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Structures of Leishmania Fructose-1,6-Bisphosphatase Reveal Species-Specific Differences in the Mechanism of Allosteric Inhibition

The gluconeogenic enzyme fructose-1,6-bisphosphatase has been proposed as a potential drug target against Leishmania parasites that cause up to 20,000–30,000 deaths annually. A comparison of three crystal structures of Leishmania major fructose-1,6-bisphosphatase (LmFBPase) along with enzyme kinetic...

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Autores principales: Yuan, Meng, Vásquez-Valdivieso, Montserrat G., McNae, Iain W., Michels, Paul A.M., Fothergill-Gilmore, Linda A., Walkinshaw, Malcolm D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5639204/
https://www.ncbi.nlm.nih.gov/pubmed/28882541
http://dx.doi.org/10.1016/j.jmb.2017.08.010
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author Yuan, Meng
Vásquez-Valdivieso, Montserrat G.
McNae, Iain W.
Michels, Paul A.M.
Fothergill-Gilmore, Linda A.
Walkinshaw, Malcolm D.
author_facet Yuan, Meng
Vásquez-Valdivieso, Montserrat G.
McNae, Iain W.
Michels, Paul A.M.
Fothergill-Gilmore, Linda A.
Walkinshaw, Malcolm D.
author_sort Yuan, Meng
collection PubMed
description The gluconeogenic enzyme fructose-1,6-bisphosphatase has been proposed as a potential drug target against Leishmania parasites that cause up to 20,000–30,000 deaths annually. A comparison of three crystal structures of Leishmania major fructose-1,6-bisphosphatase (LmFBPase) along with enzyme kinetic data show how AMP acts as an allosteric inhibitor and provides insight into its metal-dependent reaction mechanism. The crystal structure of the apoenzyme form of LmFBPase is a homotetramer in which the dimer of dimers adopts a planar conformation with disordered “dynamic loops”. The structure of LmFBPase, complexed with manganese and its catalytic product phosphate, shows the dynamic loops locked into the active sites. A third crystal structure of LmFBPase complexed with its allosteric inhibitor AMP shows an inactive form of the tetramer, in which the dimer pairs are rotated by 18° relative to each other. The three structures suggest an allosteric mechanism in which AMP binding triggers a rearrangement of hydrogen bonds across the large and small interfaces. Retraction of the “effector loop” required for AMP binding releases the side chain of His23 from the dimer–dimer interface. This is coupled with a flip of the side chain of Arg48 which ties down the key catalytic dynamic loop in a disengaged conformation and also locks the tetramer in an inactive rotated T-state. The structure of the effector site of LmFBPase shows different structural features compared with human FBPases, thereby offering a potential and species-specific drug target.
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spelling pubmed-56392042017-10-20 Structures of Leishmania Fructose-1,6-Bisphosphatase Reveal Species-Specific Differences in the Mechanism of Allosteric Inhibition Yuan, Meng Vásquez-Valdivieso, Montserrat G. McNae, Iain W. Michels, Paul A.M. Fothergill-Gilmore, Linda A. Walkinshaw, Malcolm D. J Mol Biol Article The gluconeogenic enzyme fructose-1,6-bisphosphatase has been proposed as a potential drug target against Leishmania parasites that cause up to 20,000–30,000 deaths annually. A comparison of three crystal structures of Leishmania major fructose-1,6-bisphosphatase (LmFBPase) along with enzyme kinetic data show how AMP acts as an allosteric inhibitor and provides insight into its metal-dependent reaction mechanism. The crystal structure of the apoenzyme form of LmFBPase is a homotetramer in which the dimer of dimers adopts a planar conformation with disordered “dynamic loops”. The structure of LmFBPase, complexed with manganese and its catalytic product phosphate, shows the dynamic loops locked into the active sites. A third crystal structure of LmFBPase complexed with its allosteric inhibitor AMP shows an inactive form of the tetramer, in which the dimer pairs are rotated by 18° relative to each other. The three structures suggest an allosteric mechanism in which AMP binding triggers a rearrangement of hydrogen bonds across the large and small interfaces. Retraction of the “effector loop” required for AMP binding releases the side chain of His23 from the dimer–dimer interface. This is coupled with a flip of the side chain of Arg48 which ties down the key catalytic dynamic loop in a disengaged conformation and also locks the tetramer in an inactive rotated T-state. The structure of the effector site of LmFBPase shows different structural features compared with human FBPases, thereby offering a potential and species-specific drug target. Elsevier 2017-10-13 /pmc/articles/PMC5639204/ /pubmed/28882541 http://dx.doi.org/10.1016/j.jmb.2017.08.010 Text en Crown Copyright © 2017 Published by Elsevier Ltd. All rights reserved. http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yuan, Meng
Vásquez-Valdivieso, Montserrat G.
McNae, Iain W.
Michels, Paul A.M.
Fothergill-Gilmore, Linda A.
Walkinshaw, Malcolm D.
Structures of Leishmania Fructose-1,6-Bisphosphatase Reveal Species-Specific Differences in the Mechanism of Allosteric Inhibition
title Structures of Leishmania Fructose-1,6-Bisphosphatase Reveal Species-Specific Differences in the Mechanism of Allosteric Inhibition
title_full Structures of Leishmania Fructose-1,6-Bisphosphatase Reveal Species-Specific Differences in the Mechanism of Allosteric Inhibition
title_fullStr Structures of Leishmania Fructose-1,6-Bisphosphatase Reveal Species-Specific Differences in the Mechanism of Allosteric Inhibition
title_full_unstemmed Structures of Leishmania Fructose-1,6-Bisphosphatase Reveal Species-Specific Differences in the Mechanism of Allosteric Inhibition
title_short Structures of Leishmania Fructose-1,6-Bisphosphatase Reveal Species-Specific Differences in the Mechanism of Allosteric Inhibition
title_sort structures of leishmania fructose-1,6-bisphosphatase reveal species-specific differences in the mechanism of allosteric inhibition
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5639204/
https://www.ncbi.nlm.nih.gov/pubmed/28882541
http://dx.doi.org/10.1016/j.jmb.2017.08.010
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