An evolutionary non-conserved motif in Helicobacter pylori arginase mediates positioning of the loop containing the catalytic residue for catalysis.
Amino Acid Motifs
Amino Acid Sequence
Amino Acid Substitution
Amino Acids
/ chemistry
Animals
Arginase
/ antagonists & inhibitors
Arginine
/ metabolism
Bacterial Proteins
/ antagonists & inhibitors
Catalysis
Cobalt
/ metabolism
Conserved Sequence
Fluorescence Polarization
Gastritis
/ microbiology
Helicobacter
/ enzymology
Helicobacter Infections
/ microbiology
Helicobacter pylori
/ enzymology
Humans
Hydrolysis
Models, Molecular
Molecular Docking Simulation
Molecular Dynamics Simulation
Mutation, Missense
Point Mutation
Protein Structure, Secondary
Recombinant Proteins
/ metabolism
Sequence Alignment
Sequence Homology, Amino Acid
Species Specificity
catalytic function
fluorescence anisotropy
inhibitor
molecular dynamics simulations
mutational studies
Journal
The Biochemical journal
ISSN: 1470-8728
Titre abrégé: Biochem J
Pays: England
ID NLM: 2984726R
Informations de publication
Date de publication:
26 02 2021
26 02 2021
Historique:
received:
17
12
2020
revised:
21
01
2021
accepted:
22
01
2021
pubmed:
23
1
2021
medline:
22
6
2021
entrez:
22
1
2021
Statut:
ppublish
Résumé
The binuclear metalloenzyme Helicobacter pylori arginase is important for pathogenesis of the bacterium in the human stomach. Despite conservation of the catalytic residues, this single Trp enzyme has an insertion sequence (-153ESEEKAWQKLCSL165-) that is extremely crucial to function. This sequence contains the critical residues, which are conserved in the homolog of other Helicobacter gastric pathogens. However, the underlying basis for the role of this motif in catalytic function is not completely understood. Here, we used biochemical, biophysical and molecular dynamics simulations studies to determine that Glu155 of this stretch interacts with both Lys57 and Ser152. These interactions are essential for positioning of the motif through Trp159, which is located near Glu155 (His122-Trp159-Tyr125 contact is essential to tertiary structural integrity). The individual or double mutation of Lys57 and Ser152 to Ala considerably reduces catalytic activity with Lys57 to Ala being more significant, indicating they are crucial to function. Our data suggest that the Lys57-Glu155-Ser152 interaction influences the positioning of the loop containing the catalytic His133 so that this His can participate in catalysis, thereby providing a mechanistic understanding into the role of this motif in catalytic function. Lys57 was also found only in the arginases of other Helicobacter gastric pathogens. Based on the non-conserved motif, we found a new molecule, which specifically inhibits this enzyme. Thus, the present study not only provides a molecular basis into the role of this motif in function, but also offers an opportunity for the design of inhibitors with greater efficacy.
Identifiants
pubmed: 33480396
pii: 227643
doi: 10.1042/BCJ20200978
doi:
Substances chimiques
Amino Acids
0
Bacterial Proteins
0
Recombinant Proteins
0
Cobalt
3G0H8C9362
Arginine
94ZLA3W45F
Arginase
EC 3.5.3.1
Types de publication
Comparative Study
Journal Article
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
Pagination
871-894Informations de copyright
© 2021 The Author(s). Published by Portland Press Limited on behalf of the Biochemical Society.