Literature DB >> 26777252

An Aspergillus nidulans GH26 endo-β-mannanase with a novel degradation pattern on highly substituted galactomannans.

Pernille von Freiesleben1, Nikolaj Spodsberg2, Thomas Holberg Blicher2, Lars Anderson2, Henning Jørgensen3, Henrik Stålbrand4, Anne S Meyer5, Kristian B R M Krogh2.   

Abstract

The activity and substrate degradation pattern of a novel Aspergillus nidulans GH26 endo-β-mannanase (AnMan26A) was investigated using two galactomannan substrates with varying amounts of galactopyranosyl residues. The AnMan26A was characterized in parallel with the GH26 endomannanase from Podospora anserina (PaMan26A) and three GH5 endomannanases from A. nidulans and Trichoderma reesei (AnMan5A, AnMan5C and TrMan5A). The initial rates and the maximal degree of enzymatically catalyzed conversion of locust bean gum and guar gum galactomannans were determined. The hydrolysis product profile at maximal degree of conversion was determined using DNA sequencer-Assisted Saccharide analysis in High throughput (DASH). This is the first reported use of this method for analyzing galactomannooligosaccharides. AnMan26A and PaMan26A were found to have a novel substrate degradation pattern on the two galactomannan substrates. On the highly substituted guar gum AnMan26A and PaMan26A reached 35-40% as their maximal degree of conversion whereas the three tested GH5 endomannanases only reached 8-10% as their maximal degree of conversion. α-Galactosyl-mannose was identified as the dominant degradation product resulting from AnMan26A and PaMan26A action on guar gum, strongly indicating that these two enzymes can accommodate galactopyranosyl residues in the -1 and in the +1 subsite. The degradation of α-6(4)-6(3)-di-galactosyl-mannopentaose by AnMan26A revealed accommodation of galactopyranosyl residues in the -2, -1 and +1 subsite of the enzyme. Accommodation of galactopyranosyl residues in subsites -2 and +1 has not been observed for other characterized endomannanases to date. Docking analysis of galactomannooligosaccharides in available crystal structures and homology models supported the conclusions drawn from the experimental results. This newly discovered diversity of substrate degradation patterns demonstrates an expanded functionality of fungal endomannanases, than hitherto reported.
Copyright © 2015 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  -(1→4)-mannanase; DASH; Endo-β; Galactomannan; Glycoside hydrolase family; Substrate degradation pattern

Mesh:

Substances:

Year:  2015        PMID: 26777252     DOI: 10.1016/j.enzmictec.2015.10.011

Source DB:  PubMed          Journal:  Enzyme Microb Technol        ISSN: 0141-0229            Impact factor:   3.493


  10 in total

Review 1.  Function, distribution, and annotation of characterized cellulases, xylanases, and chitinases from CAZy.

Authors:  Stanley T C Nguyen; Hannah L Freund; Joshua Kasanjian; Renaud Berlemont
Journal:  Appl Microbiol Biotechnol       Date:  2018-01-22       Impact factor: 4.813

2.  The Patterned Structure of Galactoglucomannan Suggests It May Bind to Cellulose in Seed Mucilage.

Authors:  Li Yu; Jan J Lyczakowski; Caroline S Pereira; Toshihisa Kotake; Xiaolan Yu; An Li; Soren Mogelsvang; Munir S Skaf; Paul Dupree
Journal:  Plant Physiol       Date:  2018-09-05       Impact factor: 8.340

3.  β-Mannanase-catalyzed synthesis of alkyl mannooligosides.

Authors:  Johan Morrill; Anna Månberger; Anna Rosengren; Polina Naidjonoka; Pernille von Freiesleben; Kristian B R M Krogh; Karl-Erik Bergquist; Tommy Nylander; Eva Nordberg Karlsson; Patrick Adlercreutz; Henrik Stålbrand
Journal:  Appl Microbiol Biotechnol       Date:  2018-04-22       Impact factor: 4.813

4.  Expression, homology modeling and enzymatic characterization of a new β-mannanase belonging to glycoside hydrolase family 1 from Enterobacter aerogenes B19.

Authors:  Siyu Liu; Tangbing Cui; Yan Song
Journal:  Microb Cell Fact       Date:  2020-07-14       Impact factor: 5.328

5.  A surface-exposed GH26 β-mannanase from Bacteroides ovatus: Structure, role, and phylogenetic analysis of BoMan26B.

Authors:  Viktoria Bågenholm; Mathias Wiemann; Sumitha K Reddy; Abhishek Bhattacharya; Anna Rosengren; Derek T Logan; Henrik Stålbrand
Journal:  J Biol Chem       Date:  2019-04-18       Impact factor: 5.157

6.  Crystal structure and substrate interactions of an unusual fungal non-CBM carrying GH26 endo-β-mannanase from Yunnania penicillata.

Authors:  Pernille von Freiesleben; Olga V Moroz; Elena Blagova; Mathias Wiemann; Nikolaj Spodsberg; Jane W Agger; Gideon J Davies; Keith S Wilson; Henrik Stålbrand; Anne S Meyer; Kristian B R M Krogh
Journal:  Sci Rep       Date:  2019-02-19       Impact factor: 4.379

7.  Low-Cost Cellulase-Hemicellulase Mixture Secreted by Trichoderma harzianum EM0925 with Complete Saccharification Efficacy of Lignocellulose.

Authors:  Yu Zhang; Jinshui Yang; Lijin Luo; Entao Wang; Ruonan Wang; Liang Liu; Jiawen Liu; Hongli Yuan
Journal:  Int J Mol Sci       Date:  2020-01-07       Impact factor: 5.923

Review 8.  Applications of Microbial β-Mannanases.

Authors:  Aneesa Dawood; Kesen Ma
Journal:  Front Bioeng Biotechnol       Date:  2020-12-15

9.  Mannanase hydrolysis of spruce galactoglucomannan focusing on the influence of acetylation on enzymatic mannan degradation.

Authors:  Jenny Arnling Bååth; Antonio Martínez-Abad; Jennie Berglund; Johan Larsbrink; Francisco Vilaplana; Lisbeth Olsson
Journal:  Biotechnol Biofuels       Date:  2018-04-19       Impact factor: 6.040

10.  Boosting of enzymatic softwood saccharification by fungal GH5 and GH26 endomannanases.

Authors:  Pernille von Freiesleben; Nikolaj Spodsberg; Anne Stenbæk; Henrik Stålbrand; Kristian B R M Krogh; Anne S Meyer
Journal:  Biotechnol Biofuels       Date:  2018-07-17       Impact factor: 6.040

  10 in total

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