>
Fa   |   Ar   |   En
   Structure of the Trehalose-6-phosphate Phosphatase from Brugia malayi Reveals Key Design Principles for Anthelmintic Drugs  
   
نویسنده farelli j.d. ,galvin b.d. ,li z. ,liu c. ,aono m. ,garland m. ,hallett o.e. ,causey t.b. ,ali-reynolds a. ,saltzberg d.j. ,carlow c.k.s. ,dunaway-mariano d. ,allen k.n.
منبع plos pathogens - 2014 - دوره : 10 - شماره : 7
چکیده    Parasitic nematodes are responsible for devastating illnesses that plague many of the world's poorest populations indigenous to the tropical areas of developing nations. among these diseases is lymphatic filariasis,a major cause of permanent and long-term disability. proteins essential to nematodes that do not have mammalian counterparts represent targets for therapeutic inhibitor discovery. one promising target is trehalose-6-phosphate phosphatase (t6pp) from brugia malayi. in the model nematode caenorhabditis elegans,t6pp is essential for survival due to the toxic effect(s) of the accumulation of trehalose 6-phosphate. t6pp has also been shown to be essential in mycobacterium tuberculosis. we determined the x-ray crystal structure of t6pp from b. malayi. the protein structure revealed a stabilizing n-terminal mit-like domain and a catalytic c-terminal c2b-type had phosphatase fold. structure-guided mutagenesis,combined with kinetic analyses using a designed competitive inhibitor,trehalose 6-sulfate,identified five residues important for binding and catalysis. this structure-function analysis along with computational mapping provided the basis for the proposed model of the t6pp-trehalose 6-phosphate complex. the model indicates a substrate-binding mode wherein shape complementarity and van der waals interactions drive recognition. the mode of binding is in sharp contrast to the homolog sucrose-6-phosphate phosphatase where extensive hydrogen-bond interactions are made to the substrate. together these results suggest that high-affinity inhibitors will be bi-dentate,taking advantage of substrate-like binding to the phosphoryl-binding pocket while simultaneously utilizing non-native binding to the trehalose pocket. the conservation of the key residues that enforce the shape of the substrate pocket in t6pp enzymes suggest that development of broad-range anthelmintic and antibacterial therapeutics employing this platform may be possible. © 2014 farelli et al.
آدرس department of chemistry,boston university,boston,ma, United States, new england biolabs,division of parasitology,ipswich,ma, United States, new england biolabs,division of parasitology,ipswich,ma, United States, department of chemistry and chemical biology,university of new mexico,albuquerque,nm, United States, department of chemistry,boston university,boston,ma, United States, department of chemistry,boston university,boston,ma, United States, department of chemistry,boston university,boston,ma, United States, new england biolabs,division of parasitology,ipswich,ma, United States, new england biolabs,division of parasitology,ipswich,ma, United States, department of chemistry,boston university,boston,ma, United States, new england biolabs,division of parasitology,ipswich,ma, United States, department of chemistry and chemical biology,university of new mexico,albuquerque,nm, United States, department of chemistry,boston university,boston,ma, United States
 
     
   
Authors
  
 
 

Copyright 2023
Islamic World Science Citation Center
All Rights Reserved