Quantitative measurement of the splice variants 120 and 164 of the angiogenic peptide vascular endothelial growth factor in the time flow of fracture healing: a study in the rat

被引:133
作者
Pufe, T
Wildermann, B
Petersen, W
Mentlein, R
Raschke, M
Schmidmaier, G
机构
[1] Univ Kiel, Dept Anat, D-24098 Kiel, Germany
[2] Virchow Klinikum, Charite, Dept Trauma & Reconstruct Surg, Berlin, Germany
[3] Univ Kiel, Dept Orthopaed Surg, Kiel, Germany
关键词
tibia fracture; angiogenesis; callus; rat (Sprague Dawley);
D O I
10.1007/s00441-002-0605-0
中图分类号
Q2 [细胞生物学];
学科分类号
071009 [细胞生物学]; 090102 [作物遗传育种];
摘要
Formation of new blood vessels is essential for the process of wound and fracture healing. Little is known about the time-dependent expression and the involved splice variants of the vascular endothelial growth factor (VEGF). We therefore quantified and differentiated the angiogenic factor VEGF and its receptors (VEGFR) in a rat fracture model by immunohistochemical, biochemical and molecular biological methods. VEGF could be immunostained in chondrocytes and osteoblasts of the callus, but not in fibrous callus. In the capillaries, VEGFR-1 (flt-1) and VEGFR-2 (flk-1/KDR) were also visualized. Both receptors were also detectable in some chondrocytes and in osteoclasts. Enzyme-linked immunosorbent assay (ELISA) measurements showed high levels of VEGF in fractured tibiae and negligible ones in non-injured bone. Reverse transcriptase-polymerase chain reaction (RT-PCR) revealed expression of the rat splice variants VEGF(120) and VEGF(164) during the course of fracture healing, which corresponds to human VEGF121 and VEGF165 splice variants. VEGF plays the most important role during the early phase of fracture healing, but VEGF concentrations decrease further after day 5.
引用
收藏
页码:387 / 392
页数:6
相关论文
共 25 条
[1]
Brookes M, 1998, Blood supply of bone, scientific aspects, P75
[2]
Callard RE, 1994, CYTOKINE FACTS BOOK
[3]
Abnormal blood vessel development and lethality in embryos lacking a single VEGF allele [J].
Carmeliet, P ;
Ferreira, V ;
Breier, G ;
Pollefeyt, S ;
Kieckens, L ;
Gertsenstein, M ;
Fahrig, M ;
Vandenhoeck, A ;
Harpal, K ;
Eberhardt, C ;
Declercq, C ;
Pawling, J ;
Moons, L ;
Collen, D ;
Risau, W ;
Nagy, A .
NATURE, 1996, 380 (6573) :435-439
[4]
Synergistic induction of endothelial tissue factor by tumor necrosis factor and vascular endothelial growth factor: Functional analysis of the tumor necrosis factor receptors [J].
Clauss, M ;
Grell, M ;
Fangmann, C ;
Fiers, W ;
Scheurich, P ;
Risau, W .
FEBS LETTERS, 1996, 390 (03) :334-338
[5]
Reverse transcription-polymerase chain reaction products of alternatively spliced mRNAs form DNA heteroduplexes and heteroduplex complexes [J].
Eckhart, L ;
Ban, J ;
Ballaun, C ;
Weninger, W ;
Tschachler, E .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (05) :2613-2615
[6]
Molecular and biological properties of vascular endothelial growth factor [J].
Ferrara, N .
JOURNAL OF MOLECULAR MEDICINE-JMM, 1999, 77 (07) :527-543
[7]
Sp1 recognition sites in the proximal promoter of the human vascular endothelial growth factor gene are essential for platelet-derived growth factor-induced gene expression [J].
Finkenzeller, G ;
Sparacio, A ;
Technau, A ;
Marme, D ;
Siemeister, G .
ONCOGENE, 1997, 15 (06) :669-676
[8]
ROLE OF THE FLT-1 RECEPTOR TYROSINE KINASE IN REGULATING THE ASSEMBLY OF VASCULAR ENDOTHELIUM [J].
FONG, GH ;
ROSSANT, J ;
GERTSENSTEIN, M ;
BREITMAN, ML .
NATURE, 1995, 376 (6535) :66-70
[9]
FROST HM, 1989, CLIN ORTHOP RELAT R, P283
[10]
VEGF couples hypertrophic cartilage remodeling, ossification and angiogenesis during endochondral bone formation [J].
Gerber, HP ;
Vu, TH ;
Ryan, AM ;
Kowalski, J ;
Werb, Z ;
Ferrara, N .
NATURE MEDICINE, 1999, 5 (06) :623-628