纤维连接蛋白
细胞外基质
增生性瘢痕
成纤维细胞
材料科学
伤口愈合
纤维化
焦点粘着
细胞生物学
生物医学工程
生物物理学
化学
信号转导
病理
医学
免疫学
体外
生物化学
生物
作者
Qing Zhang,Lin Shi,Hong He,Xingmou Liu,Yong Huang,Dan Xu,Mengyun Yao,Ning Zhang,Yicheng Guo,Yifei Lü,Haisheng Li,Junyi Zhou,Jianglin Tan,Malcolm Xing,Gaoxing Luo
出处
期刊:ACS Nano
[American Chemical Society]
日期:2022-05-26
卷期号:16 (7): 10163-10178
被引量:83
标识
DOI:10.1021/acsnano.1c11016
摘要
Excessive extracellular matrix deposition drives fibroblasts into a state of high mechanical stress, exacerbating pathological fibrosis and hypertrophic scar formation, leading to tissue dysfunction. This study reports a minimally invasive and convenient approach to obtaining scarless tissue using a silk fibroin microneedle patch (SF MNs). We found that by tuning the MN size and density only, the biocompatible MNs significantly decreased the scar elevation index in the rabbit ear hypertrophic scar model and increased ultimate tensile strength close to regular skin. To advance our understanding of this recent approach, we built a fibroblast-populated collagen lattice system and finite element model to study MN-mediated cellular behavior of fibroblasts. We found that the MNs reduced the fibroblasts generated contraction and mechanical stress, as indicated by decreased expression of the mechanical sensitive gene ANKRD1. Specifically, SF MNs attenuated the integrin-FAK signaling and consequently down-regulated the expression of TGF-β1, α-SMA, collagen I, and fibronectin. It resulted in a low-stress microenvironment that helps to reduce scar formation significantly. Microneedles' physical intervention
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