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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
Abstract:
CD117 (KIT) is a type III receptor tyrosine kinase operating in cell signal transduction in several cell types. Normally KIT is activated (phosphorylated) by binding of its ligand, the stem cell factor. This leads to a phosphorylation cascade ultimately activating various transcription factors in different cell types. Such activation regulates apoptosis, cell differentiation, proliferation, chemotaxis, and cell adhesion. KIT-dependent cell types include mast cells, some hematopoietic stem cells, germ cells, melanocytes, and Cajal cells of the gastrointestinal tract, and neoplasms of these cells are examples of KIT-positive tumors. Other KIT-positive normal cells include epithelial cells in skin adnexa, breast, and subsets of cerebellar neurons. KIT positivity has been variably reported in sarcomas such as angiosarcoma, Ewing sarcoma, synovial sarcoma, leiomyosarcoma, and MFH; results of the last three are controversial. The variations in published data may result from incomplete specificity of some polyclonal antibodies, possibly contributed by too high dilutions. Also, KIT is expressed in pulmonary and other small cell carcinomas, adenoid cystic carcinoma, renal chromophobe carcinoma, thymic, and some ovarian and few breast carcinomas. A good KIT antibody reacts with known KIT positive cells, and smooth muscle cells and fibroblasts are negative. KIT deficiency due to hereditary nonsense/missense mutations leads to disruption of KIT-dependent functions such as erythropoiesis, skin pigmentation, fertility, and gastrointestinal motility. Conversely, pathologic activation of KIT through gain-of-function mutations leads to neoplasia of KIT-dependent and KIT-positive cell types at least in three different systems: mast cells/myeloid cells--mastocytosis/acute myeloid leukemia, germ cells--seminoma, and Cajal cells--gastrointestinal stromal tumors (GISTs). KIT tyrosine kinase inhibitors such as imatinib mesylate are the generally accepted treatment of metastatic GISTs, and their availability has prompted an active search for other treatment targets among KIT-positive tumors such as myeloid leukemias and small cell carcinoma of the lung, with variable and often nonconvincing results.
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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