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缺氧间充质干细胞来源的小细胞外囊泡通过递送 miR-17-5p 缓解椎间盘退变。

Small extracellular vesicles from hypoxic mesenchymal stem cells alleviate intervertebral disc degeneration by delivering miR-17-5p.

机构信息

Department of Spine Surgery, Affiliated ZhongDa Hospital, School of Medicine, Southeast University, Nanjing, Jiangsu, 210009, China.

Department of Spine Surgery, Affiliated ZhongDa Hospital, School of Medicine, Southeast University, Nanjing, Jiangsu, 210009, China.

出版信息

Acta Biomater. 2022 Mar 1;140:641-658. doi: 10.1016/j.actbio.2021.11.044. Epub 2021 Dec 5.

Abstract

Minimally invasive repair strategies are a very promising approach for the treatment of intervertebral disc degeneration (IDD). In recent years, small extracellular vesicles (sEVs) secreted from mesenchymal stem cells (MSCs) have been shown great potential in alleviating IDD. However, in vitro experiments, MSCs are usually exposed to a normoxic micro-environment, which differs greatly from the hypoxic micro-environment in vivo. The primary purpose of our research was to determine whether sEVs isolated from MSCs under hypoxic status (H-sEVs) exhibit a more beneficial effect on protecting IDD compared with sEVs derived from MSCs under normoxic status (N-sEVs). A tail IDD rat model and a series of experiments in vitro were conducted to compare the beneficial effects of PBS, N-sEVs, and H-sEVs treatment. Then, to validate the role of sEVs miRNAs in IDD, a miRNA microarray sequencing analysis and a series of rescue experiments were conducted. Luciferase activity, RNA-ChIP and western blot were performed to explore the potential mechanisms. The results indicate that sEVs alleviate IDD by ameliorating the homeostatic imbalance between anabolism and catabolism in vivo and in vitro. Microarray sequencing result shows that miR-17-5p is maximally enriched in H-sEVs. Toll-like receptor 4 (TLR4) was determined to be a target downstream gene of miR-17-5p. Finally, it was found that H-sEVs miR-17-5p may modulate proliferation and synthesis of human nucleus pulposus cells (HNPCs) matrix via TLR4 pathway. In conclusion, H-sEVs miR-17-5p alleviate IDD via promoting HNPCs matrix proliferation and synthesis, providing new therapeutic targets for IDD. STATEMENT OF SIGNIFICANCE: Intervertebral disc degeneration (IDD) is the primary cause of low back pain (LBP), which is a huge burden to society. Our research demonstrates for the first time that hypoxic pretreatment of small extracellular vesicles (H-sEVs) effectively alleviated the progress of IDD. In short, in the present research, we found that H-sEVs miR-17-5p could modulate proliferation and synthesis of nucleus pulposus cells (NPCs) matrix via TLR4/PI3K/AKT pathway. Therefore, hypoxic pre-treatment is a prospective and efficient method to optimize the therapeutic effect of MSCs-derived sEVs. miRNA and MSCs-derived sEVs combination may be a promising therapeutic approach for IDD.

摘要

微创修复策略是治疗椎间盘退行性变(IDD)的一种很有前途的方法。近年来,间充质干细胞(MSCs)分泌的小细胞外囊泡(sEVs)在缓解 IDD 方面显示出巨大的潜力。然而,在体外实验中,MSCs 通常暴露于常氧微环境中,这与体内的低氧微环境有很大的不同。我们研究的主要目的是确定与来自常氧状态下的 MSC 的 sEVs(N-sEVs)相比,来自低氧状态下的 MSC 的 sEVs(H-sEVs)对保护 IDD 是否具有更有益的作用。通过尾 IDD 大鼠模型和一系列体外实验,比较 PBS、N-sEVs 和 H-sEVs 治疗的有益效果。然后,为了验证 sEVs miRNA 在 IDD 中的作用,进行了 miRNA 微阵列测序分析和一系列挽救实验。进行荧光素酶活性、RNA-ChIP 和 Western blot 以探索潜在的机制。结果表明,sEVs 通过改善体内和体外合成代谢与分解代谢之间的平衡失调来缓解 IDD。微阵列测序结果表明,miR-17-5p 在 H-sEVs 中最大程度地上调。Toll 样受体 4(TLR4)被确定为 miR-17-5p 的下游靶基因。最后,发现 H-sEVs miR-17-5p 可能通过 TLR4 途径调节人髓核细胞(HNPCs)基质的增殖和合成。总之,H-sEVs miR-17-5p 通过促进 HNPCs 基质的增殖和合成来缓解 IDD,为 IDD 提供了新的治疗靶点。

意义声明

椎间盘退行性变(IDD)是腰痛(LBP)的主要原因,给社会带来了巨大的负担。我们的研究首次表明,小细胞外囊泡(sEVs)的低氧预处理可有效缓解 IDD 的进展。简而言之,在本研究中,我们发现 H-sEVs miR-17-5p 可以通过 TLR4/PI3K/AKT 通路调节髓核细胞(NPCs)基质的增殖和合成。因此,低氧预处理是优化 MSC 衍生 sEVs 治疗效果的一种有前景和有效的方法。miRNA 和 MSC 衍生 sEVs 的联合可能是一种有前途的 IDD 治疗方法。

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