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Purine metabolism enhances neovascularization of type H vessels in the induced membrane technique
Yung-Heng Hsu, Guan-Lin Lee, Yu-Chih Lin, Mei-Feng Chen, Yuhan Chang, Ying-Yu Wu, Chih-Chien Hu
Yung-Heng Hsu, Guan-Lin Lee, Yu-Chih Lin, Mei-Feng Chen, Yuhan Chang, Ying-Yu Wu, Chih-Chien Hu
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Research Article Metabolism Vascular biology

Purine metabolism enhances neovascularization of type H vessels in the induced membrane technique

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Abstract

The induced membrane technique (IMT) is a 2-stage surgical intervention for critical-sized bone defects (CSBD), yet the metabolic mechanisms driving neovascularization within the induced membrane remain unclear. Here, we combined a rat IMT model, metabolomic profiling, and endothelial assays to delineate the role of purine metabolism in neovascularization of type H vessels. Using a rat IMT model and metabolomic profiling, we identified purine metabolism as the most substantial pathway during the formation of induced membranes, with consistent trends of adenosine, inosine, hypoxanthine, and xanthosine found in both serum and induced membranes. Histological analysis revealed abundant CD31hiEMCNhi type H vessels, critical for osteogenesis, within the induced membrane. Inhibition of purine metabolism suppressed the CD31hiEMCNhi type H phenotype in human umbilical vein endothelial cells, whereas treatment with inosine, hypoxanthine, or xanthosine promoted endothelial activation and the type H phenotype. Notably, inosine and hypoxanthine displayed parallel changes across consistent systemic (serum) and local alterations (induced membranes), highlighting their potential as serum indicators of induced membrane formation. Collectively, these findings uncover a previously unrecognized metabolic mechanism driving neovascularization of type H vessels in induced membranes and suggest purine metabolites as promising indicators and therapeutic targets for improving IMT outcomes as well as CBSD treatment.

Authors

Yung-Heng Hsu, Guan-Lin Lee, Yu-Chih Lin, Mei-Feng Chen, Yuhan Chang, Ying-Yu Wu, Chih-Chien Hu

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Figure 5

Phenotype of type H vessels is identified in the induced membrane.

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Phenotype of type H vessels is identified in the induced membrane.
(A) R...
(A) Representative immunohistochemical images showing type H vessels coexpressing CD31 (green) and EMCN (red), with merged orange-yellow signals, in induced membranes (IMT, n = 6), bone defect sites (BD, n = 7), and soft tissues adjacent to uninjured bone (n = 6; randomly selected from IMT and BD rats). (B and C) Quantification of CD31 and EMCN signals using ImageJ. Each dot represents 1 rat. Data are presented as area fraction and normalized to DAPI areas. (D) Immunofluorescence images showing merged staining of DAPI (blue), CD31 (green), and EMCN (red) in induced membranes and soft tissues (n = 6 per group). The white box in the upper panels (ROI.01) indicates a type H vessel. (E) Quantification of CD31hiEMCNhi (ROI.01) and CD31lowEMCNlow (ROI.02) areas using Leica LAS X software. (F) Summary of Figure 4 indicating the occurrence of type H vessels in the induced membrane. Box plots represent the median (line), interquartile range (box), and minimum-to-maximum values (whiskers). P < 0.05 was considered statistically significant. BD, bone defect; EMCN, endomucin; IM, induced membrane; Soft, soft tissues. Scale bars: 2,500 μm (A), 10 μm (D).

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