Malignant astrocytomas comprise the majority of central nervous system tumors in humans and are associated with a dismal prognosis despite the application of multimodality therapy. It is hypothesized that the genesis of these tumors occurs as a multistep progression from benign astrocytoma to anaplastic astrocytoma (AA), and finally, to glioblastoma multiforme (GBM). In this transformation from benign to malignant, numerous, and as of now, poorly understood cytogenetic and biochemical changes take place. Recently it was demonstrated that the progression of astrocytes from a benign to a malignant phenotype is accompanied by a change in the RNA processing of fibroblast growth factor receptor 1 (FGFR-1) gene. The level of a high affinity form of the FGFR-1 is dramatically elevated as a result altered expression and RNA splicing. The strong correlation between altered FGFR gene expression and astrocyte malignancy underscores the importance of understanding the role of FGFR in normal and malignant astrocyte cell growth. This proposal will test the hypothesis that alterations in FGFR RNA splicing contribute to abnormal growth of malignant astrocytes. The specific objectives of this proposal are 1) to develop a model system which mimics the FGFR-1 RNA processing pathways observed in normal brain glial cells and glioblastoma, 2) to use this model to identify sequence elements within the FGFR-1 precursor RNA which act to regulate splicing, 3) to use the regulatory sequence information to identify regulatory factors acting in trans, 4) to determine the relationship between trans-acting factor expression and transformation.
Aim 1 will be accomplished by examining available astrocyte cell lines for the RNA splicing patterns of FGFR-1 transcripts. We will also express a chimeric FGFR-1 minigene in these cell lines to determine if its RNA transcripts are processed in a manner analogous to the endogenous gene.
Aim 2 will be accomplished by introducing sequence alterations, deletions, substitutions and mutations, into the FGFR-1 minigene and determining their effect on RNA processing decisions.
In Aim 3 we will develop an assay systems to be used to purify the factor(s) involved in regulation of FGFR-1 RNA splicing. Two approaches will be used: identification of RNA- binding proteins through sequence-specific interaction and use of expression cloning which functionally detects RNA splicing. Finally, in Aim 4 we will use cDNA sequence information derived from Aim 3 to measure the level of trans-acting factor expression in graded tumor samples. A further understanding of the mechanisms underlying the changes in FGFR-1 RNA processing in malignant astrocytomas may shed light on the transformation process in astrocytes and provide new targets for suppressing their growth.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Project (R01)
Project #
5R01CA067946-03
Application #
2414398
Study Section
Metabolic Pathology Study Section (MEP)
Project Start
1995-07-01
Project End
2000-04-30
Budget Start
1997-05-01
Budget End
1998-04-30
Support Year
3
Fiscal Year
1997
Total Cost
Indirect Cost
Name
University of Texas MD Anderson Cancer Center
Department
Internal Medicine/Medicine
Type
Other Domestic Higher Education
DUNS #
001910777
City
Houston
State
TX
Country
United States
Zip Code
77030
Izaguirre, Daisy I; Zhu, Wen; Hai, Tao et al. (2012) PTBP1-dependent regulation of USP5 alternative RNA splicing plays a role in glioblastoma tumorigenesis. Mol Carcinog 51:895-906
Zhu, Wen; Hai, Tao; Ye, Lei et al. (2010) Medullary thyroid carcinoma cell lines contain a self-renewing CD133+ population that is dependent on ret proto-oncogene activity. J Clin Endocrinol Metab 95:439-44
Cheung, Hannah C; Hai, Tao; Zhu, Wen et al. (2009) Splicing factors PTBP1 and PTBP2 promote proliferation and migration of glioma cell lines. Brain 132:2277-88
Hu, Jianhua; He, Xuming; Cote, Gilbert J et al. (2009) Singular Value Decomposition-based Alternative Splicing Detection. J Am Stat Assoc 104:944-953
Cheung, Hannah C; Baggerly, Keith A; Tsavachidis, Spiridon et al. (2008) Global analysis of aberrant pre-mRNA splicing in glioblastoma using exon expression arrays. BMC Genomics 9:216
Cheung, Hannah C; Corley, Lynda J; Fuller, Gregory N et al. (2006) Polypyrimidine tract binding protein and Notch1 are independently re-expressed in glioma. Mod Pathol 19:1034-41
Bruno, Ivone G; Jin, Wei; Cote, Gilbert J (2004) Correction of aberrant FGFR1 alternative RNA splicing through targeting of intronic regulatory elements. Hum Mol Genet 13:2409-20
Jin, Wei; Cote, Gilbert J (2004) Enhancer-dependent splicing of FGFR1 alpha-exon is repressed by RNA interference-mediated down-regulation of SRp55. Cancer Res 64:8901-5
Jin, Wei; Bruno, Ivone G; Xie, Tong-Xin et al. (2003) Polypyrimidine tract-binding protein down-regulates fibroblast growth factor receptor 1 alpha-exon inclusion. Cancer Res 63:6154-7
Kikumori, Toyone; Cote, Gilbert J; Gagel, Robert F (2002) Naturally occurring heterologous trans-splicing of adenovirus RNA with host cellular transcripts during infection. FEBS Lett 522:41-6

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