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Published on: August 14, 2012
PTPRM, a candidate tumor suppressor gene in small intestinal neuroendocrine tumors
Elham Barazeghi1, Per Hellman1, Gunnar Westin1
1Department of Surgical Sciences, Uppsala University, Uppsala University Hospital, Rudbeck Laboratory, Uppsala, Sweden.
Abstract:
Small intestinal neuroendocrine tumors (SI-NETs) are small, slow growing neoplasms with loss of one copy of chromosome 18 as a common event. Frequently mutated genes on chromosome 18 or elsewhere have not been found so far. The aim of this study was to investigate a possible tumor suppressor role of the transmembrane receptor type tyrosine phosphatase PTPµ (PTPRM at 18p11) in SI-NETs. Immunohistochemistry, quantitative RT-PCR, colony formation assay and quantitative CpG methylation analysis by pyrosequencing were performed. Undetectable/very low levels of PTPRM or aberrant pattern of immunostaining, with both negative and positive areas, were detected in the majority of tumors (33/40), and a significantly reduced mRNA expression in metastases compared to primary tumors was observed. Both the DNA methylation inhibitor 5-aza-2'-deoxycytidine and the S-adenosylhomocysteine hydrolase inhibitor 3-deazaneplanocin A (DZNep) induced PTPRM expression in CNDT2.5 and KRJ-I SI-NET cells. CpG methylation of upstream regulatory regions, the promoter region and the exon 1/intron 1 boundary was detected by pyrosequencing analysis of the two cell lines and not in the analyzed SI-NETs. Overexpression of PTPRM in the SI-NET cell lines reduced cell growth and cell proliferation and induced apoptosis. The tyrosine phosphatase activity of PTPRM was not involved in cell growth inhibition. The results support a role for PTPRM as a dysregulated candidate tumor suppressor gene in SI-NETs and further analyses of the involved mechanisms are warranted.
Insights
Transmembrane receptor type tyrosine phosphatase PTPµ (PTPRM) may act as a tumor suppressor in small intestinal neuroendocrine tumors (SI-NETs). PTPRM dysregulation and reduced expression were observed, with its overexpression inhibiting SI-NET cell growth.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Small intestinal neuroendocrine tumors (SI-NETs) are slow-growing neoplasms.
- Loss of chromosome 18 is common in SI-NETs, but specific mutated genes remain largely unidentified.
- The role of PTPµ (PTPRM) in SI-NETs is unexplored.
Purpose of the Study:
- To investigate the potential tumor suppressor role of PTPRM in SI-NETs.
- To analyze PTPRM expression, methylation, and functional impact in SI-NETs.
Main Methods:
- Immunohistochemistry and quantitative RT-PCR for PTPRM expression analysis.
- Colony formation assays and cell proliferation studies.
- Quantitative CpG methylation analysis by pyrosequencing.
- Treatment with methylation and demethylation inhibitors (5-aza-2'-deoxycytidine, DZNep).
Main Results:
- Reduced PTPRM expression and aberrant immunostaining were found in the majority of SI-NETs (33/40).
- PTPRM mRNA levels were significantly lower in metastases compared to primary tumors.
- DNA methylation inhibitors induced PTPRM expression in SI-NET cell lines.
- Overexpression of PTPRM suppressed cell growth, proliferation, and induced apoptosis in SI-NET cell lines.
Conclusions:
- PTPRM is a candidate tumor suppressor gene dysregulated in SI-NETs.
- PTPRM expression may be epigenetically silenced via promoter methylation.
- Further research is needed to elucidate the precise mechanisms of PTPRM dysregulation in SI-NETs.
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