Feng Jifan, Jing Junjun, Li Jingyuan, Zhao Hu, Punj Vasu, Zhang Tingwei, Xu Jian, Chai Yang
Center for Craniofacial Molecular Biology, University of Southern California, Los Angeles, CA 90033, USA.
State Key Laboratory of Oral Diseases, West China Hospital of Stomatology, Sichuan University, Chengdu 610041, China.
Development. 2017 Jul 15;144(14):2560-2569. doi: 10.1242/dev.150136. Epub 2017 Jun 2.
Signaling pathways are used reiteratively in different developmental processes yet produce distinct cell fates through specific downstream transcription factors. In this study, we used tooth root development as a model with which to investigate how the BMP signaling pathway regulates transcriptional complexes to direct the fate determination of multipotent mesenchymal stem cells (MSCs). We first identified the MSC population supporting mouse molar root growth as Gli1 cells. Using a Gli1-driven Cre-mediated recombination system, our results provide the first evidence that BMP signaling activity is required for the odontogenic differentiation of MSCs. Specifically, we identified the transcription factors Pax9, Klf4, Satb2 and Lhx8 as being downstream of BMP signaling and expressed in a spatially restricted pattern that is potentially involved in determining distinct cellular identities within the dental mesenchyme. Finally, we found that overactivation of one key transcription factor, Klf4, which is associated with the odontogenic region, promotes odontogenic differentiation of MSCs. Collectively, our results demonstrate the functional significance of BMP signaling in regulating MSC fate during root development and shed light on how BMP signaling can achieve functional specificity in regulating diverse organ development.
信号通路在不同的发育过程中被反复使用,但通过特定的下游转录因子产生不同的细胞命运。在本研究中,我们以牙根发育为模型,研究骨形态发生蛋白(BMP)信号通路如何调节转录复合物,以指导多能间充质干细胞(MSC)的命运决定。我们首先将支持小鼠磨牙牙根生长的MSC群体鉴定为Gli1细胞。使用Gli1驱动的Cre介导的重组系统,我们的结果首次证明BMP信号活性是MSC成牙分化所必需的。具体而言,我们鉴定出转录因子Pax9、Klf4、Satb2和Lhx8是BMP信号的下游因子,并以空间受限的模式表达,这可能参与确定牙间充质内不同的细胞身份。最后,我们发现与成牙区域相关的一个关键转录因子Klf4的过度激活促进了MSC的成牙分化。总体而言,我们的结果证明了BMP信号在牙根发育过程中调节MSC命运的功能意义,并揭示了BMP信号如何在调节不同器官发育中实现功能特异性。