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解析 5FDQD 的作用机制及新型 FMN 核糖开关中性类似物的设计:一个经过良好调整的元动力学模拟研究。

Deciphering the mechanism of action of 5FDQD and the design of new neutral analogues for the FMN riboswitch: a well-tempered metadynamics simulation study.

机构信息

Computation and Simulation Unit (Analytical Discipline and Centralized Instrument Facility), CSIR-Central Salt and Marine Chemicals Research Institute, Bhavnagar-364002, Gujarat, India.

Academy of Scientific and Innovative Research, Ghaziabad, Uttar Pradesh-201 002, India.

出版信息

Phys Chem Chem Phys. 2022 Jan 4;24(2):817-828. doi: 10.1039/d1cp01348c.

Abstract

The FMN riboswitch is a novel drug target for the design of new antibiotics, and efforts have been made to design new charged and uncharged ligands. Uncharged ligands have shown advantages of not requiring any transporter for intracellular transport or proteins for their phosphorylation. 5FDQD (5-(3-(4-fluorophenyl)butyl)-7,8-dimethylpyrido(3,4-)quinoxaline-1,3(2,5)-dione) is a recently reported neutral ligand for the FMN riboswitch active against infection in mice. However, the crystal structure of the 5FDQD bound FMN riboswitch is not available, and the mechanism of ligand binding and triggering the function of the riboswitch is not well understood. We have examined 5FDQD for its binding affinity with the FMN riboswitch using the well-tempered metadynamics (WT-MtD) simulation technique. The crystal structure of the FMN riboswitch shows that the FMN interacts with the J4/5 region through the phosphate group with G62; however, the uncharged ligands take advantage of π-π stacking interactions with the same residue of the riboswitch observed from the WT-MtD simulation results. The simulation results show that the presence of fluorine on the phenyl ring in 5FDQD is important to enhance the binding affinity of the neutral ligands with the FMN riboswitch. The WT-MtD results showed that the 1,2-difluoro substitution on the phenyl ring in 5FDQD (FMN-difluoro2) and the 1,3 positions in the phenyl ring (FMN-difluoro1) showed weaker binding energy with the FMN riboswitch compared to 5FDQD. The substitution of another fluorine atom at the 5-position of the phenyl ring (FMN-trifluoro) showed a comparable binding affinity (∼-31.4 kcal mol) to 5FDQD. Electron-donating substitution on the phenyl ring such as the amino group also lowered the binding affinity (-28.8 kcal mol) with the riboswitch compared to 5FDQD. The computed results suggest that the position and nature of substitution in the phenyl ring of the uncharged ligands affect the overall binding and such a delicate balance is important to achieve superior binding affinity with the FMN riboswitch.

摘要

FMN 核糖开关是设计新型抗生素的新型药物靶标,人们已经努力设计新的带电和不带电配体。不带电配体具有不需要任何转运蛋白进行细胞内运输或蛋白质进行磷酸化的优势。5FDQD(5-(3-(4-氟苯基)丁基)-7,8-二甲基吡啶并[3,4-d]喹喔啉-1,3(2,5)-二酮)是最近报道的针对 FMN 核糖开关的中性配体,对 感染具有活性。然而,与 5FDQD 结合的 FMN 核糖开关的晶体结构尚不可用,并且配体结合和触发核糖开关功能的机制尚不清楚。我们使用调谐分子动力学(WT-MtD)模拟技术检查了 5FDQD 与 FMN 核糖开关的结合亲和力。FMN 核糖开关的晶体结构表明,FMN 通过与 G62 的磷酸基团与 J4/5 区域相互作用;然而,不带电配体利用与核糖开关相同残基的π-π堆积相互作用,这从 WT-MtD 模拟结果中可以观察到。模拟结果表明,5FDQD 中苯环上氟原子的存在对于增强中性配体与 FMN 核糖开关的结合亲和力很重要。WT-MtD 结果表明,与 5FDQD 相比,苯环上 1,2-二氟取代物(FMN-二氟 2)和苯环上 1,3 位(FMN-二氟 1)的 5FDQD 与 FMN 核糖开关的结合能较弱。苯环上 5 位取代另一个氟原子(FMN-三氟)与 5FDQD 具有相当的结合亲和力(∼-31.4 kcal mol)。苯环上供电子取代基,如氨基,与核糖开关的结合亲和力也降低(-28.8 kcal mol)与 5FDQD 相比。计算结果表明,不带电配体苯环上取代基的位置和性质会影响整体结合,这种微妙的平衡对于与 FMN 核糖开关实现优异的结合亲和力很重要。

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