scholarly journals The thiol group of the L-arabinose-binding protein. Chromophoric labeling and chemical identification of the sugar-binding site.

1979 ◽  
Vol 254 (16) ◽  
pp. 7521-7528 ◽  
Author(s):  
D.M. Miller ◽  
M.E. Newcomer ◽  
F.A. Quiocho
1998 ◽  
Vol 333 (3) ◽  
pp. 601-608 ◽  
Author(s):  
Paul G. HITCHEN ◽  
Nicholas P. MULLIN ◽  
Maureen E. TAYLOR

The extracellular region of the macrophage mannose receptor, a protein involved in the innate immune response, contains eight C-type carbohydrate-recognition domains (CRDs). The fourth of these domains, CRD-4, is central to ligand binding by the receptor, and binds mannose, fucose and N-acetylglucosamine by direct ligation to Ca2+. Site-directed mutagenesis combined with NMR and molecular modelling have been used to determine the orientation of monosaccharides bound to CRD-4. Two resonances in the 1H NMR spectrum of CRD-4 that are perturbed on sugar binding are identified as a methyl proton from a leucine side chain in the core of the domain and the H-2 proton of a histidine close to the predicted sugar-binding site. The effects of mutagenesis of this histidine residue, a nearby isoleucine residue and a tyrosine residue previously shown to stack against sugars bound to CRD-4 show the absolute orientation of sugars in the binding site. N-Acetylglucosamine binds to CRD-4 of the mannose receptor in the orientation seen in crystal structures of the CRD of rat liver mannose-binding protein. Mannose binds to CRD-4 in the orientation seen in the CRD of rat serum mannose-binding protein and is rotated by 180 ° relative to GlcNAc bound to CRD-4. Interaction of the O-methyl group and C-1 of α-methyl Fuc with the tyrosine residue accounts for the strong preference of CRD-4 for this anomer of fucose. Both anomers of fucose bind to CRD-4 in the orientation seen in rat liver mannose-binding protein.


1972 ◽  
Vol 71 (2_Suppla) ◽  
pp. S420-S438 ◽  
Author(s):  
David L. Williams ◽  
Jack Gorski

ABSTRACT A number of studies have been carried out to examine the distribution of the oestradiol-binding protein complex between cytosol and nuclear fractions as a function of total binding site saturation. The results of these studies suggest that each binding protein has one binding site for the hormone. In addition, these studies suggest that the interaction of the oestradiol-binding protein complex with the nucleus involves a large number of low affinity association sites.


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