Early Contribution of Pericytes to Angiogenic Sprouting and Tube Formation

被引:200
作者
Ugur Ozerdem
William B. Stallcup
机构
[1] La Jolla Institute for Molecular Medicine,Vascular Biology Division
[2] The Burnham Institute,Neurobiology Program
[3] La Jolla Institute for Molecular Medicine,Vascular Biology Division
关键词
angiogenesis; endothelium; neovascularization; NG2; PDGF ; -receptor; pericyte; sprout; tube; tumor; transplantation;
D O I
10.1023/B:AGEN.0000021401.58039.a9
中图分类号
学科分类号
摘要
Immunostaining with endothelial and pericyte markers was used to evaluate the cellular composition of angiogenic sprouts in several types of tumors and in the developing retina. Confocal microscopy revealed that, in addition to conventional endothelial tubes heavily invested by pericytes, all tissues contained small populations of endothelium-free pericyte tubes in which nerve/glial antigen 2 (NG2) positive, platelet-derived growth factor beta (PDGF β) receptor-positive perivascular cells formed the lumen of the microvessel. Perfusion of tumor-bearing mice with FITC-dextran, followed by immunohistochemical staining of tumor vasculature, demonstrated direct apposition of pericytes to FITC-dextran in the lumen, confirming functional connection of the pericyte tube to the circulation. Transplantation of prostate and mammary tumor fragments into NG2-null mice led to the formation of tumor microvasculature that was invariably NG2-negative, demonstrating that pericytes associated with tumor microvessels are derived from the host rather than from the conversion of tumor cells to a pericyte phenotype. The existence of pericyte tubes reflects the early participation of pericytes in the process of angiogenic sprouting. The ability to study these precocious contributions of pericytes to neovascularization depends heavily on the use of NG2 and PDGF β-receptor as reliable early markers for activated pericytes.
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页码:241 / 249
页数:8
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共 161 条
[31]  
Ozerdem U(1983)Flow cytometric measurement of total DNA content and incorporated bromodeoxyuridine Proc Natl Acad Sci USA 80 5573-7
[32]  
Monosov E(1984)Cell-cycle analysis using a monoclonal antibody to BrdUrd Cell Tissue Kinet 17 427-36
[33]  
Stallcup WB(1989)Bromodeoxyuridine immunohistochemical determination of the lengths of the cell cycle and the DNA-synthetic phase for an anatomically defined population J Neurocytol 18 311-8
[34]  
O'Reilly MS(2001)Time course of endothelial cell proliferation and microvascular remodeling in chronic inflammation Am J Pathol 158 2043-55
[35]  
Holmgren L(1997)Pericyte loss and microaneurysm formation in PDGF-B-deficient mice Science 277 242-5
[36]  
Shing Y(1993)Microscopic visualization of the retina by angiography with high-molecular-weight fluorescein-labeled dextrans in the mouse Microvasc Res 46 135-42
[37]  
Fidler IJ(1989)Capillary growth in the mesentery of normal young rats. Intravital video and electron microscope analyses J Submicrosc Cytol Pathol 21 1-34
[38]  
Kaighn ME(1989)Inhibition of endothelial cell movement by pericytes and smooth muscle cells: Activation of a latent transforming growth factor-beta 1-like molecule by plasmin during coculture J Cell Biol 109 309-15
[39]  
Narayan KS(1997)Vascular development: Cellular and molecular regulation FASEB J 11 365-73
[40]  
Ohnuki Y(1999)Endothelial cells modulate the proliferation of mural cell precursors via plateletderived growth factor-BB and heterotypic cell contact Circ Res 84 298-305