Title of article
Aminoglycoside antibiotic phosphotransferases are also serine protein kinases Original Research Article
Author/Authors
Denis M. Daigle، نويسنده , , Geoffrey A. McKay، نويسنده , , Paul R Thompson، نويسنده , , Gerard D Wright، نويسنده ,
Issue Information
ماهنامه با شماره پیاپی سال 1999
Pages
8
From page
11
To page
18
Abstract
Bacterial resistance to aminoglycoside antibiotics occurs primarily through the expression of modifying enzymes that covalently alter the drugs by O-phosphorylation, O-adenylation or N-acetylation. Aminoglycoside phosphotransferases (APHs) catalyze the ATP-dependent phosphorylation of these antibiotics. Two particular enzymes in this class, APH(3′)-IIIa and AAC(6′)-APH(2″), are produced in gram-positive cocci and have been shown to phosphorylate aminoglycosides on their 3′ and 2″ hydroxyl groups, respectively. The three-dimensional structure of APH (3′)-IIIa is strikingly similar to those of eukaryotic protein kinases (EPKs), and the observation, reported previously, that APH(3′)-llla and AAC(6′)-APH(2″) are effectively inhibited by EPK inhibitors suggested the possibility that these aminoglycoside kinases might phosphorylate EPK substrates.
Results
Our data demonstrate unequivocally that APHs can phosphorylate several EPK substrates and that this phosphorylation occurs exclusively on serine residues. Phosphorylation of Ser/Thr protein kinase substrates by APHs was considerably slower than phosphorylation of aminoglycosides under identical assay conditions, which is consistent with the primary biological roles of the enzymes.
Conclusions
These results demonstrate a functional relationship between aminoglycoside and protein kinases, expanding on our previous observations of similarities in protein structure, enzyme mechanism and sensitivity to inhibitors, and suggest an evolutionary link between APHs and EPKs.
Keywords
* aminoglycoside , * antibiotic , * protein kinase , * resistance
Journal title
Chemistry and Biology
Serial Year
1999
Journal title
Chemistry and Biology
Record number
1158089
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