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A comparison of X-ray and calculated structures of the enzyme MTH1
by
Carter, Megan
, Stewart, James J. P.
, Ryan, Hannah
, Stenmark, Pål
, Braun-Sand, Sonja B.
in
8-oxo-dGMP
/ Binding site
/ Binding Sites
/ Catalytic Domain
/ Characterization and Evaluation of Materials
/ Chemistry
/ Chemistry and Materials Science
/ Computational Biology - methods
/ Computer Appl. in Life Sciences
/ Computer Applications in Chemistry
/ Crystallography, X-Ray
/ DNA Repair Enzymes - chemistry
/ DNA Repair Enzymes - metabolism
/ Enzyme
/ Guanosine Monophosphate - analogs & derivatives
/ Guanosine Monophosphate - chemistry
/ Guanosine Monophosphate - metabolism
/ Humans
/ Hydrogen Bonding
/ Hydrolysis
/ Models, Molecular
/ Molecular Medicine
/ Molecular Structure
/ MTH1
/ Nudix box
/ Original Paper
/ Phosphoric Monoester Hydrolases - chemistry
/ Phosphoric Monoester Hydrolases - metabolism
/ PM7
/ Protein Binding
/ Protein Domains
/ Salt bridges
/ Substrate Specificity
/ Theoretical and Computational Chemistry
/ Thermodynamics
2016
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A comparison of X-ray and calculated structures of the enzyme MTH1
by
Carter, Megan
, Stewart, James J. P.
, Ryan, Hannah
, Stenmark, Pål
, Braun-Sand, Sonja B.
in
8-oxo-dGMP
/ Binding site
/ Binding Sites
/ Catalytic Domain
/ Characterization and Evaluation of Materials
/ Chemistry
/ Chemistry and Materials Science
/ Computational Biology - methods
/ Computer Appl. in Life Sciences
/ Computer Applications in Chemistry
/ Crystallography, X-Ray
/ DNA Repair Enzymes - chemistry
/ DNA Repair Enzymes - metabolism
/ Enzyme
/ Guanosine Monophosphate - analogs & derivatives
/ Guanosine Monophosphate - chemistry
/ Guanosine Monophosphate - metabolism
/ Humans
/ Hydrogen Bonding
/ Hydrolysis
/ Models, Molecular
/ Molecular Medicine
/ Molecular Structure
/ MTH1
/ Nudix box
/ Original Paper
/ Phosphoric Monoester Hydrolases - chemistry
/ Phosphoric Monoester Hydrolases - metabolism
/ PM7
/ Protein Binding
/ Protein Domains
/ Salt bridges
/ Substrate Specificity
/ Theoretical and Computational Chemistry
/ Thermodynamics
2016
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A comparison of X-ray and calculated structures of the enzyme MTH1
by
Carter, Megan
, Stewart, James J. P.
, Ryan, Hannah
, Stenmark, Pål
, Braun-Sand, Sonja B.
in
8-oxo-dGMP
/ Binding site
/ Binding Sites
/ Catalytic Domain
/ Characterization and Evaluation of Materials
/ Chemistry
/ Chemistry and Materials Science
/ Computational Biology - methods
/ Computer Appl. in Life Sciences
/ Computer Applications in Chemistry
/ Crystallography, X-Ray
/ DNA Repair Enzymes - chemistry
/ DNA Repair Enzymes - metabolism
/ Enzyme
/ Guanosine Monophosphate - analogs & derivatives
/ Guanosine Monophosphate - chemistry
/ Guanosine Monophosphate - metabolism
/ Humans
/ Hydrogen Bonding
/ Hydrolysis
/ Models, Molecular
/ Molecular Medicine
/ Molecular Structure
/ MTH1
/ Nudix box
/ Original Paper
/ Phosphoric Monoester Hydrolases - chemistry
/ Phosphoric Monoester Hydrolases - metabolism
/ PM7
/ Protein Binding
/ Protein Domains
/ Salt bridges
/ Substrate Specificity
/ Theoretical and Computational Chemistry
/ Thermodynamics
2016
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A comparison of X-ray and calculated structures of the enzyme MTH1
Journal Article
A comparison of X-ray and calculated structures of the enzyme MTH1
2016
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Overview
Modern computational chemistry methods provide a powerful tool for use in refining the geometry of proteins determined by X-ray crystallography. Specifically, computational methods can be used to correctly place hydrogen atoms unresolved by this experimental method and improve bond geometry accuracy. Using the semiempirical method PM7, the structure of the nucleotide-sanitizing enzyme MTH1, complete with hydrolyzed substrate 8-oxo-dGMP, was optimized and the resulting geometry compared with the original X-ray structure of MTH1. After determining hydrogen atom placement and the identification of ionized sites, the charge distribution in the binding site was explored. Where comparison was possible, all the theoretical predictions were in good agreement with experimental observations. However, when these were combined with additional predictions for which experimental observations were not available, the result was a new and alternative description of the substrate-binding site interaction. An estimate was made of the strengths and weaknesses of the PM7 method for modeling proteins on varying scales, ranging from overall structure to individual interatomic distances. An attempt to correct a known fault in PM7, the under-estimation of steric repulsion, is also described. This work sheds light on the specificity of the enzyme MTH1 toward the substrate 8-oxo-dGTP; information that would facilitate drug development involving MTH1.
Graphical Abstract
Overlay of the backbone traces of the two MTH1 protein chains (green and orange respectively) in PDB 3ZR0 and the equivalent PM7 structures (magenta and cyan respectively) each optimized separately.
Publisher
Springer Berlin Heidelberg
Subject
/ Characterization and Evaluation of Materials
/ Chemistry and Materials Science
/ Computational Biology - methods
/ Computer Appl. in Life Sciences
/ Computer Applications in Chemistry
/ DNA Repair Enzymes - chemistry
/ DNA Repair Enzymes - metabolism
/ Enzyme
/ Guanosine Monophosphate - analogs & derivatives
/ Guanosine Monophosphate - chemistry
/ Guanosine Monophosphate - metabolism
/ Humans
/ MTH1
/ Phosphoric Monoester Hydrolases - chemistry
/ Phosphoric Monoester Hydrolases - metabolism
/ PM7
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