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首页> 外文期刊>European Journal of Medicinal Chemistry: Chimie Therapeutique >Design, synthesis and evaluation of phenylthiazole and phenylthiophene pyrimidindiamine derivatives targeting the bacterial membrane
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Design, synthesis and evaluation of phenylthiazole and phenylthiophene pyrimidindiamine derivatives targeting the bacterial membrane

机译:鉴定细菌膜的苯噻唑和苯基噻吩嘧啶胺衍生物的设计,合成和评价

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摘要

As the continuous rise in the incidence of antibiotic resistance, it is urgent to develop novel chemical scaffolds with antibacterial activities to control the spread of resistance to conventional antibiotics. In this study, a series of phenylthiazole and phenylthiophene pyrimidindiamine derivatives were designed and synthesized by modifying the hit compound (N-2-isobutyl-N-4-((4-methyl-2-phenylthiazol-5-yl) methyl) pyrimidine-2,4-diamine) and their antibacterial activities were evaluated both in vitro and in vivo. Among the tested compounds, compound 14g (N4-((5-(3-bromophenyl)thiophen-2-yl)-methyl)N-2-isobutylpyrimidine-2,4-diamine) displayed the best antibacterial activities, which was not only capable of inhibiting E. coil and S. aureus growth at concentrations as low as 2 and 3 mu g/mL in vitro, but also efficacious in a mice model of bacteremia in vivo. Unlike conventional antibiotics, compound 14g was elucidated to mainly destroy the bacterial cell membrane, with the dissipation of membrane potential and leakage of contents, ultimately leading to cell death. The destruction of cell structure is challenging to induce bacterial resistance, which suggested that compound 14g may be a kind of promising alternatives to antibiotics against bacteria. (C) 2020 Elsevier Masson SAS. All rights reserved.
机译:随着抗生素抗性发生率的持续上升,迫切需要开发具有抗菌活性的新型化学支架,以控制耐常规抗生素的抗性。在该研究中,通过改变麦嘧啶((4-甲基-2-苯基噻唑-5-基)甲基)嘧啶来设计并合成一系列苯Xthiazole和苯基噻吩嘧啶胺衍生物和合成。 2,4-二胺)和它们的抗菌活性在体外和体内进行评估。在测试的化合物中,化合物14g(N4 - ((5-(3-溴苯基)噻吩-2-基) - 甲基)N-2-异丁基嘧啶-2,4-二胺)显示出最佳的抗菌活性,这不仅是能够在体外低至2和3μg/ ml的浓度下抑制E.卷的卷材和黄嘌呤生长,但在体内菌血症的小鼠模型中也有效。与常规抗生素不同,阐明化合物14g以主要破坏细菌细胞膜,随着膜电位的耗散,含量渗漏,最终导致细胞死亡。细胞结构的破坏是诱导诱导细菌抗性的挑战,这表明化合物14G可以是对细菌的抗生素的一种有前途的替代品。 (c)2020 Elsevier Masson SAS。版权所有。

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