Hester_2019_Chem.Res.Toxicol_32_1801

Reference

Title : Engineering Dynamic Surface Peptide Networks on ButyrylcholinesteraseG117H for Enhanced Organophosphosphorus Anticholinesterase Catalysis - Hester_2019_Chem.Res.Toxicol_32_1801
Author(s) : Hester KP , Bhattarai K , Jiang H , Agarwal PK , Pope C
Ref : Chemical Research in Toxicology , 32 :1801 , 2019
Abstract :

The single residue mutation of butyrylcholinesterase (BChEG117H) hydrolyzes a number of organophosphosphorus (OP) anticholinesterases. Whereas other BChE active site/proximal mutations have been investigated, none are sufficiently active to be prophylactically useful. In a fundamentally different computer simulations driven strategy, we identified a surface peptide loop (residues 278-285) exhibiting dynamic motions during catalysis and modified it via residue insertions. We evaluated these loop mutants using computer simulations, substrate kinetics, resistance to inhibition, and enzyme reactivation assays using both the choline ester and OP substrates. A slight but significant increase in reactivation was noted with paraoxon with one of the mutants, and changes in KM and catalytic efficiency were noted in others. Simulations suggested weaker interactions between OP versus choline substrates and the active site of all engineered versions of the enzyme. The results indicate that an improvement of OP anticholinesterase hydrolysis through surface loop engineering may be a more effective strategy in an enzyme with higher intrinsic OP compound hydrolase activity.

PubMedSearch : Hester_2019_Chem.Res.Toxicol_32_1801
PubMedID: 31411024

Related information

Citations formats

Hester KP, Bhattarai K, Jiang H, Agarwal PK, Pope C (2019)
Engineering Dynamic Surface Peptide Networks on ButyrylcholinesteraseG117H for Enhanced Organophosphosphorus Anticholinesterase Catalysis
Chemical Research in Toxicology 32 :1801

Hester KP, Bhattarai K, Jiang H, Agarwal PK, Pope C (2019)
Chemical Research in Toxicology 32 :1801