Literature DB >> 19777168

Enhancement of alpha- and beta-galactosidase activity in Lactobacillus reuteri by different metal ions.

Salam A Ibrahim1, Awfa Y Alazzeh, Saddam S Awaisheh, Danfeng Song, Abolghasem Shahbazi, Amer A AbuGhazaleh.   

Abstract

The hydrolysis of oligosaccharides and lactose is of great importance to the food industry. Normally, oligosaccharides like raffinose, stachyose, and verbascose which are rich in different plants like soy bean are considered indigestible by the human gut. Moreover, many humans suffer from lactose intolerance due to the absence of effective enzyme that can digest lactose. alpha-Galactosidase can digest oligosaccharides like raffinose, while beta-galactosidases can hydrolyze lactose. Therefore, selection of microorganisms safe for human use and capable of producing high levels of enzymes becomes an attractive task. The objective of this study was to investigate the enhancement of alpha- and beta-galactosidase activity in Lactobacillus reuteri by different metal ions. Ten millimolar of Na(+), K(+), Fe(2+), and Mg(2+) and 1 mM of Mn(2+) were added separately to the growth culture of six strains of L. reuteri (CF2-7F, DSM20016, MF14-C, MM2-3, MM7, and SD2112). Results showed that L. reuteri CF2-7F had the highest alpha- and beta-galactosidase activity when grown in the medium with added Mn(2+) ions (22.7 and 19.3 Gal U/ml, respectively). 0.0274% of Mn(2+) ions lead to 27, 18% enhancement of alpha- and beta-galactosidase activity over the control group, and therefore, it could be added to the growth culture of CF2-7F to produce enhanced levels of alpha- and beta-galactosidase activity. The addition of Fe(2+) led to a significant (P < 0.01) decrease in the activity of both enzymes for most strains. This study shows that modified culture medium with that 0.0274% Mn(2+) can be used to promote the production for alpha- and beta-galactosidase in L. reuteri CF2-7F, which may lead to enhancement of alpha- and beta-galactosidase activity and have a good potential to be used in the food industry.

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Year:  2009        PMID: 19777168     DOI: 10.1007/s12011-009-8519-2

Source DB:  PubMed          Journal:  Biol Trace Elem Res        ISSN: 0163-4984            Impact factor:   3.738


  5 in total

1.  Disulfide bond formation and activation of Escherichia coli β-galactosidase under oxidizing conditions.

Authors:  Joaquin Seras-Franzoso; Roman Affentranger; Mario Ferrer-Navarro; Xavier Daura; Antonio Villaverde; Elena García-Fruitós
Journal:  Appl Environ Microbiol       Date:  2012-01-27       Impact factor: 4.792

2.  A pilot trial on subjects with lactose and/or oligosaccharides intolerance treated with a fixed mixture of pure and enteric-coated α- and β-galactosidase.

Authors:  Francesco Di Pierro; Alexander Bertuccioli; Eleonora Marini; Leandro Ivaldi
Journal:  Clin Exp Gastroenterol       Date:  2015-02-19

3.  Prebiotic properties of Bacillus coagulans MA-13: production of galactoside hydrolyzing enzymes and characterization of the transglycosylation properties of a GH42 β-galactosidase.

Authors:  Martina Aulitto; Andrea Strazzulli; Ferdinando Sansone; Flora Cozzolino; Maria Monti; Marco Moracci; Gabriella Fiorentino; Danila Limauro; Simonetta Bartolucci; Patrizia Contursi
Journal:  Microb Cell Fact       Date:  2021-03-18       Impact factor: 5.328

4.  Cloning, Expression, Purification, and Characterization of β-Galactosidase from Bifidobacterium longum and Bifidobacterium pseudocatenulatum.

Authors:  Mingzhu Du; Shuanghong Yang; Tong Jiang; Tingting Liang; Ying Li; Shuzhen Cai; Qingping Wu; Jumei Zhang; Wei Chen; Xinqiang Xie
Journal:  Molecules       Date:  2022-07-14       Impact factor: 4.927

5.  Enzymatic activity of Lactobacillus reuteri grown in a sweet potato based medium with the addition of metal ions.

Authors:  Saeed A Hayek; Aboghasem Shahbazi; Mulumebet Worku; Salam A Ibrahim
Journal:  Springerplus       Date:  2013-09-16
  5 in total

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