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Molecular Biology, Pathobiology, and Genetics |
1 Department of Biology and Center for Cancer Research, Massachusetts Institute of Technology, Cambridge, Massachusetts and 2 Brigham and Women's Hospital, Department of Pathology, Boston, Massachusetts
Requests for reprints: Al Charest or David Housman, Center for Cancer Research, Massachusetts Institute of Technology, E17-536, 77 Massachusetts Avenue, Cambridge, MA 02139. Phone: 617-253-3020; Fax: 617-253-5202; E-mail: charest{at}mit.edu or dhousman{at}mit.edu.
Glioblastoma multiforme is the most common and lethal form of primary brain cancer. Diagnosis of this advanced glioma has a poor prognosis due to the ineffectiveness of current therapies. Aberrant expression of receptor tyrosine kinases (RTK) in glioblastoma multiformes is suggestive of their role in initiation and maintenance of these tumors of the central nervous system. In fact, ectopic expression of the orphan RTK ROS is a frequent event in human brain cancers, yet the pathologic significance of this expression remains undetermined. Here, we show that a glioblastoma-associated, ligand-independent rearrangement product of ROS (FIG-ROS) cooperates with loss of the tumor suppressor gene locus Ink4a;Arf to produce glioblastomas in the mouse. We show that this FIG-ROS-mediated tumor formation in vivo parallels the activation of the tyrosine phosphatase SH2 domaincontaining phosphatase-2 (SHP-2) and a phosphatidylinositol 3-kinase/Akt/mammalian target of rapamycin signaling axis in tumors and tumor-derived cell lines. We have established a fully penetrant preclinical model for adult onset of glioblastoma multiforme in keeping with major genetic events observed in the human disease. These findings provide novel and important insights into the role of ROS and SHP-2 function in solid tumor biology and set the stage for preclinical testing of targeted therapeutic approaches. (Cancer Res 2006; 66(15): 7473-81)
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