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胰岛素通过抑制 IIS/PI3K/AKT/mTOR 通路轴促进人牙髓干细胞的成骨能力。

Insulin promotes the bone formation capability of human dental pulp stem cells through attenuating the IIS/PI3K/AKT/mTOR pathway axis.

机构信息

Institute of Stomatology & Oral Maxilla Facial Key Laboratory, First Medical Center of Chinese PLA General Hospital, Beijing, China.

Department of Temporomandibular Joint, School and Hospital of Stomatology, Guangdong Engineering Research Center of Oral Restoration and Reconstruction & Guangzhou Key Laboratory of Basic and Applied Research of Oral Regenerative Medicine, Guangzhou Medical University, Guangzhou, China.

出版信息

Stem Cell Res Ther. 2024 Jul 29;15(1):227. doi: 10.1186/s13287-024-03843-9.

Abstract

BACKGROUND

Insulin has been known to regulate bone metabolism, yet its specific molecular mechanisms during the proliferation and osteogenic differentiation of dental pulp stem cells (DPSCs) remain poorly understood. This study aimed to explore the effects of insulin on the bone formation capability of human DPSCs and to elucidate the underlying mechanisms.

METHODS

Cell proliferation was assessed using a CCK-8 assay. Cell phenotype was analyzed by flow cytometry. Colony-forming unit-fibroblast ability and multilineage differentiation potential were evaluated using Toluidine blue, Oil red O, Alizarin red, and Alcian blue staining. Gene and protein expressions were quantified by real-time quantitative polymerase chain reaction and Western blotting, respectively. Bone metabolism and biochemical markers were analyzed using electrochemical luminescence and chemical colorimetry. Cell adhesion and growth on nano-hydroxyapatite/collagen (nHAC) were observed with a scanning electron microscope. Bone regeneration was assessed using micro-CT, fluorescent labeling, immunohistochemical and hematoxylin and eosin staining.

RESULTS

Insulin enhanced the proliferation of human DPSCs as well as promoted mineralized matrix formation in a concentration-dependent manner. 10 M insulin significantly up-regulated osteogenic differentiation-related genes and proteins markedly increased the secretion of bone metabolism and biochemical markers, and obviously stimulated mineralized matrix formation. However, it also significantly inhibited the expression of genes and proteins of receptors and receptor substrates associated with insulin/insulin-like growth factor-1 signaling (IIS) pathway, obviously reduced the expression of the phosphorylated PI3K and the ratios of the phosphorylated PI3K/total PI3K, and notably increased the expression of the total PI3K, phosphorylated AKT, total AKT and mTOR. The inhibitor LY294002 attenuated the responsiveness of 10 M insulin to IIS/PI3K/AKT/mTOR pathway axis, suppressing the promoting effect of insulin on cell proliferation, osteogenic differentiation and bone formation. Implantation of 10 M insulin treated DPSCs into the backs of severe combined immunodeficient mice and the rabbit jawbone defects resulted in enhanced bone formation.

CONCLUSIONS

Insulin induces insulin resistance in human DPSCs and effectively promotes their proliferation, osteogenic differentiation and bone formation capability through gradually inducing the down-regulation of IIS/PI3K/AKT/mTOR pathway axis under insulin resistant states.

摘要

背景

胰岛素已被证实可调节骨代谢,但它在牙髓干细胞(DPSCs)增殖和成骨分化过程中的具体分子机制仍知之甚少。本研究旨在探讨胰岛素对人 DPSCs 成骨能力的影响,并阐明其潜在机制。

方法

采用 CCK-8 法检测细胞增殖情况。采用流式细胞术分析细胞表型。通过甲苯胺蓝、油红 O、茜素红和阿利新蓝染色评估集落形成单位-成纤维细胞能力和多能分化潜能。通过实时定量聚合酶链反应和 Western 印迹分别定量基因和蛋白表达。通过电化学发光和化学比色法分析骨代谢和生化标志物。通过扫描电子显微镜观察纳米羟基磷灰石/胶原(nHAC)上的细胞黏附和生长。通过微计算机断层扫描、荧光标记、免疫组织化学和苏木精和伊红染色评估骨再生情况。

结果

胰岛素以浓度依赖的方式增强人 DPSCs 的增殖,并促进矿化基质的形成。10 μM 胰岛素显著上调成骨分化相关基因和蛋白,明显增加骨代谢和生化标志物的分泌,明显刺激矿化基质形成。然而,它还显著抑制与胰岛素/胰岛素样生长因子-1 信号通路(IIS)相关的受体和受体底物的基因和蛋白表达,明显降低 PI3K 的磷酸化和 PI3K 总/磷酸化 PI3K 的比值,并显著增加总 PI3K、磷酸化 AKT、总 AKT 和 mTOR 的表达。抑制剂 LY294002 减弱了 10 μM 胰岛素对 IIS/PI3K/AKT/mTOR 通路轴的反应性,抑制了胰岛素对细胞增殖、成骨分化和骨形成的促进作用。将 10 μM 胰岛素处理的 DPSCs 植入严重联合免疫缺陷小鼠背部和兔颌骨缺损部位,可增强骨形成。

结论

胰岛素在人 DPSCs 中诱导胰岛素抵抗,并在胰岛素抵抗状态下通过逐渐下调 IIS/PI3K/AKT/mTOR 通路轴,有效促进其增殖、成骨分化和骨形成能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d635/11287875/e5d84666a3e1/13287_2024_3843_Fig1_HTML.jpg

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