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Osterix 在成骨细胞形成过程中的重要功能的遗传证据。

Genetic evidence for the vital function of Osterix in cementogenesis.

机构信息

The State Key Laboratory Breeding Base of Basic Science of Stomatology (Hubei-MOST), Ministry of Education, Department of Periodontology, School and Hospital of Stomatology, Wuhan University, Wuhan, China.

出版信息

J Bone Miner Res. 2012 May;27(5):1080-92. doi: 10.1002/jbmr.1552.

Abstract

To date, attempts to regenerate a complete tooth, including the critical periodontal tissues associated with the tooth root, have not been successful. Controversy still exists regarding the origin of the cell source for cellular cementum (epithelial or mesenchymal). This disagreement may be partially due to a lack of understanding of the events leading to the initiation and development of the tooth roots and supportive tissues, such as the cementum. Osterix (OSX) is a transcriptional factor essential for osteogenesis, but its role in cementogenesis has not been addressed. In the present study, we first documented a close relationship between the temporal- and spatial-expression pattern of Osx and the formation of cellular cementum. We then generated 3.6-kilobase (kb) collagen type I (3.6-kb Col 1)-Osx transgenic mice, which displayed accelerated cementum formation versus wild-type (WT) controls. Importantly, the conditional deletion of Osx in the mesenchymal cells with two different Cre systems (the 2.3-kb Col 1 and an inducible CAG-Cre estrogen receptor [CreER]) led to a sharp reduction in cellular cementum formation (including the cementum mass and mineral deposition rate) and gene expression of dentin matrix protein 1 (DMP1) by cementocytes. However, the deletion of the Osx gene after cellular cementum formed did not alter the properties of the mature cementum as evaluated by backscattered scanning electron microscopy (SEM) and resin-casted SEM. Transient transfection of Osx in the cementoblasts in vitro significantly inhibited cell proliferation and increased cell differentiation and mineralization. Taken together, these data support: (1) the mesenchymal origin of cellular cementum (from periodontal ligament [PDL] progenitor cells); (2) the vital role of OSX in controlling the formation of cellular cementum; and (3) the limited remodeling of cellular cementum in adult mice.

摘要

迄今为止,试图再生完整的牙齿,包括与牙根相关的关键牙周组织,尚未成功。关于细胞性牙骨质的细胞来源(上皮或间充质)的起源仍存在争议。这种分歧可能部分归因于对导致牙齿根部和支持组织(如牙骨质)起始和发育的事件缺乏了解。Osterix(OSX)是成骨所必需的转录因子,但它在牙骨质形成中的作用尚未得到解决。在本研究中,我们首先记录了 Osx 的时间和空间表达模式与细胞性牙骨质形成之间的密切关系。然后,我们生成了 3.6 千碱基(kb)I 型胶原(3.6-kb Col 1)-Osx 转基因小鼠,与野生型(WT)对照相比,其牙骨质形成速度加快。重要的是,使用两种不同的 Cre 系统(2.3-kb Col 1 和诱导型 CAG-Cre 雌激素受体 [CreER])在间充质细胞中条件性缺失 Osx,导致细胞性牙骨质形成(包括牙骨质量和矿物质沉积率)和牙本质基质蛋白 1(DMP1)的基因表达急剧减少。然而,在用细胞性牙骨质形成后删除 Osx 基因不会改变成熟牙骨质的特性,这可通过背散射扫描电子显微镜(SEM)和树脂铸造 SEM 评估。体外在成牙骨质细胞中瞬时转染 Osx 可显著抑制细胞增殖并增加细胞分化和矿化。总之,这些数据支持:(1)细胞性牙骨质的间充质起源(来自牙周韧带[PDL]祖细胞);(2)OSX 在控制细胞性牙骨质形成中的重要作用;(3)成年小鼠中细胞性牙骨质的有限改建。

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