Literature DB >> 22446164

Substitution for Asn460 cripples β-galactosidase (Escherichia coli) by increasing substrate affinity and decreasing transition state stability.

Robert W Wheatley1, John C Kappelhoff, Jennifer N Hahn, Megan L Dugdale, Mark J Dutkoski, Stephanie D Tamman, Marie E Fraser, Reuben E Huber.   

Abstract

Substrate initially binds to β-galactosidase (Escherichia coli) at a 'shallow' site. It then moves ∼3Å to a 'deep' site and the transition state forms. Asn460 interacts in both sites, forming a water bridge interaction with the O3 hydroxyl of the galactosyl moiety in the shallow site and a direct H-bond with the O2 hydroxyl of the transition state in the deep site. Structural and kinetic studies were done with β-galactosidases with substitutions for Asn460. The substituted enzymes have enhanced substrate affinity in the shallow site indicating lower E·substrate complex energy levels. They have poor transition state stabilization in the deep site that is manifested by increased energy levels of the E·transition state complexes. These changes in stability result in increased activation energies and lower k(cat) values. Substrate affinity to N460D-β-galactosidase was enhanced through greater binding enthalpy (stronger H-bonds through the bridging water) while better affinity to N460T-β-galactosidase occurred because of greater binding entropy. The transition states are less stable with N460S- and N460T-β-galactosidase because of the weakening or loss of the important bond to the O2 hydroxyl of the transition state. For N460D-β-galactosidase, the transition state is less stable due to an increased entropy penalty.
Copyright © 2012 Elsevier Inc. All rights reserved.

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Year:  2012        PMID: 22446164     DOI: 10.1016/j.abb.2012.03.014

Source DB:  PubMed          Journal:  Arch Biochem Biophys        ISSN: 0003-9861            Impact factor:   4.013


  5 in total

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Authors:  Douglas H Juers; Brian W Matthews; Reuben E Huber
Journal:  Protein Sci       Date:  2012-11-13       Impact factor: 6.725

2.  Structural explanation for allolactose (lac operon inducer) synthesis by lacZ β-galactosidase and the evolutionary relationship between allolactose synthesis and the lac repressor.

Authors:  Robert W Wheatley; Summie Lo; Larisa J Jancewicz; Megan L Dugdale; Reuben E Huber
Journal:  J Biol Chem       Date:  2013-03-13       Impact factor: 5.157

3.  Illuminating the binding interactions of galactonoamidines during the inhibition of β-galactosidase (E. coli).

Authors:  Qiu-Hua Fan; Jessica B Pickens; Susanne Striegler; Cédric D Gervaise
Journal:  Bioorg Med Chem       Date:  2015-12-18       Impact factor: 3.641

4.  Analysis of Domain Architecture and Phylogenetics of Family 2 Glycoside Hydrolases (GH2).

Authors:  David Talens-Perales; Anna Górska; Daniel H Huson; Julio Polaina; Julia Marín-Navarro
Journal:  PLoS One       Date:  2016-12-08       Impact factor: 3.240

5.  Iris: Interactive all-in-one graphical validation of 3D protein model iterations.

Authors:  William Rochira; Jon Agirre
Journal:  Protein Sci       Date:  2020-10-19       Impact factor: 6.725

  5 in total

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