Literature DB >> 22210773

Structural investigation of the thermostability and product specificity of amylosucrase from the bacterium Deinococcus geothermalis.

Frédéric Guérin1, Sophie Barbe, Sandra Pizzut-Serin, Gabrielle Potocki-Véronèse, David Guieysse, Valérie Guillet, Pierre Monsan, Lionel Mourey, Magali Remaud-Siméon, Isabelle André, Samuel Tranier.   

Abstract

Amylosucrases are sucrose-utilizing α-transglucosidases that naturally catalyze the synthesis of α-glucans, linked exclusively through α1,4-linkages. Side products and in particular sucrose isomers such as turanose and trehalulose are also produced by these enzymes. Here, we report the first structural and biophysical characterization of the most thermostable amylosucrase identified so far, the amylosucrase from Deinoccocus geothermalis (DgAS). The three-dimensional structure revealed a homodimeric quaternary organization, never reported before for other amylosucrases. A sequence signature of dimerization was identified from the analysis of the dimer interface and sequence alignments. By rigidifying the DgAS structure, the quaternary organization is likely to participate in the enhanced thermal stability of the protein. Amylosucrase specificity with respect to sucrose isomer formation (turanose or trehalulose) was also investigated. We report the first structures of the amylosucrases from Deinococcus geothermalis and Neisseria polysaccharea in complex with turanose. In the amylosucrase from N. polysaccharea (NpAS), key residues were found to force the fructosyl moiety to bind in an open state with the O3' ideally positioned to explain the preferential formation of turanose by NpAS. Such residues are either not present or not similarly placed in DgAS. As a consequence, DgAS binds the furanoid tautomers of fructose through a weak network of interactions to enable turanose formation. Such topology at subsite +1 is likely favoring other possible fructose binding modes in agreement with the higher amount of trehalulose formed by DgAS. Our findings help to understand the inter-relationships between amylosucrase structure, flexibility, function, and stability and provide new insight for amylosucrase design.

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Year:  2011        PMID: 22210773      PMCID: PMC3307298          DOI: 10.1074/jbc.M111.322917

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  43 in total

1.  Amylosucrase from Neisseria polysaccharea: novel catalytic properties.

Authors:  G Potocki de Montalk; M Remaud-Simeon; R M Willemot; P Sarçabal; V Planchot; P Monsan
Journal:  FEBS Lett       Date:  2000-04-14       Impact factor: 4.124

2.  A point-charge force field for molecular mechanics simulations of proteins based on condensed-phase quantum mechanical calculations.

Authors:  Yong Duan; Chun Wu; Shibasish Chowdhury; Mathew C Lee; Guoming Xiong; Wei Zhang; Rong Yang; Piotr Cieplak; Ray Luo; Taisung Lee; James Caldwell; Junmei Wang; Peter Kollman
Journal:  J Comput Chem       Date:  2003-12       Impact factor: 3.376

3.  Structural determinants of product specificity of sucrose isomerases.

Authors:  Stéphanie Ravaud; Xavier Robert; Hildegard Watzlawick; Richard Haser; Ralf Mattes; Nushin Aghajari
Journal:  FEBS Lett       Date:  2009-05-08       Impact factor: 4.124

4.  Identification of key amino acid residues in Neisseria polysaccharea amylosucrase.

Authors:  P Sarçabal; M Remaud-Simeon; R Willemot; G Potocki de Montalk; B Svensson; P Monsan
Journal:  FEBS Lett       Date:  2000-05-26       Impact factor: 4.124

5.  Microbial sucrose isomerases: producing organisms, genes and enzymes.

Authors:  Ken C Goulter; Saeed M Hashimi; Robert G Birch
Journal:  Enzyme Microb Technol       Date:  2011-10-05       Impact factor: 3.493

6.  Crystal structure of a maltogenic amylase provides insights into a catalytic versatility.

Authors:  J S Kim; S S Cha; H J Kim; T J Kim; N C Ha; S T Oh; H S Cho; M J Cho; M J Kim; H S Lee; J W Kim; K Y Choi; K H Park; B H Oh
Journal:  J Biol Chem       Date:  1999-09-10       Impact factor: 5.157

7.  iMOSFLM: a new graphical interface for diffraction-image processing with MOSFLM.

Authors:  T Geoff G Battye; Luke Kontogiannis; Owen Johnson; Harold R Powell; Andrew G W Leslie
Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2011-03-18

8.  Enzymatic synthesis of salicin glycosides through transglycosylation catalyzed by amylosucrases from Deinococcus geothermalis and Neisseria polysaccharea.

Authors:  Jong-Hyun Jung; Dong-Ho Seo; Suk-Jin Ha; Myoung-Chong Song; Jaeho Cha; Sang-Ho Yoo; Tae-Jip Kim; Nam-In Baek; Moo-Yeol Baik; Cheon-Seok Park
Journal:  Carbohydr Res       Date:  2009-04-22       Impact factor: 2.104

9.  Molecular cloning and functional expression of a new amylosucrase from Alteromonas macleodii.

Authors:  Suk-Jin Ha; Dong-Ho Seo; Jong-Hyun Jung; Jaeho Cha; Tae-Jip Kim; Young-Wan Kim; Cheon-Seok Park
Journal:  Biosci Biotechnol Biochem       Date:  2009-07-07       Impact factor: 2.043

Review 10.  Scaling and assessment of data quality.

Authors:  Philip Evans
Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2005-12-14
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  11 in total

1.  Novel product specificity toward erlose and panose exhibited by multisite engineered mutants of amylosucrase.

Authors:  Alizée Vergès; Emmanuelle Cambon; Sophie Barbe; Claire Moulis; Magali Remaud-Siméon; Isabelle André
Journal:  Protein Sci       Date:  2017-02-12       Impact factor: 6.725

Review 2.  GH13 amylosucrases and GH70 branching sucrases, atypical enzymes in their respective families.

Authors:  Claire Moulis; Isabelle André; Magali Remaud-Simeon
Journal:  Cell Mol Life Sci       Date:  2016-05-03       Impact factor: 9.261

3.  Structure-function analysis of silkworm sucrose hydrolase uncovers the mechanism of substrate specificity in GH13 subfamily 17 exo-α-glucosidases.

Authors:  Takatsugu Miyazaki; Enoch Y Park
Journal:  J Biol Chem       Date:  2020-05-07       Impact factor: 5.157

4.  The structure of amylosucrase from Deinococcus radiodurans has an unusual open active-site topology.

Authors:  Lars K Skov; Sandra Pizzut-Serin; Magali Remaud-Simeon; Heidi A Ernst; Michael Gajhede; Osman Mirza
Journal:  Acta Crystallogr Sect F Struct Biol Cryst Commun       Date:  2013-08-19

5.  Biosynthesis of glyceride glycoside (nonionic surfactant) by amylosucrase, a powerful glycosyltransferase.

Authors:  Ye-Jin Kim; Inonge Noni Siziya; Seungpyo Hong; Gil-Yong Lee; Myung-Ji Seo; Young-Rok Kim; Sang-Ho Yoo; Cheon-Seok Park; Dong-Ho Seo
Journal:  Food Sci Biotechnol       Date:  2021-02-06       Impact factor: 2.391

6.  Is it possible to stabilize a thermophilic protein further using sequences and structures of mesophilic proteins: a theoretical case study concerning DgAS.

Authors:  Ming Liu; Hongqiu He; Jiguo Su
Journal:  Theor Biol Med Model       Date:  2013-04-10       Impact factor: 2.432

7.  Insight into the structure, dynamics and the unfolding property of amylosucrases: implications of rational engineering on thermostability.

Authors:  Ming Liu; Shuang Wang; Tingguang Sun; Jiguo Su; Yuanxing Zhang; Junjie Yue; Zhiwei Sun
Journal:  PLoS One       Date:  2012-07-06       Impact factor: 3.240

8.  Biotransformation of hydroquinone into α-arbutin by transglucosylation activity of a metagenomic amylosucrase.

Authors:  Neera Agarwal; Amit K Rai; Sudhir P Singh
Journal:  3 Biotech       Date:  2021-07-03       Impact factor: 2.893

9.  Similarities and differences in the biochemical and enzymological properties of the four isomaltases from Saccharomyces cerevisiae.

Authors:  Xu Deng; Marjorie Petitjean; Marie-Ange Teste; Wafa Kooli; Samuel Tranier; Jean Marie François; Jean-Luc Parrou
Journal:  FEBS Open Bio       Date:  2014-02-15       Impact factor: 2.693

Review 10.  Versatile biotechnological applications of amylosucrase, a novel glucosyltransferase.

Authors:  Dong-Ho Seo; Sang-Ho Yoo; Seung-Jun Choi; Young-Rok Kim; Cheon-Seok Park
Journal:  Food Sci Biotechnol       Date:  2019-11-01       Impact factor: 2.391

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