KIT (CD117): a review on expression in normal and neoplastic tissues, and mutations and their clinicopathologic

Markku Miettinen1, Jerzy Lasota

  • 1Department of Soft Tissue Pathology, Armed Forces Institute of Pathology, Washington, DC 20306-6000, USA. miettinen@afip.osd.mil

Insights

CD117 (KIT) is a receptor tyrosine kinase crucial for cell signaling, differentiation, and proliferation. Aberrant KIT activation drives various cancers, including GISTs, while KIT inhibitors show therapeutic promise.

Area of Science:

  • Molecular Biology
  • Cell Signaling
  • Oncology

Background:

  • CD117 (KIT) is a type III receptor tyrosine kinase vital for signal transduction in diverse cell types.
  • KIT activation regulates critical cellular processes including apoptosis, differentiation, proliferation, chemotaxis, and adhesion.

Purpose of the Study:

  • To review the role of KIT in normal cellular functions and its implication in various neoplasms.
  • To discuss the diagnostic utility of KIT expression and the therapeutic potential of KIT inhibitors.

Main Methods:

  • Literature review of studies investigating KIT expression and function in normal tissues and cancers.
  • Analysis of diagnostic antibody specificity and interpretation of KIT positivity in tumors.
  • Review of clinical data on KIT tyrosine kinase inhibitors in KIT-positive malignancies.

Main Results:

  • KIT is expressed in normal cells like mast cells, melanocytes, and Cajal cells; aberrant activation drives tumors such as GISTs, mastocytosis, and seminomas.
  • KIT positivity is reported in various sarcomas and carcinomas, though antibody specificity can be a challenge.
  • KIT mutations are implicated in hereditary disorders and oncogenesis, with targeted therapies showing efficacy in specific cancers.

Conclusions:

  • KIT plays a significant role in normal cell physiology and its dysregulation is a hallmark of several human cancers.
  • Accurate detection of KIT expression is crucial for diagnosis and therapeutic stratification of KIT-driven tumors.
  • Targeted inhibition of KIT offers a viable therapeutic strategy for specific KIT-positive malignancies, spurring research into broader applications.

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