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Synthesis, Antibacterial, and Molecular Docking Study of Novel 2-Chloro-8-Methoxy-3-Aryl-[1,3] Benzoxazine Derivatives using Vilsmeier Reagent
Author(s) -
Raied Mustafa Shakir,
Shaimaa Abed Saoud,
Dhuha Faruk Hussain
Publication year - 2020
Publication title -
international journal of drug delivery technology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.133
H-Index - 9
ISSN - 0975-4415
DOI - 10.25258/ijddt.10.3.32
Subject(s) - hydrazide , chemistry , antibacterial activity , reagent , dna gyrase , hydrazine (antidepressant) , aryl , hydrate , combinatorial chemistry , docking (animal) , hydrazone , stereochemistry , organic chemistry , bacteria , medicinal chemistry , escherichia coli , biochemistry , medicine , genetics , alkyl , nursing , gene , biology
Reducing of ethyl 4-((2-hydroxy-3-methoxybenzylidene)amino)benzoate (1) afford ethyl 4-((2-hydroxy-3-methoxybenzyl) amino)benzoate (2). Reaction of this compound with Vilsmeier reagent affords novel 2-chloro-[1,3] benzoxazine ring (3). The corresponding acid hydrazide of compound 3 was synthesized from reaction of compound (3) with hydrazine hydrate. Newly series of hydrazones (5a–i) were synthesized from reaction of acid hydrazide with various aryl aldehydes. Antibacterial activity of the hydrazones was secerned utilizing gram-negative and gram-positive bacteria. Compound (5b) and (5c) exhibited significant antibacterial ability against both gram-negative and gram-positive bacteria, while the compounds (5a) showed mild antibacterial activity. Compounds (5d–i) did not display notable activity. The molecular docking of synthesised compounds were tested inside the pocket of bacterial gyrase enzyme target site by using MOE 2015 software, which acts as Adenosine triphosphate (ATP)-binding domain bacterial gyrase enzyme pocket and novobiocin was used as reference.

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