Cargando…

The C-Terminal Domain of Liquorilactobacillus nagelii Dextransucrase Mediates the Production of Larger Dextrans Compared to Liquorilactobacillus hordei

Dextransucrases released by certain lactic acid bacteria form glucose polymers with predominantly α-1,6-linkages and may be exploited biotechnologically for the tailored production of polysaccharides with application potential. Despite releasing two closely related dextransucrases, previous studies...

Descripción completa

Detalles Bibliográficos
Autores principales: Bechtner, Julia, Hassler, Verena, Wefers, Daniel, Ehrmann, Matthias, Jakob, Frank
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8954249/
https://www.ncbi.nlm.nih.gov/pubmed/35323284
http://dx.doi.org/10.3390/gels8030171
_version_ 1784676048025157632
author Bechtner, Julia
Hassler, Verena
Wefers, Daniel
Ehrmann, Matthias
Jakob, Frank
author_facet Bechtner, Julia
Hassler, Verena
Wefers, Daniel
Ehrmann, Matthias
Jakob, Frank
author_sort Bechtner, Julia
collection PubMed
description Dextransucrases released by certain lactic acid bacteria form glucose polymers with predominantly α-1,6-linkages and may be exploited biotechnologically for the tailored production of polysaccharides with application potential. Despite releasing two closely related dextransucrases, previous studies showed that water kefir borne Liquorilactobacillus (L.) hordei TMW 1.1822 and L. nagelii TMW 1.1827 produce different amounts of polysaccharides with distinct particle sizes (molecular weight and radius of gyration) and molecular architectures. To investigate where these differences originate and thus to provide deeper insights into the functionally diverse nature of polysaccharide formation during water kefir fermentation, we constructed two variants of the L. nagelii dextransucrase—a full-length enzyme and a truncated variant, devoid of a C-terminal glucan-binding domain that reflects the domain architecture of the L. hordei dextransucrase—and applied them at various enzyme concentrations to form dextran over 24 h. The full-length enzyme exhibited a high activity, forming constant amounts of dextran until a four-fold dilution, whereas the truncated variant showed a gradual decrease in activity and dextran formation at an increasing dilution. The application of the full-length enzyme resulted in higher average particle sizes compared to the truncated variant. However, the dilution of the enzyme extracts also led to a slight increase in the average particle size in both enzymes. Neither the domain architecture nor the enzyme concentration had an impact on the structural architecture of the dextrans. The presented results thus suggest that the comparatively higher processivity of the L. nagelii dextransucrase is predominantly caused by the additional C-terminal glucan-binding domain, which is absent in the L. hordei dextransucrase. The average particle size may be influenced, to some extent, by the applied reaction conditions, whereas the structural architecture of the dextrans is most likely caused by differences in the amino acid sequence of the catalytic domain.
format Online
Article
Text
id pubmed-8954249
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-89542492022-03-26 The C-Terminal Domain of Liquorilactobacillus nagelii Dextransucrase Mediates the Production of Larger Dextrans Compared to Liquorilactobacillus hordei Bechtner, Julia Hassler, Verena Wefers, Daniel Ehrmann, Matthias Jakob, Frank Gels Article Dextransucrases released by certain lactic acid bacteria form glucose polymers with predominantly α-1,6-linkages and may be exploited biotechnologically for the tailored production of polysaccharides with application potential. Despite releasing two closely related dextransucrases, previous studies showed that water kefir borne Liquorilactobacillus (L.) hordei TMW 1.1822 and L. nagelii TMW 1.1827 produce different amounts of polysaccharides with distinct particle sizes (molecular weight and radius of gyration) and molecular architectures. To investigate where these differences originate and thus to provide deeper insights into the functionally diverse nature of polysaccharide formation during water kefir fermentation, we constructed two variants of the L. nagelii dextransucrase—a full-length enzyme and a truncated variant, devoid of a C-terminal glucan-binding domain that reflects the domain architecture of the L. hordei dextransucrase—and applied them at various enzyme concentrations to form dextran over 24 h. The full-length enzyme exhibited a high activity, forming constant amounts of dextran until a four-fold dilution, whereas the truncated variant showed a gradual decrease in activity and dextran formation at an increasing dilution. The application of the full-length enzyme resulted in higher average particle sizes compared to the truncated variant. However, the dilution of the enzyme extracts also led to a slight increase in the average particle size in both enzymes. Neither the domain architecture nor the enzyme concentration had an impact on the structural architecture of the dextrans. The presented results thus suggest that the comparatively higher processivity of the L. nagelii dextransucrase is predominantly caused by the additional C-terminal glucan-binding domain, which is absent in the L. hordei dextransucrase. The average particle size may be influenced, to some extent, by the applied reaction conditions, whereas the structural architecture of the dextrans is most likely caused by differences in the amino acid sequence of the catalytic domain. MDPI 2022-03-09 /pmc/articles/PMC8954249/ /pubmed/35323284 http://dx.doi.org/10.3390/gels8030171 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Bechtner, Julia
Hassler, Verena
Wefers, Daniel
Ehrmann, Matthias
Jakob, Frank
The C-Terminal Domain of Liquorilactobacillus nagelii Dextransucrase Mediates the Production of Larger Dextrans Compared to Liquorilactobacillus hordei
title The C-Terminal Domain of Liquorilactobacillus nagelii Dextransucrase Mediates the Production of Larger Dextrans Compared to Liquorilactobacillus hordei
title_full The C-Terminal Domain of Liquorilactobacillus nagelii Dextransucrase Mediates the Production of Larger Dextrans Compared to Liquorilactobacillus hordei
title_fullStr The C-Terminal Domain of Liquorilactobacillus nagelii Dextransucrase Mediates the Production of Larger Dextrans Compared to Liquorilactobacillus hordei
title_full_unstemmed The C-Terminal Domain of Liquorilactobacillus nagelii Dextransucrase Mediates the Production of Larger Dextrans Compared to Liquorilactobacillus hordei
title_short The C-Terminal Domain of Liquorilactobacillus nagelii Dextransucrase Mediates the Production of Larger Dextrans Compared to Liquorilactobacillus hordei
title_sort c-terminal domain of liquorilactobacillus nagelii dextransucrase mediates the production of larger dextrans compared to liquorilactobacillus hordei
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8954249/
https://www.ncbi.nlm.nih.gov/pubmed/35323284
http://dx.doi.org/10.3390/gels8030171
work_keys_str_mv AT bechtnerjulia thecterminaldomainofliquorilactobacillusnageliidextransucrasemediatestheproductionoflargerdextranscomparedtoliquorilactobacillushordei
AT hasslerverena thecterminaldomainofliquorilactobacillusnageliidextransucrasemediatestheproductionoflargerdextranscomparedtoliquorilactobacillushordei
AT wefersdaniel thecterminaldomainofliquorilactobacillusnageliidextransucrasemediatestheproductionoflargerdextranscomparedtoliquorilactobacillushordei
AT ehrmannmatthias thecterminaldomainofliquorilactobacillusnageliidextransucrasemediatestheproductionoflargerdextranscomparedtoliquorilactobacillushordei
AT jakobfrank thecterminaldomainofliquorilactobacillusnageliidextransucrasemediatestheproductionoflargerdextranscomparedtoliquorilactobacillushordei
AT bechtnerjulia cterminaldomainofliquorilactobacillusnageliidextransucrasemediatestheproductionoflargerdextranscomparedtoliquorilactobacillushordei
AT hasslerverena cterminaldomainofliquorilactobacillusnageliidextransucrasemediatestheproductionoflargerdextranscomparedtoliquorilactobacillushordei
AT wefersdaniel cterminaldomainofliquorilactobacillusnageliidextransucrasemediatestheproductionoflargerdextranscomparedtoliquorilactobacillushordei
AT ehrmannmatthias cterminaldomainofliquorilactobacillusnageliidextransucrasemediatestheproductionoflargerdextranscomparedtoliquorilactobacillushordei
AT jakobfrank cterminaldomainofliquorilactobacillusnageliidextransucrasemediatestheproductionoflargerdextranscomparedtoliquorilactobacillushordei