Article

The structural insights of stem cell factor receptor (c-Kit) interaction with tyrosine phosphatase-2 (Shp-2): An in silico analysis

BMC Research Notes 01/2010; DOI:http://www.doaj.org/doaj?func=openurl&genre=article&issn=17560500&date=2010&volume=3&issue=1&spage=14
Source: DOAJ

ABSTRACT Abstract

Background

Stem cell factor (SCF) receptor c-Kit is recognized as a key signaling molecule, which transduces signals for the proliferation, differentiation and survival of stem cells. Binding of SCF to its receptor triggers transactivation, leading to the recruitment of kinases and phosphatases to the docking platforms of c-Kit catalytic domain. Tyrosine phosphatase-1 (Shp-1) deactivates/attenuates 'Kit' kinase activity. Whereas, Asp816Val mutation in the Kit activation loop transforms kinase domain to a constitutively activated state (switch off-to-on state), in a ligand-independent manner. This phenomenon completely abrogates negative regulation of Shp-1. To predict the possible molecular basis of interaction between c-Kit and Shp-1, we have performed an in silico protein-protein docking study between crystal structure of activated c-Kit (phosphorylated c-Kit) and full length crystal structure of Shp-2, a close structural counterpart of Shp-1.

Findings

Study revealed a stretch of conserved amino acids (Lys818 to Ser821) in the Kit activation domain, which makes decisive H-bonds with N-sh2 and phosphotyrosine binding pocket residues of the phosphatase. These H-bonds may impose an inhibitory steric hindrance to the catalytic domain of c-Kit, there by blocking further interaction of the activation loop molecules with incoming kinases. We have also predicted a phosphotyrosine binding pocket in SH2 domains of Shp-1, which is found to be predominantly closer to a catalytic groove like structure in c-Kit kinase domain.

Conclusions

This study predicts that crucial hydrogen bonding between N-sh2 domain of Shp-1 and Kit activation loop can modulate the negative regulation of c-Kit kinase by Shp-1. Thus, this finding is expected to play a significant role in designing suitable gain-of-function c-Kit mutants for inducing conditional proliferation of hematopoietic stem cells.

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Keywords

activated c-Kit
 
activation loop molecules
 
c-Kit catalytic domain
 
c-Kit kinase
 
c-Kit kinase domain
 
catalytic domain
 
conserved amino acids
 
constitutively activated state
 
inducing conditional proliferation
 
inhibitory steric hindrance
 
kinase domain
 
Kit activation domain
 
Kit activation loop
 
makes decisive H-bonds
 
N-sh2 domain
 
off-to-on state
 
phosphorylated c-Kit
 
phosphotyrosine binding pocket
 
SH2 domains
 
silico protein-protein docking study
 

Soumya Pati