Center for Craniofacial Regeneration, Department of Oral and Craniofacial Sciences, School of Dental Medicine, University of Pittsburgh, 501 Salk Pavilion, 335 Sutherland Drive, Pittsburgh, PA, 15213, USA.
Department of Oral Anatomy and Developmental Biology, Showa University School of Dentistry, 1-5-8 Hatanodai, Shinagawa-Ku, Tokyo, 142-8555, Japan.
Calcif Tissue Int. 2024 Nov;115(5):686-699. doi: 10.1007/s00223-024-01277-2. Epub 2024 Aug 23.
Cementum is the least studied of all mineralized tissues and little is known about mechanisms regulating its formation. Therefore, the goal of this study was to provide new insights into the transcriptional regulation of cementum formation by determining the consequences of the deficiency of the Trps1 transcription factor in cementoblasts. We used Trps1 cKO (2.3Co1a1-Cre;Trps1) mice, in which Trps1 is deleted in cementoblasts. Micro-computed tomography analyses of molars of 4-week-old males and females demonstrated significantly shorter roots with thinner mineralized tissues (root dentin and cementum) in Trps1 cKO compared to WT mice. Semi-quantitative histological analyses revealed a significantly reduced area of cellular cementum and localized deficiencies of acellular cementum in Trps1 cKO mice. Immunohistochemical analyses revealed clustering of cementoblasts at the apex of roots, and intermittent absence of cementoblasts on Trps1 cKO cementum surfaces. Fewer Osterix-positive cells adjacent to cellular cementum were also detected in Trps1 cKO compared to WT mice. Decreased levels of tissue-nonspecific alkaline phosphatase (TNAP), an enzyme required for proper cementogenesis, were apparent in cementum, periodontal ligament, and alveolar bone of Trps1 cKO. There were no apparent differences in levels of bone sialoprotein (Bsp) in cementum. Quantitative analyses of picrosirius red-stained periodontal ligament revealed shorter and disorganized collagen fibers in Trps1 cKO mice demonstrating impaired periodontal structure. In conclusion, this study has identified Trps1 transcription factor as one of the important regulators of cellular and acellular cementum formation. Furthermore, this study suggests that Trps1 supports the function of cementoblasts by upregulating expression of the major proteins required for cementogenesis, such as Osterix and TNAP.
牙骨质是所有矿化组织中研究最少的组织,对于调节其形成的机制知之甚少。因此,本研究的目的是通过确定在成牙骨质细胞中缺乏 Trps1 转录因子对牙骨质形成的转录调控的后果,为牙骨质形成的转录调控提供新的见解。我们使用了 Trps1 cKO(2.3Co1a1-Cre;Trps1)小鼠,其中 Trps1 在成牙骨质细胞中缺失。对 4 周龄雄性和雌性磨牙的微计算机断层扫描分析表明,Trps1 cKO 小鼠的根明显更短,矿化组织(根牙本质和牙骨质)更薄。半定量组织学分析显示,Trps1 cKO 小鼠的细胞性牙骨质面积明显减少,无细胞牙骨质局部缺失。免疫组织化学分析显示,在 Trps1 cKO 小鼠的根尖端处牙骨质细胞簇集,并且牙骨质表面的牙骨质细胞间歇性缺失。与 WT 小鼠相比,在 Trps1 cKO 小鼠中相邻于细胞性牙骨质的 Osterix 阳性细胞也较少。在牙骨质、牙周膜和牙槽骨中,组织非特异性碱性磷酸酶(TNAP)的水平明显降低,TNAP 是适当的牙骨质形成所必需的酶。在牙骨质中,骨涎蛋白(Bsp)的水平没有明显差异。对苦味酸天狼猩红染色的牙周膜的定量分析显示,Trps1 cKO 小鼠的胶原纤维更短且更紊乱,表明牙周结构受损。总之,本研究确定了 Trps1 转录因子是细胞性和无细胞牙骨质形成的重要调节因子之一。此外,本研究表明,Trps1 通过上调牙骨质形成所需的主要蛋白(如 Osterix 和 TNAP)的表达来支持成牙骨质细胞的功能。