细胞外基质
脊髓
疤痕
机械转化
成纤维细胞
脊髓损伤
再生(生物学)
细胞生物学
纤维化
轴突
医学
神经科学
解剖
病理
生物
遗传学
体外
作者
Longyou Xiao,Kaixi Shi,Wen Li,Jialin Liu,Pengfei Xie,Zhicheng Hu,Yu Dai,Haiyan Weng,Qiping Yuan,Wutian Wu,Limin Rong,Liumin He
标识
DOI:10.1002/advs.202513476
摘要
Abstract Fibrotic scarring remains a critic obstacle to axonal regeneration after spinal cord injury (SCI). Current strategies primarily concentrating on eliminating extracellular matrix (ECM) components neglect their dispensable roles in maintaining tissue integrity. Here, it is reported that the mechanical strength of an integrated hydrogel composed of hyaluronic acid‐graft‐dopamine and HRR peptide directs fibroblast migration, determining ECM deposition. The mechanical strength matching that of spinal cord induces fibroblast alignment, reshaping fibrotic scars into a parallel matrix, while the mechanical strength deviating from that of spinal cord fails to do so. Mechanical investigation identifies a previously unknown Il11ra1 + /Itga11 + fibroblast subset that is specially associated with aligned infiltration and parallel ECM via mechanotransduction signaling cascade LRP6/β‐Catenin/MMP7, promoting axonal regeneration and boosting neural reconnections across the lesion. The study uncovers the mechanotransduction mechanism that remodels fibrosis progression through manipulating cellular components of fibrotic scars, providing novel insights into discovering potential therapeutic targets to resolve fibrosis after SCI.
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