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KatG-Mediated Oxidation Leading to Reduced Susceptibility of Bacteria to Kanamycin
Author(s) -
P.C. Loewen,
P. Malaka De Silva,
Lynda J. Donald,
Jacek Switala,
Jacylyn Villanueva,
Ignacio Fita,
Ayush Kumar
Publication year - 2018
Publication title -
acs omega
Language(s) - English
Resource type - Journals
ISSN - 2470-1343
DOI - 10.1021/acsomega.8b00356
Subject(s) - kanamycin , chemistry , aminoglycoside , peroxidase , antibiotics , catalase , microbiology and biotechnology , isoniazid , biochemistry , oxidative phosphorylation , oxidative stress , enzyme , tuberculosis , biology , medicine , pathology
Resistance to antibiotics has become a serious problem for society, and there are increasing efforts to understand the reasons for and sources of resistance. Bacterial-encoded enzymes and transport systems, both innate and acquired, are the most frequent culprits for the development of resistance, although in Mycobacterium tuberculosis , the catalase-peroxidase, KatG, has been linked to the activation of the antitubercular drug isoniazid. While investigating a possible link between aminoglycoside antibiotics and the induction of oxidative bursts, we observed that KatG reduces susceptibility to aminoglycosides. Investigation revealed that kanamycin served as an electron donor for the peroxidase reaction, reducing the oxidized ferryl intermediates of KatG to the resting state. Loss of electrons from kanamycin was accompanied by the addition of a single oxygen atom to the aminoglycoside. The oxidized form of kanamycin proved to be less effective as an antibiotic. Kanamycin inhibited the crystallization of KatG, but the smaller, structurally related glycoside maltose did cocrystallize with KatG, providing a suggestion as to the possible binding site of kanamycin.

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