Qu Qingxi, Liu Linghong, Wang Limei, Cui Yuqian, Liu Chunxiao, Jing Xuanxuan, Xu Xiaoxuan
Department of Obstetrics and Gynecology, Qilu Hospital of Shandong University, Jinan, 250012, P.R. China.
Research Center of Stem Cell and Regenerative Medicine, Shandong University, Jinan, 250012, P.R. China.
Stem Cell Res Ther. 2024 Dec 21;15(1):496. doi: 10.1186/s13287-024-04111-6.
hucMSC-exosomes can be engineered to strengthen their therapeutic potential, and the present study aimed to explore whether hypoxic preconditioning can enhance the angiogenic potential of hucMSC-exosomes in an experimental model of POF.
Primary hucMSCs and ROMECs were isolated from fresh tissue samples and assessed through a series of experiments. Exosomes were isolated from hucMSCs under normoxic or hypoxic conditions (norm-Exos and hypo-Exos, respectively) and then characterized using classic experimental methods. Based on a series of angiogenesis-related assays, we found that hypo-Exos significantly promoted ROMEC proliferation, migration, and tube formation and increased angiogenesis-promoting molecules in vitro. Histology, immunohistochemistry, and immunofluorescence experiments in a rat model of POF demonstrated that hypoxia pretreatment strengthens the therapeutic angiogenic effect of hucMSC-exosomes in vivo. Subsequently, high-throughput miRNA sequencing, qRT‑PCR analysis, and western blotting were employed to identify the potential molecular mechanism.
We found that hypo-Exos enhance endothelial function and angiogenesis via the transfer of miR-205-5p in vitro and in vivo. Finally, based on the results of bioinformatics analysis, dual luciferase reporter assays, and gain- and loss-of-function studies, we found evidence indicating that exosomal miR-205-5p enhances angiogenesis by targeting the PTEN/PI3K/AKT/mTOR signalling pathway. These results indicated for the first time that exosomes derived from hypoxia-conditioned hucMSCs strongly enhance angiogenesis via the transfer of miR-205-5p by targeting the PTEN/PI3K/AKT/mTOR signalling pathway.
Our findings provide a theoretical basis and demonstrate the potential application of a novel cell-free approach with stem cell-derived products in the treatment of POF.
人脐带间充质干细胞外泌体(hucMSC-exosomes)可通过工程化手段增强其治疗潜力,本研究旨在探讨低氧预处理能否在卵巢早衰(POF)实验模型中增强hucMSC-exosomes的血管生成潜力。
从新鲜组织样本中分离原代人脐带间充质干细胞(hucMSCs)和大鼠卵巢微血管内皮细胞(ROMECs),并通过一系列实验进行评估。在常氧或低氧条件下从hucMSCs中分离外泌体(分别为常氧外泌体和低氧外泌体),然后用经典实验方法进行表征。基于一系列血管生成相关检测,我们发现低氧外泌体在体外显著促进ROMEC增殖、迁移和管腔形成,并增加促血管生成分子。在POF大鼠模型中进行的组织学、免疫组织化学和免疫荧光实验表明,低氧预处理可增强hucMSC-exosomes在体内的治疗性血管生成作用。随后,采用高通量miRNA测序、qRT-PCR分析和蛋白质印迹法来确定潜在的分子机制。
我们发现低氧外泌体在体外和体内通过转运miR-205-5p增强内皮功能和血管生成。最后,基于生物信息学分析、双荧光素酶报告基因检测以及功能获得和功能缺失研究的结果,我们发现有证据表明外泌体miR-205-5p通过靶向PTEN/PI3K/AKT/mTOR信号通路增强血管生成。这些结果首次表明,低氧预处理的hucMSCs来源的外泌体通过靶向PTEN/PI3K/AKT/mTOR信号通路转运miR-205-5p来强烈增强血管生成。
我们的研究结果提供了理论依据,并证明了一种新型的基于干细胞衍生产品的无细胞方法在POF治疗中的潜在应用。