分子对接研究、ADMET预测和新型聚乙二醇核苷作为B1类金属β-内酰胺酶抗菌药物的合成。

In Silico Pharmacology Pub Date : 2021-04-16 eCollection Date: 2021-01-01 DOI:10.1007/s40203-021-00092-z
Jesica A Mendoza, Richard Y Pineda, Michelle Nguyen, Marisol Tellez, Ahmed M Awad
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引用次数: 3

摘要

B1类金属β-内酰胺酶(MBLs)是在耐药细菌中发现的金属酶。该酶需要锌离子和保守的氨基酸配位对内酰胺环进行亲核攻击,以诱导β-内酰胺和一些碳青霉烯类抗生素的水解和失活。到目前为止,还没有临床相关的B1类MBL抑制剂,但l -卡托普利对最难抑制的MBL NDM-1有显著效果。在此,我们报道了用聚乙二醇氨基(PEGA)修饰的新型核苷类似物的合成和评价,这些核苷类似物是B1类mbl的潜在抑制剂。利用内坐标力学(ICM)算法对筛选到21种可能的pega核苷的B1亚类酶复合物模型进行分子动力学模拟。类似物A, 3'-脱氧-3'-(2-(2-羟基乙氧基)乙胺)-β- d -木呋喃嘧啶,利用尿苷核碱基中关键的β-内酰胺模拟点,对B1类MBL活性位点的保守锌离子具有较高的特异性。PEGA片段显示出与锌的螯合活性,破坏了金属结合氨基酸的几何结构。在所有测试的B1亚类蛋白中,与青霉素或l -卡托普利相比,类似物A具有最有效的抑制作用。化学合成是通过与PEGA缩合相应的酮核糖核苷,然后对形成的亚胺进行对映选择性还原,以产生具有所需构型的氨基衍生物。药代动力学和药效学筛选显示,pega -嘧啶核苷无毒,也不违反利平斯基规则。这些结果表明,类似物A可能是一种潜在的金属酶抑制剂,可以抑制广泛存在的抗生素耐药菌,值得进一步的体外和体内研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Molecular docking studies, in-silico ADMET predictions and synthesis of novel PEGA-nucleosides as antimicrobial agents targeting class B1 metallo-β-lactamases.

Class B1 metallo-β-lactamases (MBLs) are metalloenzymes found in drug resistant bacteria. The enzyme requires zinc ions, along with conserved amino acid coordination for nucleophilic attack of the lactam ring to induce hydrolysis and inactivation of β-lactam and some carbapenem antibiotics. To this date there are no clinically relevant class B1 MBL inhibitors, however L-captopril has shown significant results against NDM-1, the most difficult MBL to inhibit. Herein, we report the synthesis and evaluation of novel nucleoside analogues modified with polyethylene glycolamino (PEGA) as potential inhibitors for class B1 MBLs. Molecular dynamics simulations, using internal coordinate mechanics (ICM) algorithm, were performed on subclass B1 enzyme complex models screened with twenty-one possible PEGA-nucleosides. Analogue A, 3'-deoxy-3'-(2-(2-hydroxyethoxy)ethanamino)-β-D-xylofuranosyluracil showed superior binding, with high specificity to the conserved zinc ions in the class B1 MBL active site by utilizing key β-lactam mimic points in the uridine nucleobase. The PEGA moiety showed chelating activity with zinc and disrupted the metal-binding amino acid geometry. In all subclass B1 proteins tested, analogue A had the most effective inhibition when compared to penicillin or L-captopril. Chemical synthesis was performed by condensation of the corresponding keto ribonucleoside with PEGA, followed by enantioselective reduction of the formed imine to produce the amino derivative with desired configuration. Pharmacokinetic and pharmacodynamic screenings revealed that PEGA-pyrimidine nucleosides are not toxic, nor violate Lipinski's rules. These results suggested that analogue A can be proposed as a potential metalloenzyme inhibitor against the widespread antibiotic resistant bacteria and is worth further in vitro and in vivo investigations.

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