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牙本质磷蛋白衍生的RGD肽对人牙髓干细胞体外分化和矿化的影响

Effects of Dentin Phosphophoryn-Derived RGD Peptides on the Differentiation and Mineralization of Human Dental Pulp Stem Cells In Vitro.

作者信息

Hassan Tubayesha, Qiu Youjing, Hasan Md Riasat, Saito Takashi

机构信息

Division of Clinical Cariology and Endodontology, Department of Oral Rehabilitation, School of Dentistry, Health Sciences University of Hokkaido, Ishikari-Tobetsu, Hokkaido 061-0293, Japan.

Stomatological Hospital of Xiamen Medical College and Xiamen Key Laboratory of Stomatological Disease Diagnosis and Treatment, Xiamen 361008, China.

出版信息

Biomedicines. 2022 Nov 1;10(11):2781. doi: 10.3390/biomedicines10112781.

Abstract

The purposes of this study were to investigate the in vitro effects of arginine-glycine-aspertic acid (RGD) peptides derived from human dentin phosphophoryn (DPP) on human dental pulp stem cell-proliferation, differentiation and mineralization, and to explore the mechanism of the peptides' function. The 1 M concentration of soluble DPP-derived RGD peptides, RGD-1, RGD-2 and RGD-3 were coated onto non-tissue-culture polystyrene plates, and human dental pulp stem cells (hDPSCs) were cultured on them to examine the effects of the peptides on hDPSCs. In addition, 1 M arginine-alanine-aspertic acid (RAD) peptides were used as the control. Cell proliferation of hDPSCs was promoted by all three RGD peptides. All three RGD peptides had significantly higher alkaline phosphatase (ALP) activity compared to the control. RGD-3 induced the highest ALP activity compared to the control. RGD-3 also significantly promoted the mRNA expression of the following genes: 1.69-fold in (), 1.99-fold in (), 1.51-fold in , and 2.31-fold in (), as compared to the control group. Mineralization of hDPSCs was accelerated by all three RGD peptides, RGD-3 in particular. The MAPK p38 inhibitor SB202190 inhibited the effect of RGD-3 to a level comparable to the control, observed in both ALP activity assay and Arizarin red S (ARS) staining. It suggests that the p38 pathway may be responsible for eliciting the differentiation and mineralization effects of DPP-derived RGD peptides in the hDPSCs. The mRNA expression levels of the integrins , , and were significantly upregulated. Among them, expression of was promoted 1.9-fold, 1.58-fold, 1.75-fold and 1.9-fold compared to the control. It suggests the possible involvement of these integrin channels in different subunit combinations facilitating signal transduction for differentiation of hDPSCs into odontoblasts. As conclusions human DPP-derived RGD peptides RGD-1, RGD-2 and RGD-3 promoted the proliferation, differentiation and mineralization of hDPSCs in vitro. Among the three peptides, RGD-3 had the most significant effects. It is also suggested that RGD-3 binds to integrin receptors on the surface of hDPSCs and regulates the odontogenic gene expression and differentiation via activation of p38 of MAPK pathway. DPP-derived RGD-3 may be a promising choice in the formulation of a novel material for vital pulp therapy to induce dental pulp stem cells into odontoblasts and form reparative dentin on the exposed pulp tissue.

摘要

本研究旨在探讨源自人牙本质磷蛋白(DPP)的精氨酸 - 甘氨酸 - 天冬氨酸(RGD)肽对人牙髓干细胞增殖、分化和矿化的体外影响,并探索该肽发挥功能的机制。将1M浓度的可溶性DPP衍生的RGD肽RGD - 1、RGD - 2和RGD - 3包被在非组织培养聚苯乙烯板上,然后在其上培养人牙髓干细胞(hDPSCs),以检测这些肽对hDPSCs的影响。此外,使用1M的精氨酸 - 丙氨酸 - 天冬氨酸(RAD)肽作为对照。所有三种RGD肽均促进了hDPSCs的细胞增殖。与对照组相比,所有三种RGD肽的碱性磷酸酶(ALP)活性均显著更高。与对照组相比,RGD - 3诱导的ALP活性最高。与对照组相比,RGD - 3还显著促进了以下基因的mRNA表达:(基因名称1)为1.69倍,(基因名称2)为1.99倍,(基因名称3)为1.51倍,(基因名称4)为2.31倍。所有三种RGD肽均加速了hDPSCs的矿化,尤其是RGD - 3。在ALP活性测定和茜素红S(ARS)染色中均观察到,丝裂原活化蛋白激酶(MAPK)p38抑制剂SB202190将RGD - 3的作用抑制到与对照组相当的水平。这表明p38信号通路可能是引发DPP衍生的RGD肽在hDPSCs中分化和矿化作用的原因。整合素α1、α2、α3和β1的mRNA表达水平显著上调。其中,与对照组相比,α1的表达促进了1.9倍,α2为1.58倍,α3为1.75倍,β1为1.9倍。这表明这些整合素通道可能以不同的亚基组合参与促进hDPSCs向成牙本质细胞分化的信号转导。结论是人DPP衍生的RGD肽RGD - 1、RGD - 2和RGD - 3在体外促进了hDPSCs的增殖、分化和矿化。在这三种肽中,RGD - 3的作用最为显著。还表明RGD - 3与hDPSCs表面的整合素受体结合,并通过激活MAPK途径的p38来调节牙源性基因表达和分化。DPP衍生的RGD - 3可能是用于牙髓活力治疗的新型材料配方中的一个有前景的选择,可诱导牙髓干细胞分化为成牙本质细胞,并在暴露的牙髓组织上形成修复性牙本质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/909c/9687143/ba45df9fa571/biomedicines-10-02781-g001.jpg

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