4.3 Article

Biochemical and spectroscopic properties of Brucella microti glutamate decarboxylase, a key component of the glutamate-dependent acid resistance system

期刊

FEBS OPEN BIO
卷 5, 期 -, 页码 209-218

出版社

WILEY
DOI: 10.1016/j.fob.2015.03.006

关键词

Brucella microti; Glutamate decarboxylase; Cooperativity; pH-dependent activity; Chloride activation; Substituted aldamine

资金

  1. Fondazione Roma
  2. Galilee program of Egide (Hubert Curien program) from the French Ministry of Foreign and European Affairs [25960UE]
  3. Italian Ministry of Foreign and European Affairs
  4. Istituto Pasteur-Fondazione Cenci Bolognetti

向作者/读者索取更多资源

In orally acquired bacteria, the ability to counteract extreme acid stress (pH 6 2.5) ensures survival during transit through the animal host stomach. In several neutralophilic bacteria, the glutamate-dependent acid resistance system (GDAR) is the most efficient molecular system in conferring protection from acid stress. In Escherichia coli its structural components are either of the two glutamate decarboxylase isoforms (GadA, GadB) and the antiporter, GadC, which imports glutamate and exports gamma-aminobutyrate, the decarboxylation product. The system works by consuming protons intracellularly, as part of the decarboxylation reaction, and exporting positive charges via the antiporter. Herein, biochemical and spectroscopic properties of GadB from Brucella microti (BmGadB), a Brucella species which possesses GDAR, are described. B. microti belongs to a group of lately described and atypical brucellae that possess functional gadB and gadC genes, unlike the most well-known classical Brucella species, which include important human pathogens. BmGadB is hexameric at acidic pH. The pH-dependent spectroscopic properties and activity profile, combined with in silico sequence comparison with E. coli GadB (EcGadB), suggest that BmGadB has the necessary structural requirements for the binding of activating chloride ions at acidic pH and for the closure of its active site at neutral pH. On the contrary, cellular localization analysis, corroborated by sequence inspection, suggests that BmGadB does not undergo membrane recruitment at acidic pH, which was observed in EcGadB. The comparison of GadB from evolutionary distant microorganisms suggests that for this enzyme to be functional in GDAR some structural features must be preserved. (C) 2015 The Authors. Published by Elsevier B.V. on behalf of the Federation of European Biochemical Societies.

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