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一种新型 OsteomiRs 表达谱,用于人羊膜间充质干细胞的成骨细胞分化。

A Novel OsteomiRs Expression Signature for Osteoblast Differentiation of Human Amniotic Membrane-Derived Mesenchymal Stem Cells.

机构信息

Facultad de Ciencias Químico Biológicas, Universidad Autónoma de Sinaloa, Culiacán Sinaloa, Mexico.

Departamento de Bioquímica y Medicina Molecular, Facultad de Medicina, Universidad Autónoma de Nuevo León, Monterrey, NL, Mexico.

出版信息

Biomed Res Int. 2019 Mar 24;2019:8987268. doi: 10.1155/2019/8987268. eCollection 2019.

Abstract

Human amniotic membrane-derived mesenchymal stem cells (hAM-MSCs) are a potential source of cells for therapeutic applications in bone regeneration. Recent evidence reveals a role for microRNAs (miRNAs) in the fine-tuning regulation of osteogenesis (osteomiRs) suggesting that they can be potential targets for skeleton diseases treatment. However, the functions of osteomiRs during differentiation of hAM-MSCs to osteogenic lineage are poorly understood. In this investigation, we discovered a novel miRNAs expression signature corresponding to the matrix maturation (preosteoblast) and mineralization (mature osteoblast) stages of dexamethasone-induced osteoblastic differentiation of hAM-MSCs. Comprehensive miRNAs profiling using TaqMan Low Density Arrays showed that 18 miRNAs were significantly downregulated, whereas 3 were upregulated in the matrix maturation stage (7 days after osteogenic induction) in comparison to undifferentiated cells used as control. Likewise, 47 miRNAs were suppressed and 25 were overexpressed at mineralization stage (14 days after osteogenic induction) in comparison to osteoprogenitors cells. Five out 93 miRNAs (miR-19b-3p, miR-335-3p, miR-197-3p, miR-34b-39, and miR-576-3p) were regulated at both 7 and 14 days suggesting a role in coordinated guidance of osteoblastic differentiation. Exhaustive bioinformatic predictions showed that the set of modulated miRNAs may target multiple genes involved in regulatory networks driving osteogenesis including key members of BMP, TGF-, and WNT/-catenin signaling pathways. Of these miRNAs, we selected miR-204, a noncoding small RNA that was expressed at matrix maturation phase and downregulated at maturation stage, for further functional studies. Interestingly, gain-of-function analysis showed that restoration of miR-204 using RNA mimics at the onset of mineralization stage dramatically inhibited deposition of calcium and osteogenic maturation of hAM-MSCs. Moreover analysis detected a conserved miR-204 binding site at the 3'UTR of TGF-R2 receptor gene. Using luciferase assays we confirmed that TGF-R2 is a downstream effector of miR-204. In conclusion, we have identified a miRNAs signature for osteoblast differentiation of hAM-MSCs. The results from this study suggested that these miRNAs may act as potential inhibitors or activators of osteogenesis. Our findings also points towards the idea that miR-204/TGF-R2 axis has a regulatory role in differentiation of hAM-MSCs committed to osteoblastic lineage.

摘要

人羊膜间充质干细胞(hAM-MSCs)是治疗骨再生的细胞治疗的潜在来源。最近的证据表明 microRNAs(miRNAs)在成骨的精细调控(osteomiRs)中发挥作用,表明它们可能是骨骼疾病治疗的潜在靶点。然而,在 hAM-MSCs 向成骨谱系分化过程中,osteomiRs 的功能仍知之甚少。在这项研究中,我们发现了一个新的 miRNAs 表达谱,与地塞米松诱导的 hAM-MSCs 成骨分化的基质成熟(前成骨细胞)和矿化(成熟成骨细胞)阶段相对应。使用 TaqMan 低密度阵列进行全面的 miRNAs 谱分析显示,与未分化细胞(用作对照)相比,在基质成熟阶段(成骨诱导后 7 天)有 18 个 miRNAs 显著下调,而 3 个 miRNAs 上调。同样,在矿化阶段(成骨诱导后 14 天)有 47 个 miRNAs 被抑制,而 25 个 miRNAs 表达上调。在 93 个 miRNAs 中,有 5 个(miR-19b-3p、miR-335-3p、miR-197-3p、miR-34b-39 和 miR-576-3p)在 7 天和 14 天都受到调节,表明它们在成骨分化的协调指导中发挥作用。详尽的生物信息学预测表明,被调节的 miRNAs 可能靶向多个参与调控网络的基因,这些基因驱动成骨,包括 BMP、TGF-β和 WNT/-catenin 信号通路的关键成员。在这些 miRNAs 中,我们选择了 miR-204,一种在基质成熟阶段表达并在成熟阶段下调的非编码小 RNA,用于进一步的功能研究。有趣的是,功能获得分析表明,在矿化阶段开始时使用 RNA 模拟物恢复 miR-204 会显著抑制 hAM-MSCs 钙沉积和成骨成熟。此外,分析检测到 TGF-R2 受体基因 3'UTR 上有一个保守的 miR-204 结合位点。我们通过荧光素酶检测证实,TGF-R2 是 miR-204 的下游效应子。总之,我们确定了 hAM-MSCs 成骨分化的 miRNAs 特征。这项研究的结果表明,这些 miRNAs 可能作为成骨的潜在抑制剂或激活剂发挥作用。我们的发现还表明,miR-204/TGF-R2 轴在 hAM-MSCs 向成骨谱系分化中具有调节作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9cb8/6451790/19d758ff7c3b/BMRI2019-8987268.001.jpg

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