物化学 丝绸 细胞外基质 细胞凋亡 免疫组织化学 复合材料
作者
Ye Ri Park,Md. Tipu Sultan,Hyun-Jung Park,Jungmin Lee,Hyung Woo Ju,Ok Joo Lee,Dong Jin Lee,David L. Kaplan,Chan Hum Park
出处
期刊:Acta Biomaterialia [Elsevier BV]
卷期号:67: 183-195 被引量:237
标识
DOI:10.1016/j.actbio.2017.12.006
摘要

Silk fibroin (SF) is a well-studied biomaterial for tissue engineering applications including wound healing. However, the signaling mechanisms underlying the impact of SF on this phenomenon have not been determined. In this study, through microarray analysis, regulatory genes of NF-ĸB signaling were activated in SF-treated NIH3T3 cells along with other genes. Immunoblot analysis confirmed the activation of the NF-ĸB signaling pathway as SF induced protein expression levels of IKKα, IKKβ, p65, and the degradation of IκBα. The treatment of NIH3T3 cells with SF also increased the expression of cyclin D1, vimentin, fibronectin, and vascular endothelial growth factor (VEGF). The expression of these factors by SF treatment was abrogated when NF-ĸB was inhibited by a pharmacological inhibitor Bay 11-7082. Knockdown of NF-ĸB using siRNA of IKKα and IKKβ also inhibited the SF-induced wound healing response of the NIH3T3 cells in a wound scratch assay. Collectively, these results indicated that SF-induced wound healing through the canonical NF-κB signaling pathway via regulation of the expression of cyclin D1, vimentin, fibronectin, and VEGF by NIH3T3 cells. Using an in vivo study with a partial-thickness excision wound in rats we demonstrated that SF-induced wound healing via NF-κB regulated proteins including cyclin D1, fibronectin, and VEGF. The in vitro and in vivo data suggested that SF induced wound healing via modulation of NF-ĸB signaling regulated proteins. Silk fibroin has been effectively used as a dressing for wound treatment for more than a century. However, mechanistic insight into the basis for wound healing via silk fibroin has not been elucidated. Here we report a key mechanism involved in silk fibroin induced wound healing both in vitro and in vivo. Using genetic- and protein-level analyses, NF-κB signaling was found to regulate silk fibroin-induced wound healing by modulating target proteins. Thus, the NF-κB signaling pathway may be utilized as a therapeutic target during the formulation of silk fibroin-based biomaterials for wound healing and tissue engineering.
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