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Two Unique Ligand-Binding Clamps of Rhizopus oryzae Starch Binding Domain for Helical Structure Disruption of Amylose

The N-terminal starch binding domain of Rhizopus oryzae glucoamylase (RoSBD) has a high binding affinity for raw starch. RoSBD has two ligand-binding sites, each containing a ligand-binding clamp: a polyN clamp residing near binding site I is unique in that it is expressed in only three members of c...

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Autores principales: Jiang, Ting-Ying, Ci, Yuan-Pei, Chou, Wei-I, Lee, Yuan-Chuan, Sun, Yuh-Ju, Chou, Wei-Yao, Li, Kun-Mou, Chang, Margaret Dah-Tsyr
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3398936/
https://www.ncbi.nlm.nih.gov/pubmed/22815939
http://dx.doi.org/10.1371/journal.pone.0041131
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author Jiang, Ting-Ying
Ci, Yuan-Pei
Chou, Wei-I
Lee, Yuan-Chuan
Sun, Yuh-Ju
Chou, Wei-Yao
Li, Kun-Mou
Chang, Margaret Dah-Tsyr
author_facet Jiang, Ting-Ying
Ci, Yuan-Pei
Chou, Wei-I
Lee, Yuan-Chuan
Sun, Yuh-Ju
Chou, Wei-Yao
Li, Kun-Mou
Chang, Margaret Dah-Tsyr
author_sort Jiang, Ting-Ying
collection PubMed
description The N-terminal starch binding domain of Rhizopus oryzae glucoamylase (RoSBD) has a high binding affinity for raw starch. RoSBD has two ligand-binding sites, each containing a ligand-binding clamp: a polyN clamp residing near binding site I is unique in that it is expressed in only three members of carbohydrate binding module family 21 (CBM21) members, and a Y32/F58 clamp located at binding site II is conserved in several CBMs. Here we characterized different roles of these sites in the binding of insoluble and soluble starches using an amylose-iodine complex assay, atomic force microscopy, isothermal titration calorimetry, site-directed mutagenesis, and structural bioinformatics. RoSBD induced the release of iodine from the amylose helical cavity and disrupted the helical structure of amylose type III, thereby significantly diminishing the thickness and length of the amylose type III fibrils. A point mutation in the critical ligand-binding residues of sites I and II, however, reduced both the binding affinity and amylose helix disruption. This is the first molecular model for structure disruption of the amylose helix by a non-hydrolytic CBM21 member. RoSBD apparently twists the helical amylose strands apart to expose more ligand surface for further SBD binding. Repeating the process triggers the relaxation and unwinding of amylose helices to generate thinner and shorter amylose fibrils, which are more susceptible to hydrolysis by glucoamylase. This model aids in understanding the natural roles of CBMs in protein-glycan interactions and contributes to potential molecular engineering of CBMs.
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spelling pubmed-33989362012-07-19 Two Unique Ligand-Binding Clamps of Rhizopus oryzae Starch Binding Domain for Helical Structure Disruption of Amylose Jiang, Ting-Ying Ci, Yuan-Pei Chou, Wei-I Lee, Yuan-Chuan Sun, Yuh-Ju Chou, Wei-Yao Li, Kun-Mou Chang, Margaret Dah-Tsyr PLoS One Research Article The N-terminal starch binding domain of Rhizopus oryzae glucoamylase (RoSBD) has a high binding affinity for raw starch. RoSBD has two ligand-binding sites, each containing a ligand-binding clamp: a polyN clamp residing near binding site I is unique in that it is expressed in only three members of carbohydrate binding module family 21 (CBM21) members, and a Y32/F58 clamp located at binding site II is conserved in several CBMs. Here we characterized different roles of these sites in the binding of insoluble and soluble starches using an amylose-iodine complex assay, atomic force microscopy, isothermal titration calorimetry, site-directed mutagenesis, and structural bioinformatics. RoSBD induced the release of iodine from the amylose helical cavity and disrupted the helical structure of amylose type III, thereby significantly diminishing the thickness and length of the amylose type III fibrils. A point mutation in the critical ligand-binding residues of sites I and II, however, reduced both the binding affinity and amylose helix disruption. This is the first molecular model for structure disruption of the amylose helix by a non-hydrolytic CBM21 member. RoSBD apparently twists the helical amylose strands apart to expose more ligand surface for further SBD binding. Repeating the process triggers the relaxation and unwinding of amylose helices to generate thinner and shorter amylose fibrils, which are more susceptible to hydrolysis by glucoamylase. This model aids in understanding the natural roles of CBMs in protein-glycan interactions and contributes to potential molecular engineering of CBMs. Public Library of Science 2012-07-17 /pmc/articles/PMC3398936/ /pubmed/22815939 http://dx.doi.org/10.1371/journal.pone.0041131 Text en Jiang et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Jiang, Ting-Ying
Ci, Yuan-Pei
Chou, Wei-I
Lee, Yuan-Chuan
Sun, Yuh-Ju
Chou, Wei-Yao
Li, Kun-Mou
Chang, Margaret Dah-Tsyr
Two Unique Ligand-Binding Clamps of Rhizopus oryzae Starch Binding Domain for Helical Structure Disruption of Amylose
title Two Unique Ligand-Binding Clamps of Rhizopus oryzae Starch Binding Domain for Helical Structure Disruption of Amylose
title_full Two Unique Ligand-Binding Clamps of Rhizopus oryzae Starch Binding Domain for Helical Structure Disruption of Amylose
title_fullStr Two Unique Ligand-Binding Clamps of Rhizopus oryzae Starch Binding Domain for Helical Structure Disruption of Amylose
title_full_unstemmed Two Unique Ligand-Binding Clamps of Rhizopus oryzae Starch Binding Domain for Helical Structure Disruption of Amylose
title_short Two Unique Ligand-Binding Clamps of Rhizopus oryzae Starch Binding Domain for Helical Structure Disruption of Amylose
title_sort two unique ligand-binding clamps of rhizopus oryzae starch binding domain for helical structure disruption of amylose
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3398936/
https://www.ncbi.nlm.nih.gov/pubmed/22815939
http://dx.doi.org/10.1371/journal.pone.0041131
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