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Steel factor and c-kit protooncogene: genetic lessons in signal transduction
1Department of Chemical Immunology, Weizmann Institute of Science, Rehovot, Israel.
Abstract:
Despite extensive research on the molecular mechanisms of signal transduction by growth factors and their oncogenic receptor tyrosine kinases, the physiological relevance of these pathways, especially in mammals, remains largely unknown. A unique exception is the Steel factor (SLF) and its c-kit-encoded receptor, because many natural germ line mutations of both the ligand and the receptor exist in mice. The protooncogene c-kit encodes a cell surface receptor that belongs to the immunoglobulin gene family and carries an intrinsic tyrosine kinase activity in its cytoplasmic portion. The precursor of the Kit ligand, SLF, is also a transmembrane protein that exists as a soluble factor as well as a cell surface protein. The interaction of Kit with SLF leads to receptor dimerization, kinase activation, and tyrosine phosphorylation of cytoplasmic proteins that contain Src homology 2 motifs. Various mutations in Kit and SLF result in a defective signaling pathway and underly the complex phenotypes of W and Sl mice, respectively. The early development of at least four cell lineages is affected. These are erythrocytes, melanocytes, germ cells, and mast cells. Correlation between the behavior of these lineages and specific mutations uncovered interesting physiological aspects of the mechanism of signal transduction by a polypeptide growth factor. These include the different degrees of severity of affected lineages, indications for distinct functions during early embryonic development and at late phases, the significance of synergy between a growth factor and lymphokines, the interaction between mutant and wild-type proteins in heterozygous animals, and the possibility that a surface-anchored ligand may act differently than a soluble factor. Predictably, the lessons learned with Kit and Sl mice will be widely relevant to other pairs of ligands and receptors that control the function of different cell lineages and physiological processes.
Insights
Natural mutations in Steel factor (SLF) and c-kit receptor in mice reveal crucial roles in development. These SLF-c-kit pathway defects impact erythrocytes, melanocytes, germ cells, and mast cells, offering insights into growth factor signaling.
Area of Science:
- Molecular biology
- Developmental biology
- Genetics
Background:
- Receptor tyrosine kinases (RTKs) and growth factor signaling are vital but their physiological relevance in mammals is often unclear.
- The c-kit receptor and its ligand, Steel factor (SLF), are exceptions due to naturally occurring mutations in mice.
- c-kit is an RTK involved in cell signaling, while SLF is a transmembrane protein existing in soluble and cell-bound forms.
Purpose of the Study:
- To investigate the physiological relevance of the SLF-c-kit signaling pathway in mammalian development.
- To understand how mutations in SLF and c-kit affect cell lineage development and signaling mechanisms.
- To explore various aspects of growth factor signal transduction using naturally occurring mutations.
Main Methods:
- Analysis of natural germ line mutations in the Steel factor (SLF) and c-kit genes in mice.
- Phenotypic characterization of affected cell lineages (erythrocytes, melanocytes, germ cells, mast cells).
- Correlation of specific mutations with observed defects to infer signaling pathway functions.
Main Results:
- Mutations in c-kit and SLF lead to defective signaling pathways, causing complex phenotypes in W and Sl mice.
- The development of at least four critical cell lineages is affected by these mutations.
- Observed phenotypes provide insights into differential lineage severity, developmental timing, ligand-receptor interactions, and ligand form (soluble vs. anchored).
Conclusions:
- The SLF-c-kit pathway is essential for the early development of multiple cell lineages in mammals.
- Studying these natural mutations reveals key physiological aspects of growth factor signal transduction.
- Findings from the SLF-c-kit system have broad implications for understanding other ligand-receptor systems in cell development and function.