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Side Chain Conformational Averaging in Human Dihydrofolate Reductase

[Image: see text] The three-dimensional structures of the dihydrofolate reductase enzymes from Escherichia coli (ecDHFR or ecE) and Homo sapiens (hDHFR or hE) are very similar, despite a rather low level of sequence identity. Whereas the active site loops of ecDHFR undergo major conformational rearr...

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Autores principales: Tuttle, Lisa M., Dyson, H. Jane, Wright, Peter E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3985697/
https://www.ncbi.nlm.nih.gov/pubmed/24498949
http://dx.doi.org/10.1021/bi4015314
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author Tuttle, Lisa M.
Dyson, H. Jane
Wright, Peter E.
author_facet Tuttle, Lisa M.
Dyson, H. Jane
Wright, Peter E.
author_sort Tuttle, Lisa M.
collection PubMed
description [Image: see text] The three-dimensional structures of the dihydrofolate reductase enzymes from Escherichia coli (ecDHFR or ecE) and Homo sapiens (hDHFR or hE) are very similar, despite a rather low level of sequence identity. Whereas the active site loops of ecDHFR undergo major conformational rearrangements during progression through the reaction cycle, hDHFR remains fixed in a closed loop conformation in all of its catalytic intermediates. To elucidate the structural and dynamic differences between the human and E. coli enzymes, we conducted a comprehensive analysis of side chain flexibility and dynamics in complexes of hDHFR that represent intermediates in the major catalytic cycle. Nuclear magnetic resonance relaxation dispersion experiments show that, in marked contrast to the functionally important motions that feature prominently in the catalytic intermediates of ecDHFR, millisecond time scale fluctuations cannot be detected for hDHFR side chains. Ligand flux in hDHFR is thought to be mediated by conformational changes between a hinge-open state when the substrate/product-binding pocket is vacant and a hinge-closed state when this pocket is occupied. Comparison of X-ray structures of hinge-open and hinge-closed states shows that helix αF changes position by sliding between the two states. Analysis of χ(1) rotamer populations derived from measurements of (3)J(CγCO) and (3)J(CγN) couplings indicates that many of the side chains that contact helix αF exhibit rotamer averaging that may facilitate the conformational change. The χ(1) rotamer adopted by the Phe31 side chain depends upon whether the active site contains the substrate or product. In the holoenzyme (the binary complex of hDHFR with reduced nicotinamide adenine dinucleotide phosphate), a combination of hinge opening and a change in the Phe31 χ(1) rotamer opens the active site to facilitate entry of the substrate. Overall, the data suggest that, unlike ecDHFR, hDHFR requires minimal backbone conformational rearrangement as it proceeds through its enzymatic cycle, but that ligand flux is brokered by more subtle conformational changes that depend on the side chain motions of critical residues.
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spelling pubmed-39856972015-02-05 Side Chain Conformational Averaging in Human Dihydrofolate Reductase Tuttle, Lisa M. Dyson, H. Jane Wright, Peter E. Biochemistry [Image: see text] The three-dimensional structures of the dihydrofolate reductase enzymes from Escherichia coli (ecDHFR or ecE) and Homo sapiens (hDHFR or hE) are very similar, despite a rather low level of sequence identity. Whereas the active site loops of ecDHFR undergo major conformational rearrangements during progression through the reaction cycle, hDHFR remains fixed in a closed loop conformation in all of its catalytic intermediates. To elucidate the structural and dynamic differences between the human and E. coli enzymes, we conducted a comprehensive analysis of side chain flexibility and dynamics in complexes of hDHFR that represent intermediates in the major catalytic cycle. Nuclear magnetic resonance relaxation dispersion experiments show that, in marked contrast to the functionally important motions that feature prominently in the catalytic intermediates of ecDHFR, millisecond time scale fluctuations cannot be detected for hDHFR side chains. Ligand flux in hDHFR is thought to be mediated by conformational changes between a hinge-open state when the substrate/product-binding pocket is vacant and a hinge-closed state when this pocket is occupied. Comparison of X-ray structures of hinge-open and hinge-closed states shows that helix αF changes position by sliding between the two states. Analysis of χ(1) rotamer populations derived from measurements of (3)J(CγCO) and (3)J(CγN) couplings indicates that many of the side chains that contact helix αF exhibit rotamer averaging that may facilitate the conformational change. The χ(1) rotamer adopted by the Phe31 side chain depends upon whether the active site contains the substrate or product. In the holoenzyme (the binary complex of hDHFR with reduced nicotinamide adenine dinucleotide phosphate), a combination of hinge opening and a change in the Phe31 χ(1) rotamer opens the active site to facilitate entry of the substrate. Overall, the data suggest that, unlike ecDHFR, hDHFR requires minimal backbone conformational rearrangement as it proceeds through its enzymatic cycle, but that ligand flux is brokered by more subtle conformational changes that depend on the side chain motions of critical residues. American Chemical Society 2014-02-05 2014-02-25 /pmc/articles/PMC3985697/ /pubmed/24498949 http://dx.doi.org/10.1021/bi4015314 Text en Copyright © 2014 American Chemical Society
spellingShingle Tuttle, Lisa M.
Dyson, H. Jane
Wright, Peter E.
Side Chain Conformational Averaging in Human Dihydrofolate Reductase
title Side Chain Conformational Averaging in Human Dihydrofolate Reductase
title_full Side Chain Conformational Averaging in Human Dihydrofolate Reductase
title_fullStr Side Chain Conformational Averaging in Human Dihydrofolate Reductase
title_full_unstemmed Side Chain Conformational Averaging in Human Dihydrofolate Reductase
title_short Side Chain Conformational Averaging in Human Dihydrofolate Reductase
title_sort side chain conformational averaging in human dihydrofolate reductase
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3985697/
https://www.ncbi.nlm.nih.gov/pubmed/24498949
http://dx.doi.org/10.1021/bi4015314
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