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Osteoblast-intrinsic defect in glucose metabolism impairs bone formation in type II diabetic mice
Fangfang Song1,2, Won Dong Lee3, Tyler Marmo1
1Translational Research Program in Pediatric Orthopedics, Department of Surgery, The Children's Hospital of Philadelphia.
Abstract:
Skeletal fragility is associated with type 2 diabetes mellitus (T2D), but the underlying mechanism is not well understood. Here, in a mouse model for youth-onset T2D, we show that both trabecular and cortical bone mass are reduced due to diminished osteoblast activity. Stable isotope tracing in vivo with 13 C-glucose demonstrates that both glycolysis and glucose fueling of the TCA cycle are impaired in diabetic bones. Similarly, Seahorse assays show suppression of both glycolysis and oxidative phosphorylation by diabetes in bone marrow mesenchymal cells as a whole, whereas single-cell RNA sequencing reveals distinct modes of metabolic dysregulation among the subpopulations. Metformin not only promotes glycolysis and osteoblast differentiation in vitro, but also improves bone mass in diabetic mice. Finally, targeted overexpression of Hif1a or Pfkfb3 in osteoblasts of T2D mice averts bone loss. The study identifies osteoblast-intrinsic defects in glucose metabolism as an underlying cause of diabetic osteopenia, which may be targeted therapeutically.
Insights
Type 2 diabetes mellitus (T2D) causes skeletal fragility by impairing osteoblast glucose metabolism. Metformin and genetic interventions targeting Hif1a or Pfkfb3 improve bone mass in T2D mouse models.
Area of Science:
- Bone Biology
- Metabolic Diseases
- Diabetes Research
Background:
- Skeletal fragility is a known complication of type 2 diabetes mellitus (T2D).
- The precise mechanisms linking T2D to reduced bone mass, particularly in youth-onset T2D, remain unclear.
- Osteoblast dysfunction is implicated in diabetic bone disease.
Conclusions:
- Osteoblast-intrinsic defects in glucose metabolism are a key driver of diabetic osteopenia in T2D.
- Targeting osteoblast metabolic pathways, such as glycolysis and Hif1a/Pfkfb3 signaling, represents a potential therapeutic strategy for T2D-associated bone loss.
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