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Dimerization and activation of the kit receptor by monovalent and bivalent binding of the stem cell factor
1Department of Chemical Immunology, Weizmann Institute of Science, Rehovot, Israel.
Abstract:
The protooncogene c-kit encodes a tyrosine kinase receptor for the stem cell factor (SCF). Mutants of c-kit were shown to confer a pleiotropic defective phenotype and often display negative dominance in heterozygous mice. To explore the involvement of receptor dimerization in this genetic phenomenon, we employed both a human ligand, which does not recognize the murine receptor, and a rodent SCF, which binds to the human receptor with 100-fold reduced affinity as compared with human SCF. SCF binding to living cells was found to induce rapid and complete receptor dimerization that involved activation of the catalytic tyrosine kinase function. Although receptor dimerization can be attributed to the dimeric nature of the ligand, no dissociation of Kit dimers occurred at high excess of SCF, suggesting that receptor-receptor interactions are also involved in dimer stabilization. This was supported by in vitro formation of heterodimers between the human and murine Kit proteins through monovalent binding of species-specific human SCF. By coexpression of human and mouse Kit in murine fibroblasts, we found that receptor heterodimerization in living cells involved an increase in the affinity of human Kit for rat SCF and also an accelerated rate of receptor down-regulation. When a human Kit mutant lacking the kinase insert domain was coexpressed with the murine wild-type receptor, we observed a significant decrease in both the activation of the intact tyrosine kinase and its coupling to an effector protein, namely phosphatidylinositol 3'-kinase. Our results favor a receptor activation model that assumes an initial step of monovalent ligand binding, followed by an intermediate receptor dimer bound by one arm of the ligand molecule. This model predicts the existence of an intrinsic receptor dimerization site and provides a structural basis for genetic dominance of mutant SCF receptors.
Insights
Protooncogene c-kit receptor dimerization is ligand-induced but stabilized by receptor interactions. This dimerization mechanism explains the genetic dominance observed in mutant stem cell factor (SCF) receptors.
Area of Science:
- Molecular Biology
- Cell Signaling
- Genetics
Background:
- The protooncogene c-kit encodes a tyrosine kinase receptor for stem cell factor (SCF).
- Mutant c-kit receptors can exhibit negative dominance in heterozygous mice, suggesting complex genetic interactions.
- Receptor dimerization is a key mechanism in tyrosine kinase receptor activation and signaling.
Purpose of the Study:
- To investigate the role of receptor dimerization in the genetic phenomenon of c-kit mutants.
- To elucidate the mechanisms underlying stem cell factor receptor activation and stabilization.
- To explore the structural basis for the genetic dominance of mutant SCF receptors.
Main Methods:
- Utilized human and rodent stem cell factor (SCF) ligands with varying affinities for human and murine c-kit receptors.
- Employed coexpression of human and murine c-kit in murine fibroblasts to study heterodimerization.
- Investigated the impact of a kinase insert domain-deficient c-kit mutant on receptor activation and signaling.
Main Results:
- SCF binding induced rapid and complete c-kit receptor dimerization, activating tyrosine kinase function.
- Receptor-receptor interactions, not solely ligand-induced, stabilize c-kit dimers.
- Heterodimerization of human and mouse c-kit increased affinity for SCF and accelerated receptor down-regulation.
- A kinase-inactive c-kit mutant significantly impaired wild-type receptor kinase activation and phosphatidylinositol 3'-kinase coupling.
Conclusions:
- A model of c-kit receptor activation involving initial monovalent ligand binding followed by dimer stabilization through receptor-receptor interactions is proposed.
- This model explains the observed genetic dominance of mutant SCF receptors.
- Identified an intrinsic receptor dimerization site, providing a structural basis for c-kit receptor function and dysfunction.