Engineered glucose isomerase from Streptomyces sp. SK is resistant to Ca2+ inhibition and Co2+ independent

Author:

Ben Hlima Hajer1,Aghajari Nushin2,Ben Ali Mamdouh1,Haser Richard2,Bejar Samir1

Affiliation:

1. grid.412124.0 0000000123235644 Laboratoire de Microorganismes et de Biomolécules, Centre de Biotechnologie de Sfax Université de Sfax B.P 1177 Route de Sidi Mansour Km 6 3018 Sfax Tunisia

2. grid.25697.3f 0000 0001 2172 4233 Laboratoire de BioCristallographie et Biologie Structurale des Cibles Thérapeutiques, Bases Moléculaires et Structurales des Systèmes Infectieux UMR 5086–CNRS/Université Lyon 1, Institut de Biologie et Chimie des Protéines FR3302, 7 Passage du Vercors 69367 Lyon cedex 07 France

Abstract

Abstract The role of two amino acid residues linked to the two catalytic histidines His54 and His220 in kinetics and physicochemical properties of the Streptomyces sp. SK glucose isomerase (SKGI) was investigated by site-directed mutagenesis and molecular modeling. Two single mutations, F53L and G219D, and a double mutation F53L/G219D was introduced into the xylA SKGI gene. The F53L mutation increases the thermostability and the catalytic efficiency and also slightly shifts the optimum pH from 6.5 to 7, but displays a profile being similar to that of the wild-type enzyme concerning the effect of various metal ions. The G219D mutant is resistant to calcium inhibition retaining about 80% of its residual activity in 10 mM Ca2+ instead of 10% for the wild-type. This variant is activated by Mn2+ ions, but not Co2+, as seen for the wild-type enzyme. It does not require the latter for its thermostability, but has its half-life time displaced from 50 to 20 min at 85°C. The double mutation F53L/G219D restores the thermostability as seen for the wild-type enzyme while maintaining the resistance to the calcium inhibition. Molecular modeling suggests that the increase in thermostability is due to new hydrophobic interactions stabilizing α2 helix and that the resistance to calcium inhibition is a result of narrowing the binding site of catalytic ion.

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology,Biotechnology,Bioengineering

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