<p>The age-related decline in the pro-angiogenic capacity of mature dental pulp stem cells (DPSCs) severely limits pulp regeneration. We identify impaired glycolytic metabolism, driven by reduced glucose transporter type 1 (GLUT1) and hexokinase 2 (HK2) expression, as the key mechanism, as its inhibition diminished endothelial tube formation. To reverse this, we developed an aminolyzed highly branched poly(β-amino ester) (HBPA) as a vector for GLUT1/HK2 mRNA co-delivery, achieving &gt;90% transfection efficiency with excellent biocompatibility. In vitro, conditioned medium from reprogrammed mature DPSCs resulted in a 2.0-fold increase in capillary length and a 2.3-fold increase in branch points, restoring angiogenic potential to levels equivalent to those of immature DPSCs. This efficacy translated robustly in vivo, where a tooth root slice model showed reprogrammed cells generated tissue with a vessel density of 10.2 vessels per mm<sup>2</sup>, 2.5-fold higher than that of untreated controls. Crucially, this level of vascularization was statistically indistinguishable from that achieved by the benchmark immature DPSCs. Our study demonstrates that HBPA-mediated metabolic reprogramming effectively rejuvenates mature DPSCs by restoring the “Metabolic-ECM-Angiogenesis Axis”, offering a translatable strategy for predictable, vascularized pulp regeneration.</p><p></p>

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Enhancing pulp regeneration through metabolic reprogramming of mature dental pulp stem cells mediated by GLUT1/HK2 mRNA delivery

  • Tiankai Di,
  • Yuhan Liu,
  • Zhili Li,
  • Lulu Wang,
  • Peiyi Li,
  • Meng Nian,
  • Dezhong Zhou,
  • Lina Niu,
  • Yujiang Chen

摘要

The age-related decline in the pro-angiogenic capacity of mature dental pulp stem cells (DPSCs) severely limits pulp regeneration. We identify impaired glycolytic metabolism, driven by reduced glucose transporter type 1 (GLUT1) and hexokinase 2 (HK2) expression, as the key mechanism, as its inhibition diminished endothelial tube formation. To reverse this, we developed an aminolyzed highly branched poly(β-amino ester) (HBPA) as a vector for GLUT1/HK2 mRNA co-delivery, achieving >90% transfection efficiency with excellent biocompatibility. In vitro, conditioned medium from reprogrammed mature DPSCs resulted in a 2.0-fold increase in capillary length and a 2.3-fold increase in branch points, restoring angiogenic potential to levels equivalent to those of immature DPSCs. This efficacy translated robustly in vivo, where a tooth root slice model showed reprogrammed cells generated tissue with a vessel density of 10.2 vessels per mm2, 2.5-fold higher than that of untreated controls. Crucially, this level of vascularization was statistically indistinguishable from that achieved by the benchmark immature DPSCs. Our study demonstrates that HBPA-mediated metabolic reprogramming effectively rejuvenates mature DPSCs by restoring the “Metabolic-ECM-Angiogenesis Axis”, offering a translatable strategy for predictable, vascularized pulp regeneration.