Probing the interaction between the metallo-β-lactamase SMB-1 and ampicillin by multispectral approaches combined with molecular dynamics

IF 2.3 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Jiachen Li, Xiaoting Dong, Yeli Zhang
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引用次数: 0

Abstract

Metallo-β-lactamases (MβLs) hydrolyze and inactivate β-lactam antibiotics, are a pivotal mechanism conferring resistance against bacterial infections. SMB-1, a novel B3 subclass of MβLs from Serratia marcescens could deactivate almost all β-lactam antibiotics including ampicillin (AMP), which has posed a serious threat to public health. To illuminate the mechanism of recognition and interaction between SMB-1 and AMP, various fluorescence spectroscopy techniques and molecular dynamics simulation were employed. The results of quenching spectroscopy unraveled that AMP could make SMB-1 fluorescence quenching that mechanism was the static quenching; the synchronous and three-dimensional fluorescence spectra validated that the microenvironment and conformation of SMB-1 were altered after interaction with AMP. The molecular dynamics results demonstrated that the whole AMP enters the binding pocket of SMB-1, even though with a relatively bulky R1 side chain. Loop1 and loop2 in SMB-1 undergo significant fluctuations, and α2 (71–73) and local α5 (186–188) were turned into random coils, promoting zinc ion exposure consistent with circular dichroism spectroscopy results. The binding between them was driven by a combination of enthalpy and entropy changes, which was dominated by electrostatic force in agreement with the fluorescence observations. The present study brings structural insights and solid foundations for the design of new substrates for β-lactamases and the development of effective antibiotics that are resistant to superbugs.

通过多光谱方法结合分子动力学探究金属-β-内酰胺酶 SMB-1 与氨苄西林之间的相互作用。
金属β-内酰胺酶(MβLs)可水解β-内酰胺类抗生素并使其失活,是细菌感染产生耐药性的关键机制。SMB-1 是一种新型的 B3 亚类 MβLs,可使包括氨苄西林(AMP)在内的几乎所有 β-内酰胺类抗生素失活,对公共卫生构成严重威胁。为了阐明 SMB-1 与 AMP 之间的识别和相互作用机制,研究人员采用了多种荧光光谱技术和分子动力学模拟。淬灭光谱结果揭示了AMP可使SMB-1荧光淬灭,其机制为静态淬灭;同步和三维荧光光谱验证了SMB-1与AMP相互作用后的微环境和构象发生了改变。分子动力学研究结果表明,尽管 AMP 的 R1 侧链相对笨重,但整个 AMP 都进入了 SMB-1 的结合口袋。SMB-1 中的 Loop1 和 loop2 发生了明显的波动,α2(71-73)和局部的 α5(186-188)变成了随机线圈,促进了锌离子的暴露,这与圆二色性光谱的结果一致。它们之间的结合是由焓变和熵变共同驱动的,其中静电力占主导地位,这与荧光观测结果一致。本研究为设计 β-内酰胺酶的新底物和开发对超级细菌具有抗性的有效抗生素提供了结构上的启示和坚实的基础。
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来源期刊
Journal of Molecular Recognition
Journal of Molecular Recognition 生物-生化与分子生物学
CiteScore
4.60
自引率
3.70%
发文量
68
审稿时长
2.7 months
期刊介绍: Journal of Molecular Recognition (JMR) publishes original research papers and reviews describing substantial advances in our understanding of molecular recognition phenomena in life sciences, covering all aspects from biochemistry, molecular biology, medicine, and biophysics. The research may employ experimental, theoretical and/or computational approaches. The focus of the journal is on recognition phenomena involving biomolecules and their biological / biochemical partners rather than on the recognition of metal ions or inorganic compounds. Molecular recognition involves non-covalent specific interactions between two or more biological molecules, molecular aggregates, cellular modules or organelles, as exemplified by receptor-ligand, antigen-antibody, nucleic acid-protein, sugar-lectin, to mention just a few of the possible interactions. The journal invites manuscripts that aim to achieve a complete description of molecular recognition mechanisms between well-characterized biomolecules in terms of structure, dynamics and biological activity. Such studies may help the future development of new drugs and vaccines, although the experimental testing of new drugs and vaccines falls outside the scope of the journal. Manuscripts that describe the application of standard approaches and techniques to design or model new molecular entities or to describe interactions between biomolecules, but do not provide new insights into molecular recognition processes will not be considered. Similarly, manuscripts involving biomolecules uncharacterized at the sequence level (e.g. calf thymus DNA) will not be considered.
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