Wilson Sabrina S, Wong Alice, Toupadakis Chrisoula A, Yellowley Clare E
Department of Anatomy, Physiology and Cell Biology, School of Veterinary Medicine, University of California, 1285 Veterinary Medicine Drive, Davis, California, 95616.
J Orthop Res. 2015 Sep;33(9):1364-73. doi: 10.1002/jor.22898.
Vascular disruption that occurs as a consequence of bone fracture, leads to hypoxia at the site of damage. Hypoxia regulates the expression of a number of genes that can modulate energy conservation, cell survival, tissue regeneration and angiogenesis. In this study we investigated the expression of Angiopoietin-like 4, an adipocytokine that has additional roles in angiogenesis, at the fracture site. We demonstrate that Angptl4 mRNA expression increased early during fracture healing (day 3) returning close to baseline at day14. In the callus, Angptl4 mRNA was visualized in areas of condensing mesenchymal cells, callus cartilage and was especially high in mineralizing osteoblasts located in areas of new bone formation. In vitro, Angptl4 mRNA expression in osteoblasts increased under hypoxic conditions and in cells treated with the hypoxia mimetic desferrioxamine. Angptl4 levels were strongly induced at day 14 in differentiating MC3T3-E1 osteoblastic cells. Exogenous ANGPTL4 increased expression of Runx2, Spp1, vegfa, and Alp mRNA in differentiating osteoblasts. We suggest that the distribution of Angptl4 in the callus may be driven by hypoxia and that Angptl4 may play a role in osteoblastic differentiation, and possibly angiogenesis via regulation of VEGF. Further studies could reveal a dual role for Angptl4 in angiogenesis and osteogenesis.
因骨折而发生的血管破坏会导致损伤部位缺氧。缺氧调节许多基因的表达,这些基因可调节能量守恒、细胞存活、组织再生和血管生成。在本研究中,我们调查了血管生成素样4(一种在血管生成中具有额外作用的脂肪细胞因子)在骨折部位的表达。我们证明,血管生成素样4信使核糖核酸(Angptl4 mRNA)表达在骨折愈合早期(第3天)增加,并在第14天接近基线水平。在骨痂中,Angptl4 mRNA在间充质细胞凝聚区域、骨痂软骨中可见,在新骨形成区域的矿化成骨细胞中尤其高。在体外,成骨细胞中的Angptl4 mRNA表达在缺氧条件下以及在用缺氧模拟物去铁胺处理的细胞中增加。在分化的MC3T3-E1成骨细胞中,Angptl4水平在第14天强烈诱导。外源性血管生成素样4(ANGPTL4)增加了分化中的成骨细胞中Runx2、Spp1、vegfa和Alp信使核糖核酸的表达。我们认为,骨痂中Angptl4的分布可能由缺氧驱动,并且Angptl4可能在成骨细胞分化中发挥作用,并可能通过调节血管内皮生长因子(VEGF)参与血管生成。进一步的研究可能揭示Angptl4在血管生成和成骨中的双重作用。