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Solid-Phase Synthesis and Antibacterial Activity of Cyclohexapeptide Wollamide B Analogs

机译:环己肽威胺B类似物的固相合成及抗菌活性

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摘要

Herein we report the antibacterial structure activity relationships of cyclic hexapeptide wollamide analogs derived from solid-phase library synthesis. Wollamide B, a cyclic hexapeptide natural product, has been previously found to have activity against Mycobacterium bovis. To further evaluate its antimycobacterial/antibacterial potential, 27 peptides including wollamides A/B, and desotamide B, were synthesized and subsequently tested against a panel of clinically significant bacterial pathogens. Biological evaluation revealed that the cyclic scaffold, amide functionality in position I, tryptophan residue in position V, and the original stereochemistry pattern of the core scaffold were key for antituberculosis and/or antibacterial activity. In addition, against M. tuberculosis and Gram-positive bacteria, residues in position II and/or VI greatly impacted antibacterial activity and selectivity. Wollamides A (3) and B (2) along with their corresponding II (L-Leu) analog 10 retained the most promising antituberculosis activity, with the lowest minimum inhibitory concentration (MIC) against virulent M. tuberculosis H37Rv (MIC = 1.56 mu g/mL), as well as desirable selectivity indices (100). Importantly, the antimicrobial activities of wollamides A and B do not result from disruption of the bacterial membrane, warranting further investigation into their mechanism of action.
机译:在此,我们报告了衍生自固相文库合成的循环六肽威谷酰胺类似物的抗菌结构活性关系。先前已经发现醋胺B,一种环状己肽天然产物,以患有对细胞杆菌杆菌的活性。为了进一步评估其抗细菌/抗菌潜力,合成包括醋胺A / B的27种肽,并随后对临床显着的细菌病原体的面板进行测试。生物学评价显示,环状支架,位置I的酰胺官能团,在v的位置V中的色氨酸残基,以及核心支架的原始立体化学模式是抗亚伯氏抗菌和/或抗菌活性的关键。此外,针对结核病和革兰氏阳性细菌,存在II的残留物和/或VI大量影响抗菌活性和选择性。酸甲酰胺A(3)和B(2)以及它们的相应II(L-Leu)类似物10保留了最有前景的抗核分泌活性,最低最低抑制浓度(MIC)针对毒力M.Tuberculosis H37RV(MIC =1.56μg / ml),以及所需的选择性指数(& 100)。重要的是,硫胺A和B的抗微生物活性不会因细菌膜的破坏而导致,需要进一步调查其行动机制。

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