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人月经血来源的干细胞分泌的ECM1通过FoxO1和mTOR信号通路直接与LRP1α相互作用,以改善肝纤维化。

Human menstrual blood-derived stem cells secreted ECM1 directly interacts with LRP1α to ameliorate hepatic fibrosis through FoxO1 and mTOR signaling pathway.

作者信息

Fang Yangxin, Chen Lin, Yuan Yin, Zhou Sining, Fu Jiamin, Zhang Qi, Zhang Ning, Huang Yuqi, Li Yifei, Yuan Li, Chen Lijun, Xiang Charlie

机构信息

State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, National Clinical Research Center for Infectious Diseases, National Medical Center for Infectious Diseases, Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, The First Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou, Zhejiang, 310003, China.

Research Units of Infectious Disease and Microecology, Chinese Academy of Medical Sciences, Beijing, 100730, China.

出版信息

Stem Cell Res Ther. 2025 May 7;16(1):230. doi: 10.1186/s13287-025-04351-0.

Abstract

BACKGROUND

Human menstrual blood-derived stem cells (MenSCs), a major class of mesenchymal stem cells (MSCs), modulate intercellular signals via paracrine factors. Previous studies found that MenSC-derived secretomes exert protective effects against liver fibrosis. However, the underlying mechanisms of these observations remain unclear.

METHODS

Extracellular Matrix Protein 1 (ECM1), identified in MenSCs culture medium using mass spectrometry, was employed to stably overexpress ECM1-HA or silence in MenSCs using lentiviral vectors. These genetically engineered cells were either intravenously injected into the carbon tetrachloride (CCl)-induced liver fibrosis mice or co-cultured with hepatic stellate cells (HSCs)-LX-2. The interaction between ECM1 and low-density lipoprotein receptor-related protein 1α (LRP1α) was confirmed using Co-Immunoprecipitation (Co-ip), Duolink Proximity Ligation Assays (PLA) and pull-down. LRP1 deficient mice were generated via intravenous administration of adeno-associated-virus-8. The downstream molecular mechanisms were characterized by non-target metabolomics and multiplex immunohistochemical staining. RNA sequencing was performed to evaluate the genetic alterations in various genes within the MenSCs.

RESULTS

MenSC-secreted ECM1 exhibits potential to ameliorate liver fibrosis by inactivating HSCs, improving liver functions, and reducing collagen deposition in both cellular and mouse model of the CCl-induced liver fibrosis. Mechanistically, a novel interaction was identified that ECM1 directly bound to cell surface receptor LRP1α. Notably, the antifibrotic efficacy of MenSC was negated in LRP1-deficient cells and mice. Moreover, the ECM1-LRP1 axis contributed to the alleviation of liver fibrosis by suppressing AKT/mTOR while activating the FoxO1 signaling pathway, thereby facilitating pyrimidine and purine metabolism. Additionally, ECM1-modified MenSCs regulate the transcription of intrinsic cytokine genes, further mitigating liver fibrosis.

CONCLUSIONS

These findings highlight an extensive network of ECM1-LRP1 interaction, which serve as a link for providing promising insights into the mechanism of MenSC-based drug development for liver fibrosis. Our study also potentially presents novel avenues for clinical antifibrotic therapy.

摘要

背景

人月经血源性干细胞(MenSCs)是间充质干细胞(MSCs)的主要类别,通过旁分泌因子调节细胞间信号。先前的研究发现,MenSC衍生的分泌组对肝纤维化具有保护作用。然而,这些观察结果的潜在机制仍不清楚。

方法

通过质谱在MenSCs培养基中鉴定出细胞外基质蛋白1(ECM1),使用慢病毒载体在MenSCs中稳定过表达ECM1-HA或使其沉默。将这些基因工程细胞静脉注射到四氯化碳(CCl)诱导的肝纤维化小鼠体内,或与肝星状细胞(HSCs)-LX-2共培养。使用免疫共沉淀(Co-ip)、Duolink邻近连接分析(PLA)和下拉实验证实了ECM1与低密度脂蛋白受体相关蛋白1α(LRP1α)之间的相互作用。通过静脉注射腺相关病毒8产生LRP1缺陷小鼠。通过非靶向代谢组学和多重免疫组化染色对下游分子机制进行了表征。进行RNA测序以评估MenSCs内各种基因的遗传改变。

结果

MenSC分泌的ECM1通过使HSCs失活、改善肝功能和减少CCl诱导的肝纤维化细胞模型和小鼠模型中的胶原沉积,具有改善肝纤维化的潜力。机制上,鉴定出一种新的相互作用,即ECM1直接与细胞表面受体LRP1α结合。值得注意的是,在LRP1缺陷的细胞和小鼠中,MenSC的抗纤维化功效被消除。此外,ECM1-LRP1轴通过抑制AKT/mTOR同时激活FoxO1信号通路,促进嘧啶和嘌呤代谢,从而有助于减轻肝纤维化。此外,ECM1修饰的MenSCs调节内源性细胞因子基因的转录,进一步减轻肝纤维化。

结论

这些发现突出了ECM1-LRP1相互作用的广泛网络,这为基于MenSC的肝纤维化药物开发机制提供了有前景的见解。我们的研究还可能为临床抗纤维化治疗提供新的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9252/12060366/c2af0cd86721/13287_2025_4351_Fig1_HTML.jpg

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