Cell-based and direct gene transfer-induced angiogenesis via a secreted chimeric fibroblast growth factor-1 (sp-FGF-1) in the chick chorioallantoic membrane (CAM)

被引:23
作者
Reza Forough
Xinyu Wang
Luis A. Martinez-Lemus
Dimitri Thomas
Zhe Sun
Kouros Motamed
Janet L. Parker
Gerald A. Meininger
机构
[1] Department of Medical Physiology, College of Medicine, TX A/M Univ. Syst. Hlth. Sci. Ctr., College Station
[2] Vascular Biology Center, Department of Pathology, Medical College of Georgia, Augusta, GA
关键词
Angiogenesis; CAM assay; FGF-1; Gelatin sponge; Signal peptide; Transfection;
D O I
10.1023/A:1025857229064
中图分类号
学科分类号
摘要
Fibroblast growth factor-1 (FGF-1) is a potent angiogenic factor; its structure lacks a signal peptide for secretion. We previously reported that the overexpression of a secreted version of FGF-1 (sp-FGF-1) in microvascular endothelial cells (ECs) enhances cell migration [Partridge et al. J Cell Biochem 2000; 78(3): 487]. In the current study, we have examined the angiogenic effects of sp-FGF-1 in chicken chorioallantoic membranes (CAMs). Two methods of examining the effects of sp-FGF-1 in CAMs were used: cell-mediated transfection via bovine ECs and direct gene transfection. In the cell-mediated gene transfection, those eggs that were implanted with a gelatin sponge seeded with ECs stably transfected to over-express sp-FGF-1 protein showed a significant increase in angiogenesis inside the sponge when compared to eggs treated with vector control-transfected ECs. In the direct gene transfer, eggs received sp-FGF-1 showed a significant increase in vascularization when compared to eggs received vector alone plasmids. These CAM models are useful both for studying molecular mechanisms of angiogenesis and for developing better gene therapy strategies.
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页码:47 / 54
页数:7
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共 23 条
[1]  
Folkman J., Angiogenesis in cancer, vascular, rheumatoid and other disease, Nat Med, 1, 1, pp. 27-31, (1995)
[2]  
Ausprunk D.H., Knighton D.R., Folkman J., Differentiation of vascular endothelium in the chick chorioallantois: A structural and autoradiographic study, Dev Biol, 38, 2, pp. 237-248, (1974)
[3]  
Auerbach R., Auerbach W., Polakowski I., Assays for angiogenesis: A review, Pharmacol Ther, 51, 1, pp. 1-11, (1991)
[4]  
Ribatti D., Nico B., Vacca A., Et al., Chorioallantoic membrane capillary bed: A useful target for studying angiogenesis and anti-angiogenesis in vivo, Anat Rec, 264, 4, pp. 317-324, (2001)
[5]  
Flamme I., Schulze-Osthoff K., Jacob H.J., Mitogenic activity of chicken chorioallantoic fluid is temporally correlated to vascular growth in the chorioallantoic membrane and related to fibroblast growth factors, Development, 111, 3, pp. 683-690, (1991)
[6]  
Schumacher B., Pecher P., Von Specht B.U., Stegmann T., Induction of neoangiogenesis in ischemic myocardium by human growth factors: First clinical results of a new treatment of coronary heart disease, Circulation, 97, 7, pp. 645-650, (1998)
[7]  
Ornitz D.M., Itoh N., Fibroblast growth factors, Genome Biol, 2, 3, pp. 30051-300512, (2001)
[8]  
Sellke F.W., Ruel M., Vascular growth factors and angiogenesis in cardiac surgery, Ann Thorac Surg, 75, 2, (2003)
[9]  
Partridge C.R., Hawker J.R. Jr., Forough R., Overexpression of a secretory form of FGF-1 promotes MMP-1-mediated endothelial cell migration, J Cell Biochem, 78, 3, pp. 487-499, (2000)
[10]  
Forough R., Xi Z., MacPhee M., Et al., Differential transforming abilities of non-secreted and secreted forms of human fibroblast growth factor-1, J Biol Chem, 268, 4, pp. 2960-2968, (1993)