Elevated matrix metalloprotease and angiostatin levels in integrin alpha 1 knockout mice cause reduced tumor
A Pozzi1, P E Moberg, L A Miles
1Department of Cell Biology, The Scripps Research Institute, La Jolla, CA 92037, USA.
Abstract:
Integrin alpha1beta1 is a collagen receptor abundantly expressed on microvascular endothelial cells. As well as being the only collagen receptor able to activate the Ras/Shc/mitogen-activated protein kinase pathway promoting fibroblast cell proliferation, it also acts to inhibit collagen and metalloproteinase (MMP) synthesis. We have observed that in integrin alpha1-null mice synthesis of MMP7 and MMP9 was markedly increased compared with that of their wild-type counterparts. As MMP7 and MMP9 have been shown to generate angiostatin from circulating plasminogen, and angiostatin acts as a potent inhibitor of endothelial cell proliferation, we determined whether tumor vascularization was altered in the alpha1-null mice. Tumors implanted into alpha1-null mice showed markedly decreased vascularization, with a reduction in capillary number and size, which was accompanied by an increase in plasma levels of angiostatin due to the action of MMP7 and MMP9 on circulating plasminogen. In vitro analysis of alpha1-null endothelial cells revealed a marked reduction of their proliferation on both integrin alpha1-dependent (collagenous) and independent (noncollagenous) substrata. This reduction was prevented by culturing alpha1-null cells with plasma derived from plasminogen-null animals, thus omitting the source from which to generate angiostatin. Plasma from tumor-bearing alpha1-null animals uniquely inhibited endothelial cell growth, and this inhibition was relieved by the coaddition of either MMP inhibitors, or antibody to angiostatin. Integrin alpha1-deficient mice thus provide a genetically characterized model for enhanced angiostatin production and serve to reveal an unwanted potential side effect of MMP inhibition, increased tumor angiogenesis.
Insights
Integrin alpha1beta1 deficiency in mice increases matrix metalloproteinases (MMPs) and angiostatin, leading to reduced tumor vascularization. This highlights a potential side effect of MMP inhibitors on tumor angiogenesis.
Area of Science:
- Cell Biology
- Molecular Biology
- Oncology
Background:
- Integrin alpha1beta1 is a collagen receptor on endothelial cells involved in cell proliferation and synthesis regulation.
- It activates the Ras/Shc/MAPK pathway for fibroblast proliferation and inhibits collagen and metalloproteinase (MMP) synthesis.
Purpose of the Study:
- To investigate the role of integrin alpha1beta1 in tumor vascularization.
- To determine the impact of integrin alpha1 deficiency on MMP synthesis and angiostatin production.
- To explore the effect of altered angiostatin levels on endothelial cell proliferation and tumor angiogenesis.
Main Methods:
- Comparison of MMP7 and MMP9 synthesis in integrin alpha1-null and wild-type mice.
- Analysis of tumor vascularization (capillary number and size) in implanted tumors.
- Measurement of plasma angiostatin levels.
- In vitro proliferation assays of alpha1-null endothelial cells on various substrata, with and without plasminogen.
Main Results:
- Integrin alpha1-null mice exhibited significantly increased MMP7 and MMP9 synthesis.
- Tumors in alpha1-null mice showed markedly decreased vascularization and reduced capillary density.
- Plasma angiostatin levels were elevated in alpha1-null mice due to MMP action on plasminogen.
- Alpha1-null endothelial cells displayed reduced proliferation, preventable by removing plasminogen.
Conclusions:
- Integrin alpha1-deficient mice serve as a model for enhanced angiostatin production.
- Increased angiostatin, driven by elevated MMPs, inhibits endothelial cell proliferation and tumor vascularization.
- MMP inhibition may have an unwanted side effect of increasing tumor angiogenesis.
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