螯合酸通过钙输入介导间充质干细胞成骨分化假说:原始研究与计算机模拟。

IF 2.1 4区 生物学 Q4 CELL BIOLOGY Histochemistry and Cell Biology Pub Date : 2024-11-30 DOI:10.1007/s00418-024-02342-5
Temur Nasibov, Anna Gorokhova, Ekaterina Porokhova, Valeria Shupletsova, Kristina Yurova, Elena Avdeeva, Usman Bariev, Larisa Litvinova, Mikhail Belousov, Igor Khlusov
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引用次数: 0

摘要

Chelidonic acid (ChA)是一种体外和体内均能诱导间充质干细胞(MSCs)向成骨细胞分化和矿化骨基质(MBM)形成的小分子物质。然而,这些作用的分子机制尚不清楚。因此,对ChA的潜在分子靶点进行了计算机模拟。ChA是从雪莲中分离得到的。茜素红染色检测ChA诱导MSCs体外分化成成骨细胞合成MBM的能力。采用同种骨髓在磷酸钙包覆钛板上皮下植入的方法,对小鼠进行异位成骨原位实验,研究ChA的成骨活性。利用DIGEP-Pred web service模拟ChA对基因表达的影响,并进行过代表分析,寻找共同的本体和途径。在21天的MSC培养中,ChA线性增加了单个MBM位点的数量(R2 = 0.92, p = 0.039)和MBM位点的总面积(R2 = 0.96, p = 0.019)。口服ChA可使原位骨和骨髓形成提高2 - 3倍。在硅模型中发现306个基因(包括7个钙输入基因)和9个信号通路可能参与ChA成骨作用和MSCs中的钙代谢。计算机分析揭示了钙流入间充质干细胞并向成骨细胞分化的一系列关键信号通路和基因,作为研究ChA成骨作用的真实基因表达和分子机制的第一个候选靶点。
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A hypothesis of mesenchymal stem cell osteogenic differentiation mediated by chelidonic acid through the calcium import: original research and computer simulation.

Chelidonic acid (ChA) is small molecule capable of inducing the differentiation of mesenchymal stem cells (MSCs) into osteoblasts and the formation of mineralized bone matrix (MBM) both in vitro and in vivo. However, the molecular mechanisms underlying these effects are unknown. Therefore, in silico modelling of potential molecular targets of ChA was performed. ChA was isolated from Saussurea controversa. The ability of ChA to induce in vitro differentiation MSCs into osteoblasts synthesizing MBM was detected using alizarin red staining. ChA osteogenic activity was studied in mice by in situ test of ectopic osteogenesis, using the subcutaneous implantation of syngeneic bone marrow on the calcium phosphate coated titanium plates. DIGEP-Pred web service was used to simulate in silico the effect of ChA on gene expression, and overrepresentation analysis to search for common ontologies and pathways. ChA linearly increased the number of single (R2 = 0.92, p = 0.039) and the total areas of MBM sites (R2 = 0.96, p = 0.019) in a 21-day MSC culture. Oral administration of ChA led to two to three times improved bone and bone marrow formation in situ. In silico modelling identified 306 genes (including 7 calcium import genes) and 9 signalling pathways potentially involved in ChA osteogenic effect and calcium metabolism in MSCs. In silico analysis revealed a list of key signalling pathways and genes for calcium influx into MSCs and their differentiation into osteoblasts as the first target candidates for studying real gene expression and molecular mechanisms of the ChA osteogenic effects.

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来源期刊
Histochemistry and Cell Biology
Histochemistry and Cell Biology 生物-细胞生物学
CiteScore
4.90
自引率
8.70%
发文量
112
审稿时长
1 months
期刊介绍: Histochemistry and Cell Biology is devoted to the field of molecular histology and cell biology, publishing original articles dealing with the localization and identification of molecular components, metabolic activities and cell biological aspects of cells and tissues. Coverage extends to the development, application, and/or evaluation of methods and probes that can be used in the entire area of histochemistry and cell biology.
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