Cheng Liang, Zhi Liu, Jie Li, Cong Han, Gao Y, Bohuai Zhou, Qiuyu Chen, Fei Bi, Chengcheng Liao, Wu Wx, Tiantian Hu, Jingyi Zhang, Ding Bai, Yiping Chen, Zhonghan Li, Weidong Tian, Tian Chen
Regeneration of the dentin-pulp complex is essential for tooth integrity and function. However, the inherent cell heterogeneity limits our understanding of lineage-specific subsets critical for efficient odontogenesis and regenerative outcomes. Here, we demonstrated that CD24+ human dental papilla cells (hDPCs) exhibit robust odontogenic differentiation capacity and drive coordinated regeneration of well-vascularized pulp and structurally integrated dentin tissues in both ectopic murine and preclinical in situ minipig models, significantly outperforming conventional dental pulp stem cells. Mechanistically, we delineate a BMP2/SIRT1 axis where elevated BMP signaling sustains SIRT1 expression and promotes mitochondrial metabolism and odontogenic capacity. Furthermore, BMP signaling induces VEGF expression, enhancing neovascularization via paracrine effects. CD24 is also a downstream marker of BMP signaling, though it does not directly mediate differentiation. Together, CD24+ hDPCs represent a regeneration-competent subpopulation that integrates mitochondrial metabolism and signaling crosstalk to enable coordinated dentin-pulp regeneration, representing a translationally relevant cell source for dental tissue engineering. The authors identify a human CD24+ dental progenitor population and delineate a BMP2/SIRT1 metabolic axis that drives coordinated dentin–pulp regeneration, highlighting a translational cell source for dental tissue engineering.