Literature DB >> 22887900

Structure-based replacement of methionine residues at the catalytic domains with serine significantly improves the oxidative stability of alkaline amylase from alkaliphilic Alkalimonas amylolytica.

Haiquan Yang1, Long Liu, Jianghua Li, Guocheng Du, Jian Chen.   

Abstract

The alkaline amylase requires high resistance towards chemical oxidation for use in the detergent and textile industries. This work aims to improve the oxidative stability of alkaline amylase from alkaliphilic Alkalimonas amylolytica by site-directed mutagenesis based on the enzyme structure model. Five mutants were created by individually replacing methionine at positions 145, 214, 229, 247, and 317 in the amino acid sequence of alkaline amylase with oxidative-resistant serine. The pH stability of the mutant enzymes was almost the same as that of the wild-type (WT) enzyme (pH 7.0-11.0). The stable temperature range of the mutant enzymes M145S and M247S decreased from <50 °C of the WT to <40 °C, while the thermal stability of the other three mutant enzymes (M214S, M229S, and M317S) was almost the same as that of the WT enzyme. The catalytic efficiency (k(cat)/K(m)) of all the mutant enzymes decreased when compared to WT enzyme. The mutant enzymes showed increased activity in the presence of surfactants Tween-60 and sodium dodecyl sulfate. When incubated with 500 mM H(2)O(2) at 35 °C for 5 h, the WT enzyme retained only 13.3% of its original activity, while the mutant enzymes M145S, M214S, M229S, M247S, and M317S retained 55.6, 70.2, 54.2, 62.5, and 46.4% of the original activities, respectively. The results indicated that the substitution of methionine residues at the catalytic domains with oxidative-resistant serine can significantly improve the oxidative stability of alkaline amylase. This work provides an effective strategy to improve the oxidative stability of amylase, and the high oxidation resistance of the mutant enzymes shows their potential applications in the detergent and textile industries.
Copyright © 2012 American Institute of Chemical Engineers (AIChE).

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Year:  2012        PMID: 22887900     DOI: 10.1002/btpr.1611

Source DB:  PubMed          Journal:  Biotechnol Prog        ISSN: 1520-6033


  4 in total

1.  Fusion of an oligopeptide to the N terminus of an alkaline α-amylase from Alkalimonas amylolytica simultaneously improves the enzyme's catalytic efficiency, thermal stability, and resistance to oxidation.

Authors:  Haiquan Yang; Xinyao Lu; Long Liu; Jianghua Li; Hyun-dong Shin; Rachel R Chen; Guocheng Du; Jian Chen
Journal:  Appl Environ Microbiol       Date:  2013-03-01       Impact factor: 4.792

2.  Structure and function of aerotolerant, multiple-turnover THI4 thiazole synthases.

Authors:  Jaya Joshi; Qiang Li; Jorge D García-García; Bryan J Leong; You Hu; Steven D Bruner; Andrew D Hanson
Journal:  Biochem J       Date:  2021-09-17       Impact factor: 3.857

3.  Structure-guided systems-level engineering of oxidation-prone methionine residues in catalytic domain of an alkaline α-amylase from Alkalimonas amylolytica for significant improvement of both oxidative stability and catalytic efficiency.

Authors:  Haiquan Yang; Long Liu; Hyun-dong Shin; Jianghua Li; Guocheng Du; Jian Chen
Journal:  PLoS One       Date:  2013-03-15       Impact factor: 3.240

4.  Improving the thermostability and stress tolerance of an archaeon hyperthermophilic superoxide dismutase by fusion with a unique N-terminal domain.

Authors:  Mingchang Li; Lin Zhu; Wei Wang
Journal:  Springerplus       Date:  2016-03-01
  4 in total

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