Rivière Gwladys, Oueslati Saoussen, Gayral Maud, Créchet Jean-Bernard, Nhiri Naïma, Jacquet Eric, Cintrat Jean-Christophe, Giraud François, van Heijenoort Carine, Lescop Ewen, Pethe Stéphanie, Iorga Bogdan I, Naas Thierry, Guittet Eric, Morellet Nelly
Institut de Chimie des Substances Naturelles, CNRS UPR 2301, Université Paris-Sud, Université Paris-Saclay, LabEx LERMIT, 1 avenue de la Terrasse, 91190 Gif-sur-Yvette, France.
EA7361 "Structure, Dynamic, Function and Expression of Broad Spectrum β-Lactamases", Faculty of Medicine, Université Paris-Sud, Université Paris-Saclay, LabEx LERMIT, Le Kremlin-Bicêtre, France.
ACS Omega. 2020 Apr 28;5(18):10466-10480. doi: 10.1021/acsomega.0c00590. eCollection 2020 May 12.
New Delhi metallo-β-lactamase-1 (NDM-1) has recently emerged as a global threat because of its ability to confer resistance to all common β-lactam antibiotics. Understanding the molecular basis of β-lactam hydrolysis by NDM is crucial for designing NDM inhibitors or β-lactams resistant to their hydrolysis. In this study, for the first time, NMR was used to study the influence of Zn(II) ions on the dynamic behavior of NDM-1. Our results highlighted that the binding of Zn(II) in the NDM-1 active site induced several structural and dynamic changes on active site loop 2 (ASL2) and L9 loops and on helix α2. We subsequently studied the interaction of several flavonols: morin, quercetin, and myricetin were identified as natural and specific inhibitors of NDM-1. Quercetin conjugates were also synthesized in an attempt to increase the solubility and bioavailability. Our NMR investigations on NDM-1/flavonol interactions highlighted that both Zn(II) ions and the residues of the NDM-1 ASL1, ASL2, and ASL4 loops are involved in the binding of flavonols. This is the first NMR interaction study of NDM-1/inhibitors, and the models generated using HADDOCK will be useful for the rational design of more active inhibitors, directed against NDM-1.
新德里金属β-内酰胺酶-1(NDM-1)最近已成为一种全球威胁,因为它能够使细菌对所有常见的β-内酰胺抗生素产生耐药性。了解NDM对β-内酰胺水解的分子基础对于设计NDM抑制剂或对其水解具有抗性的β-内酰胺至关重要。在本研究中,首次使用核磁共振(NMR)来研究锌离子(Zn(II))对NDM-1动态行为的影响。我们的结果突出表明,Zn(II)在NDM-1活性位点的结合诱导了活性位点环2(ASL2)、L9环以及α2螺旋上的若干结构和动态变化。随后,我们研究了几种黄酮醇的相互作用:桑色素、槲皮素和杨梅素被确定为NDM-1的天然特异性抑制剂。还合成了槲皮素缀合物,以试图提高其溶解度和生物利用度。我们对NDM-1/黄酮醇相互作用的NMR研究突出表明,Zn(II)离子以及NDM-1的ASL1、ASL2和ASL4环的残基都参与了黄酮醇的结合。这是首次对NDM-1/抑制剂进行的NMR相互作用研究,并且使用HADDOCK生成的模型将有助于合理设计针对NDM-1的更具活性的抑制剂。