Inhalable TFRC-Targeted Extracellular Vesicles Delivery of siTGF-β1 Alleviates Pulmonary Fibrosis via Dual Inhibition of Ferroptosis and Fibroblast Activation

成纤维细胞 肺纤维化 化学 细胞生物学 癌症研究 纤维化 细胞外基质 下调和上调 肌成纤维细胞 特发性肺纤维化 基因沉默 胞外囊泡 细胞外 间充质干细胞 小干扰RNA 囊性纤维化 A549电池 外体 活性氧 转染
作者
Huan Liang,Qin Lang,Zongan Liang,Jian Sun
出处
期刊:International Journal of Nanomedicine [Dove Medical Press]
卷期号:Volume 21: 1-19
标识
DOI:10.2147/ijn.s568106
摘要

Background: Idiopathic pulmonary fibrosis (IPF) is a fatal lung disorder marked by excessive extracellular matrix deposition and limited treatment options. Ferroptosis has emerged as a critical driver of epithelial injury and fibrogenesis, while fibroblast activation further accelerates pathological remodeling. The transferrin receptor (TFRC), aberrantly upregulated in both alveolar epithelial cells and fibroblasts during fibrosis, represents a promising target for precision therapy. Methods: An engineered extracellular vesicle (EV) platform was developed using human umbilical cord mesenchymal stem cell-derived vesicles (HucMSC-EVs). By conjugating a T7 peptide for TFRC targeting and encapsulating small interfering RNA against transforming growth factor-beta 1 (siTGF-β 1) through electroporation, a dual-functional nanocomplex (T7-EV/siTGF-β 1) was generated. Its delivery efficiency, molecular effects, and therapeutic outcomes were systematically evaluated in vitro and in bleomycin-induced pulmonary fibrosis mouse models. Results: T7-EV/siTGF-β 1 achieved targeted uptake by epithelial cells and fibroblasts, efficiently silencing TGF-β 1 expression. Treatment significantly inhibited iron accumulation, reactive oxygen species (ROS) generation, and lipid peroxidation, thereby suppressing ferroptosis. Concurrently, the nanocomplex reduced myofibroblast activation, collagen deposition, and fibrotic remodeling, ultimately improving lung histopathology and respiratory function. Importantly, aerosolized administration enabled preferential lung accumulation with minimal off-target distribution and excellent biocompatibility. Conclusion: This study demonstrates that simultaneous inhibition of epithelial ferroptosis and fibroblast activation via TFRC-targeted EV-mediated siRNA delivery effectively mitigates pulmonary fibrosis. T7-EV/siTGF-β 1 thus offers a synergistic and clinically translatable strategy for treating IPF and other fibrotic lung diseases. Plain Language Summary: Alveolar epithelial ferroptosis promotes fibroblast activation through TGF-β 1 signaling.TFRC is upregulated during early-to-mid fibrosis, enabling stage-specific targeted delivery.T7-modified MSC-derived EVs exhibit enhanced TFRC-mediated targeting and siRNA delivery.T7-EV/siTGF-β 1 suppresses ferroptosis and oxidative stress in bleomycin-injured epithelial cells, and inhibits TGF-β 1-mediated fibroblast activation in vitro and vivo. Keywords: extracellular vesicles, T7 peptide, TFRC, ferroptosis, pulmonary fibrosis
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