Differences in protein structural regions that impact functional specificity in GT2 family β-glucan synthases.
Most cell wall and secreted β-glucans are synthesised by the CAZy Glycosyltransferase 2 family (www.cazy.org), with different members catalysing the formation of (1,4)-β-, (1,3)-β-, or both (1,4)- and (1,3)-β-glucosidic linkages. Given the distinct physicochemical properties of each of the resultant...
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doaj-0c2768df86ea422d83166406ce5b5c9e2021-03-03T21:13:54ZengPublic Library of Science (PLoS)PLoS ONE1932-62032019-01-011410e022444210.1371/journal.pone.0224442Differences in protein structural regions that impact functional specificity in GT2 family β-glucan synthases.Daniel P OehmeThomas ShafeeMatthew T DowntonAntony BacicMonika S DoblinMost cell wall and secreted β-glucans are synthesised by the CAZy Glycosyltransferase 2 family (www.cazy.org), with different members catalysing the formation of (1,4)-β-, (1,3)-β-, or both (1,4)- and (1,3)-β-glucosidic linkages. Given the distinct physicochemical properties of each of the resultant β-glucans (cellulose, curdlan, and mixed linkage glucan, respectively) are crucial to their biological and biotechnological functions, there is a desire to understand the molecular evolution of synthesis and how linkage specificity is determined. With structural studies hamstrung by the instability of these proteins to solubilisation, we have utilised in silico techniques and the crystal structure for a bacterial cellulose synthase to further understand how these enzymes have evolved distinct functions. Sequence and phylogenetic analyses were performed to determine amino acid conservation, both family-wide and within each sub-family. Further structural analysis centred on comparison of a bacterial curdlan synthase homology model with the bacterial cellulose synthase crystal structure, with molecular dynamics simulations performed with their respective β-glucan products bound in the trans-membrane channel. Key residues that differentially interact with the different β-glucan chains and have sub-family-specific conservation were found to reside at the entrance of the trans-membrane channel. The linkage-specific catalytic activity of these enzymes and hence the type of β-glucan chain built is thus likely determined by the different interactions between the proteins and the first few glucose residues in the channel, which in turn dictates the position of the acceptor glucose. The sequence-function relationships for the bacterial β-glucan synthases pave the way for extending this understanding to other kingdoms, such as plants.https://doi.org/10.1371/journal.pone.0224442 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Daniel P Oehme Thomas Shafee Matthew T Downton Antony Bacic Monika S Doblin |
spellingShingle |
Daniel P Oehme Thomas Shafee Matthew T Downton Antony Bacic Monika S Doblin Differences in protein structural regions that impact functional specificity in GT2 family β-glucan synthases. PLoS ONE |
author_facet |
Daniel P Oehme Thomas Shafee Matthew T Downton Antony Bacic Monika S Doblin |
author_sort |
Daniel P Oehme |
title |
Differences in protein structural regions that impact functional specificity in GT2 family β-glucan synthases. |
title_short |
Differences in protein structural regions that impact functional specificity in GT2 family β-glucan synthases. |
title_full |
Differences in protein structural regions that impact functional specificity in GT2 family β-glucan synthases. |
title_fullStr |
Differences in protein structural regions that impact functional specificity in GT2 family β-glucan synthases. |
title_full_unstemmed |
Differences in protein structural regions that impact functional specificity in GT2 family β-glucan synthases. |
title_sort |
differences in protein structural regions that impact functional specificity in gt2 family β-glucan synthases. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2019-01-01 |
description |
Most cell wall and secreted β-glucans are synthesised by the CAZy Glycosyltransferase 2 family (www.cazy.org), with different members catalysing the formation of (1,4)-β-, (1,3)-β-, or both (1,4)- and (1,3)-β-glucosidic linkages. Given the distinct physicochemical properties of each of the resultant β-glucans (cellulose, curdlan, and mixed linkage glucan, respectively) are crucial to their biological and biotechnological functions, there is a desire to understand the molecular evolution of synthesis and how linkage specificity is determined. With structural studies hamstrung by the instability of these proteins to solubilisation, we have utilised in silico techniques and the crystal structure for a bacterial cellulose synthase to further understand how these enzymes have evolved distinct functions. Sequence and phylogenetic analyses were performed to determine amino acid conservation, both family-wide and within each sub-family. Further structural analysis centred on comparison of a bacterial curdlan synthase homology model with the bacterial cellulose synthase crystal structure, with molecular dynamics simulations performed with their respective β-glucan products bound in the trans-membrane channel. Key residues that differentially interact with the different β-glucan chains and have sub-family-specific conservation were found to reside at the entrance of the trans-membrane channel. The linkage-specific catalytic activity of these enzymes and hence the type of β-glucan chain built is thus likely determined by the different interactions between the proteins and the first few glucose residues in the channel, which in turn dictates the position of the acceptor glucose. The sequence-function relationships for the bacterial β-glucan synthases pave the way for extending this understanding to other kingdoms, such as plants. |
url |
https://doi.org/10.1371/journal.pone.0224442 |
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