Literature DB >> 14500872

Directed evolution of a bacterial alpha-amylase: toward enhanced pH-performance and higher specific activity.

Cornelius Bessler1, Jutta Schmitt, Karl-Heinz Maurer, Rolf D Schmid.   

Abstract

alpha-Amylases, in particular, microbial alpha-amylases, are widely used in industrial processes such as starch liquefaction and pulp processes, and more recently in detergency. Due to the need for alpha-amylases with high specific activity and activity at alkaline pH, which are critical parameters, for example, for the use in detergents, we have enhanced the alpha-amylase from Bacillus amyloliquefaciens (BAA). The genes coding for the wild-type BAA and the mutants BAA S201N and BAA N297D were subjected to error-prone PCR and gene shuffling. For the screening of mutants we developed a novel, reliable assay suitable for high throughput screening based on the Phadebas assay. One mutant (BAA 42) has an optimal activity at pH 7, corresponding to a shift of one pH unit compared to the wild type. BAA 42 is active over a broader pH range than the wild type, resulting in a 5-fold higher activity at pH 10. In addition, the activity in periplasmic extracts and the specific activity increased 4- and 1.5-fold, respectively. Another mutant (BAA 29) possesses a wild-type-like pH profile but possesses a 40-fold higher activity in periplasmic extracts and a 9-fold higher specific activity. The comparison of the amino acid sequences of these two mutants with other homologous microbial alpha-amylases revealed the mutation of the highly conserved residues W194R, S197P, and A230V. In addition, three further mutations were found K406R, N414S, and E356D, the latter being present in other bacterial alpha-amylases.

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Year:  2003        PMID: 14500872      PMCID: PMC2366932          DOI: 10.1110/ps.0384403

Source DB:  PubMed          Journal:  Protein Sci        ISSN: 0961-8368            Impact factor:   6.725


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Review 1.  Protein engineering of amylases.

Authors:  B Svensson; M Søgaard
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2.  Biochemical and genetic analysis of a maltopentaose-producing amylase from an alkaliphilic gram-positive bacterium.

Authors:  A Candussio; G Schmid; A Böck
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3.  Nucleotide sequence of an amylase gene from Bacillus megaterium.

Authors:  R J Metz; L N Allen; T M Cao; N W Zeman
Journal:  Nucleic Acids Res       Date:  1988-06-10       Impact factor: 16.971

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Authors:  A Tsukamoto; K Kimura; Y Ishii; T Takano; K Yamane
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6.  Nucleotide sequence of the Bacillus stearothermophilus alpha-amylase gene.

Authors:  R Nakajima; T Imanaka; S Aiba
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Authors:  B Svensson
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8.  Expression of a Bacillus alpha-amylase gene in yeast.

Authors:  I S Pretorius; E Laing; G H Pretorius; J Marmur
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9.  Amino acid residues stabilizing a Bacillus alpha-amylase against irreversible thermoinactivation.

Authors:  Y Suzuki; N Ito; T Yuuki; H Yamagata; S Udaka
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