Alterations of the c-kit gene in testicular germ cell tumors

Yuji Sakuma1, Shinji Sakurai, Sachiko Oguni

  • 1Department of Pathology, Jichi Medical School, Kawachi-gun, Tochigi 329-0498, Japan. ssakurai@jichi.ac.jp

Cancer Science
|June 26, 2003
PubMed

Insights

Somatic mutations in the c-kit gene were identified in 11.8% of testicular germ cell tumors (GCTs), specifically in seminomas. These mutations, along with c-kit isoform expression, may contribute to GCT development and suggest potential therapeutic targets.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • The c-kit gene encodes a receptor tyrosine kinase (KIT) implicated in mast cell tumors and gastrointestinal stromal tumors (GISTs).
  • KIT is expressed in human testicular germ cell tumors (GCTs), including seminomas, but c-kit gene mutations are rarely reported.

Purpose of the Study:

  • To determine the frequency and location of c-kit gene mutations in testicular GCTs.
  • To investigate the role of c-kit mutations and isoforms in GCT development.
  • To assess the potential of GCTs as targets for KIT inhibitors like STI571.

Main Methods:

  • Analysis of the entire c-kit coding region and hot spot exons (9, 11, 13, 17) using polymerase chain reaction and direct sequencing.
  • Examination of c-kit Gly-Asn-Asn-Lys510-513 (GNNK) isoform expression in testicular GCTs.

Main Results:

  • Somatic c-kit mutations were detected in 4 out of 34 (11.8%) pure seminomas.
  • Identified mutations included exon 11 (W557R) and exon 17 (D816H, D816V), consistent with gain-of-function.
  • Coexpression of GNNK+ and GNNK- c-kit isoforms was observed, with a dominant GNNK- transcript in all GCTs.

Conclusions:

  • Gain-of-function c-kit mutations and preferential GNNK- isoform expression may contribute to testicular GCT development.
  • Testicular GCTs might be susceptible to KIT-targeted therapies such as STI571.

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