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从参与上皮-间充质转化的细胞中建立 Hertwig 上皮根鞘细胞系。

Establishment of Hertwig's epithelial root sheath cell line from cells involved in epithelial-mesenchymal transition.

机构信息

Division of Periodontology, Department of Conservative Dentistry and Rehabilitation, School of Dentistry, Iwate Medical University, Morioka, Iwate, Japan.

出版信息

Biochem Biophys Res Commun. 2011 Jan 7;404(1):308-12. doi: 10.1016/j.bbrc.2010.11.112. Epub 2010 Dec 3.

Abstract

The epithelial-mesenchymal transition (EMT) is an important event in the developmental process of various organs. In periodontal development during root formation of a tooth, this EMT has been a subject of controversy. Hertwig's epithelial root sheath (HERS), consisting of two epithelial layers, plays a role of inducing odontogenesis during root development and thereafter becomes fragmented. Some researchers have maintained that in the process of this fragmentation, some HERS cells change from epithelial to mesenchymal cells. Here, we established a HERS cell line (HERS01a) and examined its gene and protein expression. Immunohistochemical staining and real-time PCR analysis showed that HERS01a cells expressed vimentin and N-cadherin as mesenchymal markers as well as cytokeratin14, E-cadherin, and p63 as epithelial stem cell markers. In the presence of TGF-β, HERS01a cells also expressed many more mesenchymal markers, as well as snail1 and 2 as EMT markers. Taken together, our data show that HERS01a displayed unique features associated with EMT in the root formation process, and will thus be useful for analyzing the biological characteristics of HERS and the molecular mechanism underlying the EMT.

摘要

上皮-间充质转化(EMT)是各种器官发育过程中的一个重要事件。在牙齿根部形成过程中的牙周发育中,这种 EMT 一直是一个有争议的话题。由两层上皮组成的 Hertwig 上皮根鞘(HERS)在根发育过程中诱导牙发生,并随后发生碎片化。一些研究人员认为,在这个碎片化的过程中,一些 HERS 细胞从上皮细胞转变为间充质细胞。在这里,我们建立了一个 HERS 细胞系(HERS01a),并检查了其基因和蛋白表达。免疫组织化学染色和实时 PCR 分析表明,HERS01a 细胞表达间充质标志物波形蛋白和 N-钙黏蛋白,以及上皮干细胞标志物角蛋白 14、E-钙黏蛋白和 p63。在 TGF-β的存在下,HERS01a 细胞还表达了更多的间充质标志物,以及 EMT 标志物 snail1 和 2。综上所述,我们的数据表明 HERS01a 在根形成过程中表现出与 EMT 相关的独特特征,因此将有助于分析 HERS 的生物学特性和 EMT 背后的分子机制。

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