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Engineering a thermostable Halothermothrix orenii β-glucosidase for improved galacto-oligosaccharide synthesis

Lactose is produced in large amounts as a by-product from the dairy industry. This inexpensive disaccharide can be converted to more useful value-added products such as galacto-oligosaccharides (GOSs) by transgalactosylation reactions with retaining β-galactosidases (BGALs) being normally used for t...

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Autores principales: Hassan, Noor, Geiger, Barbara, Gandini, Rosaria, Patel, Bharat K. C., Kittl, Roman, Haltrich, Dietmar, Nguyen, Thu-Ha, Divne, Christina, Tan, Tien Chye
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Berlin Heidelberg 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4803828/
https://www.ncbi.nlm.nih.gov/pubmed/26621798
http://dx.doi.org/10.1007/s00253-015-7118-8
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author Hassan, Noor
Geiger, Barbara
Gandini, Rosaria
Patel, Bharat K. C.
Kittl, Roman
Haltrich, Dietmar
Nguyen, Thu-Ha
Divne, Christina
Tan, Tien Chye
author_facet Hassan, Noor
Geiger, Barbara
Gandini, Rosaria
Patel, Bharat K. C.
Kittl, Roman
Haltrich, Dietmar
Nguyen, Thu-Ha
Divne, Christina
Tan, Tien Chye
author_sort Hassan, Noor
collection PubMed
description Lactose is produced in large amounts as a by-product from the dairy industry. This inexpensive disaccharide can be converted to more useful value-added products such as galacto-oligosaccharides (GOSs) by transgalactosylation reactions with retaining β-galactosidases (BGALs) being normally used for this purpose. Hydrolysis is always competing with the transglycosylation reaction, and hence, the yields of GOSs can be too low for industrial use. We have reported that a β-glucosidase from Halothermothrix orenii (HoBGLA) shows promising characteristics for lactose conversion and GOS synthesis. Here, we engineered HoBGLA to investigate the possibility to further improve lactose conversion and GOS production. Five variants that targeted the glycone (−1) and aglycone (+1) subsites (N222F, N294T, F417S, F417Y, and Y296F) were designed and expressed. All variants show significantly impaired catalytic activity with cellobiose and lactose as substrates. Particularly, F417S is hydrolytically crippled with cellobiose as substrate with a 1000-fold decrease in apparent k(cat), but to a lesser extent affected when catalyzing hydrolysis of lactose (47-fold lower k(cat)). This large selective effect on cellobiose hydrolysis is manifested as a change in substrate selectivity from cellobiose to lactose. The least affected variant is F417Y, which retains the capacity to hydrolyze both cellobiose and lactose with the same relative substrate selectivity as the wild type, but with ~10-fold lower turnover numbers. Thin-layer chromatography results show that this effect is accompanied by synthesis of a particular GOS product in higher yields by Y296F and F417S compared with the other variants, whereas the variant F417Y produces a higher yield of total GOSs.
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spelling pubmed-48038282016-04-01 Engineering a thermostable Halothermothrix orenii β-glucosidase for improved galacto-oligosaccharide synthesis Hassan, Noor Geiger, Barbara Gandini, Rosaria Patel, Bharat K. C. Kittl, Roman Haltrich, Dietmar Nguyen, Thu-Ha Divne, Christina Tan, Tien Chye Appl Microbiol Biotechnol Biotechnologically Relevant Enzymes and Proteins Lactose is produced in large amounts as a by-product from the dairy industry. This inexpensive disaccharide can be converted to more useful value-added products such as galacto-oligosaccharides (GOSs) by transgalactosylation reactions with retaining β-galactosidases (BGALs) being normally used for this purpose. Hydrolysis is always competing with the transglycosylation reaction, and hence, the yields of GOSs can be too low for industrial use. We have reported that a β-glucosidase from Halothermothrix orenii (HoBGLA) shows promising characteristics for lactose conversion and GOS synthesis. Here, we engineered HoBGLA to investigate the possibility to further improve lactose conversion and GOS production. Five variants that targeted the glycone (−1) and aglycone (+1) subsites (N222F, N294T, F417S, F417Y, and Y296F) were designed and expressed. All variants show significantly impaired catalytic activity with cellobiose and lactose as substrates. Particularly, F417S is hydrolytically crippled with cellobiose as substrate with a 1000-fold decrease in apparent k(cat), but to a lesser extent affected when catalyzing hydrolysis of lactose (47-fold lower k(cat)). This large selective effect on cellobiose hydrolysis is manifested as a change in substrate selectivity from cellobiose to lactose. The least affected variant is F417Y, which retains the capacity to hydrolyze both cellobiose and lactose with the same relative substrate selectivity as the wild type, but with ~10-fold lower turnover numbers. Thin-layer chromatography results show that this effect is accompanied by synthesis of a particular GOS product in higher yields by Y296F and F417S compared with the other variants, whereas the variant F417Y produces a higher yield of total GOSs. Springer Berlin Heidelberg 2015-12-01 2016 /pmc/articles/PMC4803828/ /pubmed/26621798 http://dx.doi.org/10.1007/s00253-015-7118-8 Text en © The Author(s) 2015 Open Access This article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Biotechnologically Relevant Enzymes and Proteins
Hassan, Noor
Geiger, Barbara
Gandini, Rosaria
Patel, Bharat K. C.
Kittl, Roman
Haltrich, Dietmar
Nguyen, Thu-Ha
Divne, Christina
Tan, Tien Chye
Engineering a thermostable Halothermothrix orenii β-glucosidase for improved galacto-oligosaccharide synthesis
title Engineering a thermostable Halothermothrix orenii β-glucosidase for improved galacto-oligosaccharide synthesis
title_full Engineering a thermostable Halothermothrix orenii β-glucosidase for improved galacto-oligosaccharide synthesis
title_fullStr Engineering a thermostable Halothermothrix orenii β-glucosidase for improved galacto-oligosaccharide synthesis
title_full_unstemmed Engineering a thermostable Halothermothrix orenii β-glucosidase for improved galacto-oligosaccharide synthesis
title_short Engineering a thermostable Halothermothrix orenii β-glucosidase for improved galacto-oligosaccharide synthesis
title_sort engineering a thermostable halothermothrix orenii β-glucosidase for improved galacto-oligosaccharide synthesis
topic Biotechnologically Relevant Enzymes and Proteins
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4803828/
https://www.ncbi.nlm.nih.gov/pubmed/26621798
http://dx.doi.org/10.1007/s00253-015-7118-8
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