E-cadherin mutation and Snail overexpression as alternative mechanisms of E-cadherin inactivation in synovial sarcoma

Tsuyoshi Saito1, Yoshinao Oda, Ken-ichi Kawaguchi

  • 1Department of Anatomic Pathology, Graduate School of Medical Sciences, Kyushu University, Fukuoka, Japan. saitot@mskcc.org

Oncogene
|October 7, 2004
PubMed

Insights

E-cadherin downregulation in synovial sarcoma (SS) is linked to Snail repression or gene mutations, impacting epithelial differentiation. This study investigates the mechanisms behind E-cadherin loss in SS tumors.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Genetics

Background:

  • Synovial sarcoma (SS) is a spindle cell sarcoma with potential glandular differentiation (biphasic SS) or pure spindle cell morphology (monophasic SS).
  • Previous findings indicated frequent E-cadherin gene mutations in SS, suggesting its inactivation contributes to spindle cell morphology.
  • The precise mechanisms causing E-cadherin downregulation in SS remained unclear.

Purpose of the Study:

  • To investigate the mechanisms of E-cadherin silencing in 40 synovial sarcoma (SS) cases.
  • To analyze genetic and epigenetic alterations of the E-cadherin gene and its repressor, Snail.
  • To examine the expression of E-cadherin and the epithelial differentiation factor ELF3 in SS.

Main Methods:

  • Polymerase chain reaction-single-strand conformation polymorphism (PCR-SSCP) for genetic analysis.
  • Methylation-specific PCR to assess promoter hypermethylation.
  • Real-time quantitative PCR (RT-qPCR) for gene expression analysis (E-cadherin, ELF3, Snail).
  • RT-PCR and immunohistochemistry for E-cadherin expression.
  • Analysis of SYT-SSX fusion types.

Main Results:

  • E-cadherin and ELF3 transcripts were detected in 67.5% and 62.5% of SS cases, respectively, and often coexpressed.
  • E-cadherin promoter hypermethylation occurred in 12.5% of cases, but only one showed mRNA silencing.
  • Missense mutations in E-cadherin were found in 12.5% of SS, predominantly in monophasic tumors with SYT-SSX1 fusion.
  • E-cadherin mRNA expression correlated with reduced Snail levels (P=0.03).
  • Membranous E-cadherin expression (35.0%) was associated with SYT-SSX1 fusion and biphasic histology.
  • ELF3 expression was higher in biphasic than monophasic SS.

Conclusions:

  • E-cadherin loss in SS is primarily driven by Snail-mediated trans-repression or inactivating mutations.
  • Downregulation of E-cadherin is linked to the absence or loss of glandular epithelial differentiation in SS.
  • Specific SS subtypes and fusion types may influence E-cadherin expression and mutation status.

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