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Functions of tryptophan residues in EWGWS insert of Plasmodium falciparum enolase

Plasmodium falciparum enolase (Pfeno) is a dimeric enzyme with multiple moonlighting functions. This enzyme is thus a potential target for anti‐malarial treatments. A unique feature of Pfeno is the presence of a pentapeptide insert (104) EWGWS (108). The functional role of tryptophan residues in thi...

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Autores principales: Dutta, Sneha, Moitra, Anasuya, Mukherjee, Debanjan, Jarori, Gotam K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5494301/
https://www.ncbi.nlm.nih.gov/pubmed/28680804
http://dx.doi.org/10.1002/2211-5463.12242
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author Dutta, Sneha
Moitra, Anasuya
Mukherjee, Debanjan
Jarori, Gotam K.
author_facet Dutta, Sneha
Moitra, Anasuya
Mukherjee, Debanjan
Jarori, Gotam K.
author_sort Dutta, Sneha
collection PubMed
description Plasmodium falciparum enolase (Pfeno) is a dimeric enzyme with multiple moonlighting functions. This enzyme is thus a potential target for anti‐malarial treatments. A unique feature of Pfeno is the presence of a pentapeptide insert (104) EWGWS (108). The functional role of tryptophan residues in this insert was investigated using site‐directed mutagenesis. Replacement of these two Trp residues with alanines (or lysines) resulted in a near complete loss of enolase activity and dissociation of the normal dimeric form into monomers. Molecular modeling indicated that (340)R forms π‐cation bonds with the aromatic rings of (105)W and (46)Y. Mutation induced changes in the interactions among these three residues were presumably relayed to the inter‐subunit interface via a coil formed by (46)Y : (59)Y, resulting in the disruption of a salt bridge between (11)R : (425)E and a π‐cation interaction between (11)R : (59)Y. This led to a drop of ~ 4 kcal·mole(−1) in the inter‐subunit docking energy in the mutant, causing a ~ 10(3) fold decrease in affinity. Partial restoration of the inter‐subunit interactions led to reformation of dimers and also restored a significant fraction of the lost enzyme activity. These results suggested that the perturbations in the conformation of the surface loop containing the insert sequence were relayed to the interface region, causing dimer dissociation that, in turn, disrupted the enzyme's active site. Since Plasmodium enolase is a moonlighting protein with multiple parasite‐specific functions, it is likely that these functions may map on to the highly conserved unique insert region of this protein. ENZYMES: Enolase(EC4.2.1.11).
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spelling pubmed-54943012017-07-05 Functions of tryptophan residues in EWGWS insert of Plasmodium falciparum enolase Dutta, Sneha Moitra, Anasuya Mukherjee, Debanjan Jarori, Gotam K. FEBS Open Bio Research Articles Plasmodium falciparum enolase (Pfeno) is a dimeric enzyme with multiple moonlighting functions. This enzyme is thus a potential target for anti‐malarial treatments. A unique feature of Pfeno is the presence of a pentapeptide insert (104) EWGWS (108). The functional role of tryptophan residues in this insert was investigated using site‐directed mutagenesis. Replacement of these two Trp residues with alanines (or lysines) resulted in a near complete loss of enolase activity and dissociation of the normal dimeric form into monomers. Molecular modeling indicated that (340)R forms π‐cation bonds with the aromatic rings of (105)W and (46)Y. Mutation induced changes in the interactions among these three residues were presumably relayed to the inter‐subunit interface via a coil formed by (46)Y : (59)Y, resulting in the disruption of a salt bridge between (11)R : (425)E and a π‐cation interaction between (11)R : (59)Y. This led to a drop of ~ 4 kcal·mole(−1) in the inter‐subunit docking energy in the mutant, causing a ~ 10(3) fold decrease in affinity. Partial restoration of the inter‐subunit interactions led to reformation of dimers and also restored a significant fraction of the lost enzyme activity. These results suggested that the perturbations in the conformation of the surface loop containing the insert sequence were relayed to the interface region, causing dimer dissociation that, in turn, disrupted the enzyme's active site. Since Plasmodium enolase is a moonlighting protein with multiple parasite‐specific functions, it is likely that these functions may map on to the highly conserved unique insert region of this protein. ENZYMES: Enolase(EC4.2.1.11). John Wiley and Sons Inc. 2017-06-05 /pmc/articles/PMC5494301/ /pubmed/28680804 http://dx.doi.org/10.1002/2211-5463.12242 Text en © 2017 The Authors. Published by FEBS Press and John Wiley & Sons Ltd. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Dutta, Sneha
Moitra, Anasuya
Mukherjee, Debanjan
Jarori, Gotam K.
Functions of tryptophan residues in EWGWS insert of Plasmodium falciparum enolase
title Functions of tryptophan residues in EWGWS insert of Plasmodium falciparum enolase
title_full Functions of tryptophan residues in EWGWS insert of Plasmodium falciparum enolase
title_fullStr Functions of tryptophan residues in EWGWS insert of Plasmodium falciparum enolase
title_full_unstemmed Functions of tryptophan residues in EWGWS insert of Plasmodium falciparum enolase
title_short Functions of tryptophan residues in EWGWS insert of Plasmodium falciparum enolase
title_sort functions of tryptophan residues in ewgws insert of plasmodium falciparum enolase
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5494301/
https://www.ncbi.nlm.nih.gov/pubmed/28680804
http://dx.doi.org/10.1002/2211-5463.12242
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