Synthesis and biological evaluation of novel 5-(hydroxamic acid)methyl oxazolidinone derivatives

Research activities on the oxazolidinone antibacterial class of compounds continue to focus on developing newer derivatives with improved potency, broad-spectrum activity and safety profiles superior to linezolid. Among the safety concerns with the oxazolidinone antibacterial agents is inhibition of...

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Veröffentlicht in:European journal of medicinal chemistry 2015-12, Vol.106, p.120-131
Hauptverfasser: Phillips, Oludotun A., D'Silva, Roselyn, Bahta, Teklu O., Sharaf, Leyla H., Udo, Edet E., Benov, Ludmil, Eric Walters, D.
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Sprache:eng
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Zusammenfassung:Research activities on the oxazolidinone antibacterial class of compounds continue to focus on developing newer derivatives with improved potency, broad-spectrum activity and safety profiles superior to linezolid. Among the safety concerns with the oxazolidinone antibacterial agents is inhibition of monoamine oxidases (MAO) resulting from their structural similarity with toloxatone, a known MAO inhibitor. Diverse substitution patterns at the C-5 position of the oxazolidinone ring have been shown to significantly affect both antibacterial activity and MAO inhibition to varying degrees. Also, the antibacterial activity of compounds containing iron-chelating functionalities, such as the hydroxamic acids, 8-hydroxyquinolines and catechols have been correlated to their ability to alter iron intake and/or metabolism. Hence a series of novel 5-(hydroxamic acid)methyl oxazolidinone derivatives were synthesized and evaluated for their antibacterial and MAO-A and -B inhibitory activities. The compounds were devoid of significant antibacterial activity but most demonstrated moderate MAO-A and -B inhibitory activities. Computer modeling studies revealed that the lack of potent antibacterial activity was due to significant steric interaction between the hydroxamic acid N-OH oxygen atom and one of the G2540 5′-phosphate oxygen atoms at the bacterial ribosomal binding site. Therefore, the replacement of the 5-acetamidomethyl group of linezolid with the 5-(N-hydroxyacetamido)methyl group present in the hydroxamic acid oxazolidinone derivatives was concluded to be detrimental to antibacterial activity. Furthermore, the 5-(hydroxamic acid)methyl oxazolidinone derivatives were also less active as MAO-A and -B inhibitors compared with linezolid and the selective inhibitors clorgyline and pargyline. In general, the 5-(hydroxamic acid)methyl oxazolidinone derivatives demonstrated moderate but selective MAO-B inhibitory activity. Antibacterial and MAO-A and -B inhibitory activities of a series of novel 5-(hydroxamic acid)methyl oxazolidinones are reported. [Display omitted] •Novel 5-(hydroxamic acid)methyl oxazolidinone derivatives have been synthesized and fully characterized.•The bacterial growth and monoamine oxidases A and B inhibitory activities were evaluated.•The N-OH group of the N-hydroxyalkanamido substitution was detrimental to antibacterial activity.•MAO-A and -B inhibition is dependent on the substitution around the phenyloxazolidinone pharmacophore.•The N-hydroxama
ISSN:0223-5234
1768-3254
DOI:10.1016/j.ejmech.2015.10.025