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Substrate Specificity of Cysteine Proteases Beyond the S(2) Pocket: Mutagenesis and Molecular Dynamics Investigation of Fasciola hepatica Cathepsins L

Cysteine proteases are widespread in all life kingdoms, being central to diverse physiological processes based on a broad range of substrate specificity. Paralogous Fasciola hepatica cathepsin L proteases are essential to parasite invasion, tissue migration and reproduction. In spite of similarities...

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Autores principales: Corvo, Ileana, Ferraro, Florencia, Merlino, Alicia, Zuberbühler, Kathrin, O'Donoghue, Anthony J., Pastro, Lucía, Pi-Denis, Natalia, Basika, Tatiana, Roche, Leda, McKerrow, James H., Craik, Charles S., Caffrey, Conor R., Tort, José F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5917446/
https://www.ncbi.nlm.nih.gov/pubmed/29725596
http://dx.doi.org/10.3389/fmolb.2018.00040
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author Corvo, Ileana
Ferraro, Florencia
Merlino, Alicia
Zuberbühler, Kathrin
O'Donoghue, Anthony J.
Pastro, Lucía
Pi-Denis, Natalia
Basika, Tatiana
Roche, Leda
McKerrow, James H.
Craik, Charles S.
Caffrey, Conor R.
Tort, José F.
author_facet Corvo, Ileana
Ferraro, Florencia
Merlino, Alicia
Zuberbühler, Kathrin
O'Donoghue, Anthony J.
Pastro, Lucía
Pi-Denis, Natalia
Basika, Tatiana
Roche, Leda
McKerrow, James H.
Craik, Charles S.
Caffrey, Conor R.
Tort, José F.
author_sort Corvo, Ileana
collection PubMed
description Cysteine proteases are widespread in all life kingdoms, being central to diverse physiological processes based on a broad range of substrate specificity. Paralogous Fasciola hepatica cathepsin L proteases are essential to parasite invasion, tissue migration and reproduction. In spite of similarities in their overall sequence and structure, these enzymes often exhibit different substrate specificity. These preferences are principally determined by the amino acid composition of the active site's S(2) subsite (pocket) of the enzyme that interacts with the substrate P(2) residue (Schetcher and Berger nomenclature). Although secreted FhCL1 accommodates aliphatic residues in the S(2) pocket, FhCL2 is also efficient in cleaving proline in that position. To understand these differences, we engineered the FhCL1 S(2) subsite at three amino acid positions to render it identical to that present in FhCL2. The substitutions did not produce the expected increment in proline accommodation in P(2.) Rather, they decreased the enzyme's catalytic efficiency toward synthetic peptides. Nonetheless, a change in the P(3) specificity was associated with the mutation of Leu67 to Tyr, a hinge residue between the S(2) and S(3) subsites that contributes to the accommodation of Gly in S(3). Molecular dynamic simulations highlighted changes in the spatial distribution and secondary structure of the S(2) and S(3) pockets of the mutant FhCL1 enzymes. The reduced affinity and catalytic efficiency of the mutant enzymes may be due to a narrowing of the active site cleft that hinders the accommodation of substrates. Because the variations in the enzymatic activity measured could not be exclusively allocated to those residues lining the active site, other more external positions might modulate enzyme conformation, and, therefore, catalytic activity.
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spelling pubmed-59174462018-05-03 Substrate Specificity of Cysteine Proteases Beyond the S(2) Pocket: Mutagenesis and Molecular Dynamics Investigation of Fasciola hepatica Cathepsins L Corvo, Ileana Ferraro, Florencia Merlino, Alicia Zuberbühler, Kathrin O'Donoghue, Anthony J. Pastro, Lucía Pi-Denis, Natalia Basika, Tatiana Roche, Leda McKerrow, James H. Craik, Charles S. Caffrey, Conor R. Tort, José F. Front Mol Biosci Molecular Biosciences Cysteine proteases are widespread in all life kingdoms, being central to diverse physiological processes based on a broad range of substrate specificity. Paralogous Fasciola hepatica cathepsin L proteases are essential to parasite invasion, tissue migration and reproduction. In spite of similarities in their overall sequence and structure, these enzymes often exhibit different substrate specificity. These preferences are principally determined by the amino acid composition of the active site's S(2) subsite (pocket) of the enzyme that interacts with the substrate P(2) residue (Schetcher and Berger nomenclature). Although secreted FhCL1 accommodates aliphatic residues in the S(2) pocket, FhCL2 is also efficient in cleaving proline in that position. To understand these differences, we engineered the FhCL1 S(2) subsite at three amino acid positions to render it identical to that present in FhCL2. The substitutions did not produce the expected increment in proline accommodation in P(2.) Rather, they decreased the enzyme's catalytic efficiency toward synthetic peptides. Nonetheless, a change in the P(3) specificity was associated with the mutation of Leu67 to Tyr, a hinge residue between the S(2) and S(3) subsites that contributes to the accommodation of Gly in S(3). Molecular dynamic simulations highlighted changes in the spatial distribution and secondary structure of the S(2) and S(3) pockets of the mutant FhCL1 enzymes. The reduced affinity and catalytic efficiency of the mutant enzymes may be due to a narrowing of the active site cleft that hinders the accommodation of substrates. Because the variations in the enzymatic activity measured could not be exclusively allocated to those residues lining the active site, other more external positions might modulate enzyme conformation, and, therefore, catalytic activity. Frontiers Media S.A. 2018-04-19 /pmc/articles/PMC5917446/ /pubmed/29725596 http://dx.doi.org/10.3389/fmolb.2018.00040 Text en Copyright © 2018 Corvo, Ferraro, Merlino, Zuberbühler, O'Donoghue, Pastro, Pi-Denis, Basika, Roche, McKerrow, Craik, Caffrey and Tort. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Molecular Biosciences
Corvo, Ileana
Ferraro, Florencia
Merlino, Alicia
Zuberbühler, Kathrin
O'Donoghue, Anthony J.
Pastro, Lucía
Pi-Denis, Natalia
Basika, Tatiana
Roche, Leda
McKerrow, James H.
Craik, Charles S.
Caffrey, Conor R.
Tort, José F.
Substrate Specificity of Cysteine Proteases Beyond the S(2) Pocket: Mutagenesis and Molecular Dynamics Investigation of Fasciola hepatica Cathepsins L
title Substrate Specificity of Cysteine Proteases Beyond the S(2) Pocket: Mutagenesis and Molecular Dynamics Investigation of Fasciola hepatica Cathepsins L
title_full Substrate Specificity of Cysteine Proteases Beyond the S(2) Pocket: Mutagenesis and Molecular Dynamics Investigation of Fasciola hepatica Cathepsins L
title_fullStr Substrate Specificity of Cysteine Proteases Beyond the S(2) Pocket: Mutagenesis and Molecular Dynamics Investigation of Fasciola hepatica Cathepsins L
title_full_unstemmed Substrate Specificity of Cysteine Proteases Beyond the S(2) Pocket: Mutagenesis and Molecular Dynamics Investigation of Fasciola hepatica Cathepsins L
title_short Substrate Specificity of Cysteine Proteases Beyond the S(2) Pocket: Mutagenesis and Molecular Dynamics Investigation of Fasciola hepatica Cathepsins L
title_sort substrate specificity of cysteine proteases beyond the s(2) pocket: mutagenesis and molecular dynamics investigation of fasciola hepatica cathepsins l
topic Molecular Biosciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5917446/
https://www.ncbi.nlm.nih.gov/pubmed/29725596
http://dx.doi.org/10.3389/fmolb.2018.00040
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