Basic Research
Copyright ©The Author(s) 2004. Published by Baishideng Publishing Group Inc. All rights reserved.
World J Gastroenterol. Sep 1, 2004; 10(17): 2524-2528
Published online Sep 1, 2004. doi: 10.3748/wjg.v10.i17.2524
Angiogenic synergistic effect of basic fibroblast growth factor and vascular endothelial growth factor in an in vitro quantitative microcarrier-based three-dimensional fibrin angiogenesis system
Xi-Tai Sun, Yi-Tao Ding, Xiao-Gui Yan, Ling-Yun Wu, Qiang Li, Ni Cheng, Yu-Dong Qiu, Min-Yue Zhang
Xi-Tai Sun, Yi-Tao Ding, Xiao-Gui Yan, Qiang Li, Yu-Dong Qiu, Department of Hepatobiliary Surgery, Affiliated Gu Lou Hospital of Medical College, Hepatobiliary Research Institute, Nanjing University, Nanjing 210008, Jiangsu Province China
Ling-Yun Wu, Ni Cheng, State Key Laboratory of Pharmaceutical Biotechnology, Department of Biochemistry, Nanjing University, Nanjing 210093, Jiangsu Province China
Min-Yue Zhang, State Key Laboratory of Pharmaceutical Biotechnology, Model Animal Research Center, Department of Biochemistry, Nanjing University, Nanjing 210093, Jiangsu Province, China
Author contributions: All authors contributed equally to the work.
Correspondence to: Dr. Min-Yue Zhang, State Key Laboratory of Pharmaceutical Biotechnology, Model Animal Research Center, Department of Biochemistry, Nanjing University, 10 Jinyin Street, Nanjing 210093, Jiangsu Province, China. zmy@nju.edu.cn
Telephone: +86-25-83595108 Fax: +86-25-83595108
Received: December 10, 2003
Revised: January 4, 2004
Accepted: January 12, 2004
Published online: September 1, 2004
Abstract

AIM: To develop an in vitro three-dimensional (3-D) angiogenesis system to analyse the capillary sprouts induced in response to the concentration ranges of basic fibroblast growth factor (bFGF) and vascular endothelial growth factor (VEGF) and to quantify their synergistic activity.

METHODS: Microcarriers (MCs) coated with human microvascular endothelial cells (HMVECs) were embedded in fibrin gel and cultured in 24-well plates with assay media. The growth factors bFGF, or VEGF, or both were added to the system. The wells (n = 8/group) were digitally photographed and the average length of capillary-like sprouts (ALS) from each microcarrier was quantitated.

RESULTS: In aprotinin-stabilized fibrin matrix, human microvascular endothelial cells on the MCs invaded fibrin, forming sprouts and capillary networks with lumina. The angiogenic effects of bFGF or VEGF were dose-dependent in the range from 10 to 40 ng/mL. At d 1, 10 ng/mL of bFGF and VEGF induced angiogenesis with an ALS of 32.13 ± 16.6 μm and 43.75 ± 27.92 μm, respectively, which were significantly higher than that of the control (5.88 ± 4.45 μm, P < 0.01), and the differences became more significant as the time increased. In addition, the combination of 10 ng/mL of bFGF and VEGF each induced a more significant effect than the summed effects of bFGF (10 ng/mL) alone and VEGF (10 ng/mL) alone when analyzed using SPSS system for general linear model (GLM) (P = 0.011), and that also exceeded the effects by 20 ng/mL of either bFGF or VEGF.

CONCLUSION: A microcarrier-based in vitro three-dimensional angiogenesis model can be developed in fibrin. It offers a unique system for quantitative analysis of angiogenesis. Both bFGF and VEGF exert their angiogenic effects on HMVECs synergistically and in a dose-dependent manner.

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