Gan Xinyan, He Kun, Xiong Qiuchan, Sheng Rui, Lei Kexin, Jiang Shuang, Yang Xiaoyu, Cai Yimeng, Huang Denghao, Shi Yu, Ye Ling, Yuan Quan, Li Qiwen
State Key Laboratory of Oral Diseases and National Center for Stomatology and National Clinical Research Center for Oral Diseases, West China Hospital of Stomatology, Sichuan University, Chengdu, Sichuan 610041, China.
Department of Oral Implantology, West China Hospital of Stomatology, Sichuan University, Chengdu, Sichuan 610041, China.
J Bone Miner Res. 2025 Jun 3;40(6):813-823. doi: 10.1093/jbmr/zjaf056.
tRNA N7-methylguanosine (m7G) is one of the most abundant epigenetic modifications in mammals, which is catalyzed by the methyltransferase 1-WD repeat-containing protein 4 (METTL1-WDR4) complex. Missense mutations in WDR4 have been linked to primordial dwarfism, which shows severe craniofacial developmental deformities including small teeth, but the underlying molecular mechanisms remain elusive. In this study, we explore the effect of m7G modification on dentin formation during tooth root development. METTL1 was actively expressed in mice developing tooth roots, and its expression became undetectable after tooth root formation. Next, we generated Prrx1-Cre driven Mettl1 (Prrx1Cre;Mettl1fl/fl) conditional KO mice to delete Mettl1 in dental mesenchyme and explored its regulation during tooth development. Micro-computed tomography revealed that the roots of the mandibular first molar in Prrx1Cre;Mettl1fl/fl mice were shorter and smaller compared to littermate control, with a reduction in the width of dentin and pre-dentin in both the root area and the crown area. Wdr4R215L/R215L mice also exhibited tooth root shortening and dentin thinning, phenocopying the Prrx1Cre;Mettl1fl/fl mice. Moreover, METTL1-depleted human dental pulp cells (hDPCs) showed decreased ability of proliferation, migration, and odontogenic differentiation. RNA-seq revealed upregulation of the p53 signaling pathway and cell cycle arrest after deletion of Mettl1. The proliferation and odontogenic differentiation of METTL1-depleted hDPCs is partially rescued with pifithrin-α (PFT-α), a p53 signaling inhibitor. Taken together, our results demonstrate that loss of METTL1-mediated tRNA m7G modification impairs the proliferation and odontogenic differentiation of hDPCs via the p53 signaling pathway and affects the dentin formation during tooth root development, providing a novel epigenetic mechanism underlying small teeth.
转运RNA N7-甲基鸟苷(m7G)是哺乳动物中最丰富的表观遗传修饰之一,由含WD重复序列的甲基转移酶1(METTL1-WDR4)复合物催化。WDR4中的错义突变与原始侏儒症有关,该疾病表现出严重的颅面发育畸形,包括小牙齿,但潜在的分子机制仍不清楚。在本研究中,我们探讨了m7G修饰对牙根发育过程中牙本质形成的影响。METTL1在小鼠发育中的牙根中活跃表达,牙根形成后其表达变得不可检测。接下来,我们构建了Prrx1-Cre驱动的Mettl1(Prrx1Cre;Mettl1fl/fl)条件性敲除小鼠,以在牙间充质中删除Mettl1,并探讨其在牙齿发育过程中的调控作用。显微计算机断层扫描显示,与同窝对照相比,Prrx1Cre;Mettl1fl/fl小鼠下颌第一磨牙的牙根更短更小,牙根区域和冠部区域的牙本质和前期牙本质宽度均减小。Wdr4R215L/R215L小鼠也表现出牙根缩短和牙本质变薄,模拟了Prrx1Cre;Mettl1fl/fl小鼠的表型。此外,METTL1缺失的人牙髓细胞(hDPCs)的增殖、迁移和牙源性分化能力降低。RNA测序显示,删除Mettl1后p53信号通路上调且细胞周期停滞。p53信号抑制剂pifithrin-α(PFT-α)部分挽救了METTL1缺失的hDPCs的增殖和牙源性分化。综上所述,我们的结果表明,METTL1介导的tRNA m7G修饰缺失通过p53信号通路损害hDPCs的增殖和牙源性分化,并影响牙根发育过程中的牙本质形成,为小牙齿提供了一种新的表观遗传机制。