Structure-Activity Relationship of Pyrrolidine Pentamine Derivatives as Inhibitors of the Aminoglycoside 6'-N-Acetyltransferase Type Ib.

IF 4.3 2区 医学 Q1 INFECTIOUS DISEASES Antibiotics-Basel Pub Date : 2024-07-19 DOI:10.3390/antibiotics13070672
Jan Sklenicka, Tung Tran, Maria S Ramirez, Haley M Donow, Angel J Magaña, Travis LaVoi, Yasir Mamun, Verónica Jimenez, Prem Chapagain, Radleigh Santos, Clemencia Pinilla, Marc A Giulianotti, Marcelo E Tolmasky
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Abstract

Resistance to amikacin and other major aminoglycosides is commonly due to enzymatic acetylation by the aminoglycoside 6'-N-acetyltransferase type I enzyme, of which type Ib [AAC(6')-Ib] is the most widespread among Gram-negative pathogens. Finding enzymatic inhibitors could be an effective way to overcome resistance and extend the useful life of amikacin. Small molecules possess multiple properties that make them attractive for drug development. Mixture-based combinatorial libraries and positional scanning strategy have led to the identification of a chemical scaffold, pyrrolidine pentamine, that, when substituted with the appropriate functionalities at five locations (R1-R5), inhibits AAC(6')-Ib-mediated inactivation of amikacin. Structure-activity relationship studies have shown that while truncations to the molecule result in loss of inhibitory activity, modifications of functionalities and stereochemistry have different effects on the inhibitory properties. In this study, we show that alterations at position R1 of the two most active compounds, 2700.001 and 2700.003, reduced inhibition levels, demonstrating the essential nature not only of the presence of an S-phenyl moiety at this location but also the distance to the scaffold. On the other hand, modifications on the R3, R4, and R5 positions had varied effects, demonstrating the potential for optimization. A correlation analysis between molecular docking values (ΔG) and the dose required for two-fold potentiation of the compounds described in this and the previous studies showed a significant correlation between ΔG values and inhibitory activity.

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吡咯烷五胺衍生物作为氨基糖苷 6'-N-乙酰转移酶 Ib 型抑制剂的结构-活性关系。
对阿米卡星和其他主要氨基糖苷类药物的耐药性通常是由于氨基糖苷 6'-N- 乙酰转移酶 I 型酶的乙酰化作用造成的,其中 Ib 型酶 [AAC(6')-Ib] 在革兰氏阴性病原体中最为普遍。寻找酶抑制剂可能是克服耐药性和延长阿米卡星使用寿命的有效方法。小分子具有多种特性,使其对药物开发具有吸引力。通过基于混合物的组合文库和位置扫描策略,我们发现了一种化学支架--吡咯烷五胺,当在五个位置(R1-R5)取代适当的官能团时,可抑制 AAC(6')-Ib 介导的阿米卡星失活。结构-活性关系研究表明,截短分子会导致抑制活性的丧失,而改变官能团和立体化学则会对抑制特性产生不同的影响。在本研究中,我们发现两个活性最强的化合物 2700.001 和 2700.003 的 R1 位置发生了改变,从而降低了抑制水平,这表明 S-苯基分子在该位置的存在以及与支架的距离都是至关重要的。另一方面,对 R3、R4 和 R5 位置的改性产生了不同的效果,显示了优化的潜力。分子对接值(ΔG)与本研究和之前研究中所述化合物的两倍增效所需的剂量之间的相关性分析表明,ΔG 值与抑制活性之间存在显著的相关性。
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来源期刊
Antibiotics-Basel
Antibiotics-Basel Pharmacology, Toxicology and Pharmaceutics-General Pharmacology, Toxicology and Pharmaceutics
CiteScore
7.30
自引率
14.60%
发文量
1547
审稿时长
11 weeks
期刊介绍: Antibiotics (ISSN 2079-6382) is an open access, peer reviewed journal on all aspects of antibiotics. Antibiotics is a multi-disciplinary journal encompassing the general fields of biochemistry, chemistry, genetics, microbiology and pharmacology. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the length of papers.
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