Department of Biomedical Engineering, University of California, Davis, Davis, CA 95616, USA.
Angiogenesis. 2009;12(4):303-11. doi: 10.1007/s10456-009-9152-6.
Therapeutic angiogenesis is a promising strategy to promote the formation of new or collateral vessels for tissue regeneration and repair. Since changes in tissue oxygen concentrations are known to stimulate numerous cell functions, these studies have focused on the oxygen microenvironment and its role on the angiogenic potential of endothelial cells. We analyzed the proangiogenic potential of human endothelial colony-forming cells (hECFCs), a highly proliferative population of circulating endothelial progenitor cells, and compared outcomes to human dermal microvascular cells (HMVECs) under oxygen tensions ranging from 1% to 21% O2, representative of ischemic or healthy tissues and standard culture conditions. Compared to HMVECs, hECFCs (1) exhibited significantly greater proliferation in both ischemic conditions and ambient air; (2) demonstrated increased migration compared to HMVECs when exposed to chemotactic gradients in reduced oxygen; and (3) exhibited comparable or superior proangiogenic potential in reduced oxygen conditions when assessed using a vessel-forming assay. These data demonstrate that the angiogenic potential of both endothelial populations is influenced by the local oxygen microenvironment. However, hECFCs exhibit a robust angiogenic potential in oxygen conditions representative of physiologic, ischemic, or ambient air conditions, and these findings suggest that hECFCs may be a superior cell source for use in cell-based approaches for the neovascularization of ischemic or engineered tissues.
治疗性血管生成是一种很有前途的策略,可以促进新血管或侧支血管的形成,从而实现组织再生和修复。由于已知组织氧浓度的变化会刺激许多细胞功能,这些研究集中在氧微环境及其对内皮细胞血管生成潜力的作用上。我们分析了人内皮集落形成细胞(hECFCs)的促血管生成潜力,hECFCs 是一种高度增殖的循环内皮祖细胞,我们将其与人类真皮微血管细胞(HMVECs)在 1%至 21%氧气浓度下(分别代表缺血组织和健康组织以及标准培养条件)的结果进行了比较。与 HMVECs 相比,hECFCs:1)在缺血条件和常氧环境下均表现出显著更高的增殖能力;2)在低氧条件下暴露于趋化梯度时,与 HMVECs 相比,迁移能力增强;3)在低氧条件下,血管形成测定结果显示 hECFCs 的促血管生成潜力相当或更高。这些数据表明,两种内皮细胞群体的血管生成潜力都受到局部氧微环境的影响。然而,hECFCs 在代表生理、缺血或常氧条件的氧条件下表现出强大的血管生成潜力,这些发现表明 hECFCs 可能是用于缺血或工程组织新生血管化的细胞治疗方法的更好细胞来源。