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Departments of 1 Pediatrics, 2 Cell and Developmental Biology, and 3 Genetic Medicine, Weill College of Medicine at Cornell University; and 4 Memorial Sloan-Kettering Cancer Center, New York, New York
Requests for reprints: David Lyden, Children's Cancer and Blood Foundation Laboratories, Box 284, 515 East 51st street, Weill Cornell Medical College, New York, NY 10021. Phone 212-746-3941; E-mail: dcl2001{at}med.cornell.edu.
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| Introduction |
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| Genetic and Environmental Mediators of Organ-Specific Metastasis |
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| Bone Marrow Progenitors to the Tumor Microenvironment |
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| VEGFR1+ HPCs Define the Premetastatic Niche |
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4ß1), allowing them to adhere specifically to the newly synthesized fibronectin for the initiation of cellular cluster formation (Fig. 1, top left
; Fig. 1, bottom). The MMP-9 produced by HPCs may degrade the basement membrane, accelerating the extravasation of more VEGFR1+ cells into the niche. This stromal invasion of HPCs into the premetastatic microenvironment possibly represents a pathologic state unto itself with the disruption of the normal physiologic processes in the lung and other tissues. Moreover, Id3 is coexpressed within the premetastatic niche and may be involved with the proliferation and mobilization of HPCs from the bone marrow to distinct sites, maintaining an activated progenitor state within these cellular clusters. The VEGFR1+ HPCs, along with fibronectin and associated stromal cells, alter the local microenvironment, which leads to the activation of other integrins and chemokines such as SDF-1 that promote attachment, survival, and growth of tumor cells. At these established GFP-labeled premetastatic sites, tumor cells tagged with DsRed fluorescence bind and permit progression to micrometastatic lesions (Fig. 1, top middle; Fig. 1, bottom). Soon after the implantation of tumor cells, VEGFR2+ endothelial progenitors are then recruited to promote vasculogenesis, furthering maturation to a fully developed metastatic lesion at the site of the premetastatic niche (Fig. 1, top right). The dependence of the evolving metastatic process on these changes is further illustrated when monoclonal antibodies are used. Inhibiting VEGFR1+ HPCs eliminates the premetastatic niche, and targeting VEGFR2+ EPCs results in the formation of small micrometastasis without vascularization, preventing the formation of full metastatic lesions (26). Similar to carcinoma-associated fibroblasts and tumor-associated macrophages, which promote tumor progression via the creation of a supportive microenvironment, the VEGFR1+ bone marrowderived cells could foster inflammation and sustain tumor cell growth at distant organ sites (2729). The bone marrowderived HPCs forming the premetastatic niche were found in both implanted tumor and spontaneous transgenic tumor models.
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| Tumor Chemokines May Determine the Tumor Metastatic Profile |
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| VEGFR1 Activation Promotes Adhesion and Homing of Tumor and Endothelial Cells |
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| Removal of VEGFR1 Microenvironment May Predispose to Tumor Dormancy |
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| The Premetastatic Niche: A Novel Predictor of Metastasis |
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| Acknowledgments |
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| Footnotes |
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Received 7/ 5/06. Revised 9/26/06. Accepted 10/23/06.
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B binding to the promoter as a consequence of I
B
-induced block of p65/p50 nuclear translocation. J Biol Chem 2001;276:116472.This article has been cited by other articles:
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||||
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||||
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||||
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||||
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||||
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||||
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||||
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||||
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J. A. Blansfield, D. Caragacianu, H. R. Alexander III, M. A. Tangrea, S. Y. Morita, D. Lorang, P. Schafer, G. Muller, D. Stirling, R. E. Royal, et al. Combining Agents that Target the Tumor Microenvironment Improves the Efficacy of Anticancer Therapy Clin. Cancer Res., January 1, 2008; 14(1): 270 - 280. [Abstract] [Full Text] [PDF] |
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