Literature DB >> 24480109

Improving the specific activity of β-mannanase from Aspergillus niger BK01 by structure-based rational design.

Jian-Wen Huang1, Chun-Chi Chen2, Chun-Hsiang Huang2, Ting-Yung Huang3, Tzu-Hui Wu1, Ya-Shan Cheng3, Tzu-Ping Ko4, Cheng-Yen Lin3, Je-Ruei Liu5, Rey-Ting Guo6.   

Abstract

β-Mannanase has found various biotechnological applications because it is capable of degrading mannans into smaller sugar components. A highly potent example is the thermophilic β-mannanase from Aspergillus niger BK01 (ManBK), which can be efficiently expressed in industrial yeast strains and is thus an attractive candidate for commercial utilizations. In order to understand the molecular mechanism, which helps in strategies to improve the enzyme's performance that would meet industrial demands, 3D-structural information is a great asset. Here, we present the 1.57Å crystal structure of ManBK. The protein adopts a typical (β/α)8 fold that resembles the other GH5 family members. Polysaccharides were subsequently modeled into the substrate binding groove to identify the residues and structural features that may be involved in the catalytic reaction. Based on the structure, rational design was conducted to engineer ManBK in an attempt to enhance its enzymatic activity. Among the 23 mutants that we constructed, the most promising Y216W showed an 18±2.7% increase in specific activity by comparison with the wild type enzyme. The optimal temperature and heat tolerance profiles of Y216W were similar to those of the wild type, manifesting a preserved thermostability. Kinetic studies showed that Y216W has higher kcat values than the wild type enzyme, suggesting a faster turnover rate of catalysis. In this study we applied rational design to ManBK by using its crystal structure as a basis and identified the Y216W mutant that shows great potentials in industrial applications.
Copyright © 2014 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Aspergillus niger; Crystal structure; Rational design; Thermophilic; β-Mannanase

Mesh:

Substances:

Year:  2014        PMID: 24480109     DOI: 10.1016/j.bbapap.2014.01.011

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  5 in total

1.  Crystallization and preliminary X-ray diffraction analysis of an endo-1,4-β-D-glucanase from Aspergillus aculeatus F-50.

Authors:  Yun Chen; Jian Wen Huang; Chun Chi Chen; Hui Lin Lai; Jian Jin; Rey Ting Guo
Journal:  Acta Crystallogr F Struct Biol Commun       Date:  2015-03-20       Impact factor: 1.056

2.  Structural and functional analysis of a novel psychrophilic β-mannanase from Glaciozyma antarctica PI12.

Authors:  Sepideh Parvizpour; Jafar Razmara; Aizi Nor Mazila Ramli; Rosli Md Illias; Mohd Shahir Shamsir
Journal:  J Comput Aided Mol Des       Date:  2014-05-22       Impact factor: 3.686

3.  Transcriptional Basis for Haustorium Formation and Host Establishment in Hemiparasitic Psittacanthus schiedeanus Mistletoes.

Authors:  Enrique Ibarra-Laclette; Carlos Ariel Venancio-Rodríguez; Antonio Acini Vásquez-Aguilar; Alexandro G Alonso-Sánchez; Claudia-Anahí Pérez-Torres; Emanuel Villafán; Santiago Ramírez-Barahona; Sonia Galicia; Victoria Sosa; Eria A Rebollar; Carlos Lara; Antonio González-Rodríguez; Francisco Díaz-Fleisher; Juan Francisco Ornelas
Journal:  Front Genet       Date:  2022-06-13       Impact factor: 4.772

Review 4.  Stachybotrys chartarum-A Hidden Treasure: Secondary Metabolites, Bioactivities, and Biotechnological Relevance.

Authors:  Sabrin R M Ibrahim; Hani Choudhry; Amer H Asseri; Mahmoud A Elfaky; Shaimaa G A Mohamed; Gamal A Mohamed
Journal:  J Fungi (Basel)       Date:  2022-05-12

Review 5.  Applications of Microbial β-Mannanases.

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

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