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Osteoblast-derived VEGF regulates osteoblast differentiation and bone formation during bone repair
Kai Hu, Bjorn R. Olsen
Kai Hu, Bjorn R. Olsen
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Research Article Bone biology

Osteoblast-derived VEGF regulates osteoblast differentiation and bone formation during bone repair

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Abstract

Osteoblast-derived VEGF is important for bone development and postnatal bone homeostasis. Previous studies have demonstrated that VEGF affects bone repair and regeneration; however, the cellular mechanisms by which it works are not fully understood. In this study, we investigated the functions of osteoblast-derived VEGF in healing of a bone defect. The results indicate that osteoblast-derived VEGF plays critical roles at several stages in the repair process. Using transgenic mice with osteoblast-specific deletion of Vegfa, we demonstrated that VEGF promoted macrophage recruitment and angiogenic responses in the inflammation phase, and optimal levels of VEGF were required for coupling of angiogenesis and osteogenesis in areas where repair occurs by intramembranous ossification. VEGF likely functions as a paracrine factor in this process because deletion of Vegfr2 in osteoblastic lineage cells enhanced osteoblastic maturation and mineralization. Furthermore, osteoblast- and hypertrophic chondrocyte–derived VEGF stimulated recruitment of blood vessels and osteoclasts and promoted cartilage resorption at the repair site during the periosteal endochondral ossification stage. Finally, osteoblast-derived VEGF stimulated osteoclast formation in the final remodeling phase of the repair process. These findings provide a basis for clinical strategies to improve bone regeneration and treat defects in bone healing.

Authors

Kai Hu, Bjorn R. Olsen

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Figure 2

Impaired intramembranous bone formation in defects of Vegfa CKO mice at PSD7.

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Impaired intramembranous bone formation in defects of Vegfa CKO mice at ...
(A) Lateral views of 3D reconstruction of injured tibiae (top panel, scale bar: 500 μm) and mineralized bone formed in hole region (lower panel, scale bars: 100 μm) by μCT. Representative images from 6 mice of each genotype. (B–E) 3D structural parameters — trabecular BV/TV%, Tb.N, Tb.Sp, and Tb.Th — of mineralized bone formed in hole region by μCT; n = 6. (F) Aniline blue staining shows reduced collagen accumulation in hole region of Vegfa CKO mice. Density of aniline blue staining calculated for hole region (stippled yellow rectangles). Scale bar: 200 μm. (G) Low density of aniline blue–stained area in hole region of Vegfa CKO mice; n = 8–11. (H) Decreased mineralization/collagen ratio in Vegfa CKO mice; n = 5–6. (I and J) Alizarin red and Von Kossa staining of BMSCs (I) and osteoblasts (J) after culture in mineralization medium containing 100 nM dexamethasone for 21 days. (K) Alizarin red and Von Kossa staining of BMSCs (from Vegfafl/fl mice) treated with adenoviral GFP or Cre and cultured in mineralization medium with 100 nM dexamethasone for 21 days. The data are representative of 3 independent experiments (I–K). ANOVA with Tukey’s post-hoc test was used. *P < 0.01; **P < 0.05.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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