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区分 NDRIs 和 sNRIs 的理化特性对治疗 ADHD 具有临床重要意义。

Differentiating physicochemical properties between NDRIs and sNRIs clinically important for the treatment of ADHD.

机构信息

Innovative Drug Research and Bioinformatics Group, College of Pharmaceutical Sciences, Zhejiang University, Hangzhou 310058, China; College of Chemistry and Pharmaceutical Engineering, Huanghuai University, Zhumadian 463000, China; School of Pharmaceutical Sciences and Collaborative Innovation Center for Brain Science, Chongqing University, Chongqing 401331, China.

Innovative Drug Research and Bioinformatics Group, College of Pharmaceutical Sciences, Zhejiang University, Hangzhou 310058, China; School of Pharmaceutical Sciences and Collaborative Innovation Center for Brain Science, Chongqing University, Chongqing 401331, China.

出版信息

Biochim Biophys Acta Gen Subj. 2017 Nov;1861(11 Pt A):2766-2777. doi: 10.1016/j.bbagen.2017.07.022. Epub 2017 Jul 27.

Abstract

BACKGROUND

Drugs available for treating attention-deficit hyperactivity disorder (ADHD) are mainly selective norepinephrine (sNRIs) and dual norepinephrine-dopamine (NDRIs) reuptake inhibitors. The major problem of sNRIs lines in their delayed onset of action and partial- or non-responses, which makes NDRIs distinguished in drug efficacy. Understanding of the differential binding modes of these 2 types of drugs to their corresponding targets can give great insights into the discovery of privileged drug-like scaffolds with improved efficacy. So far, no such study has been carried out.

METHODS

A combinatorial computational strategy, integrating homology modeling, molecular docking, molecular dynamics (MD) and binding free energy calculation, was employed to analyze the binding modes of 8 clinically important ADHD drugs in their targets.

RESULTS

Binding modes of 2 types of ADHD drugs (sNRIs and NDRIs) in their targets was identified for the first time by MD simulation, and 15 hot spot residues were discovered as crucial for NDRIs' binding in hNET and hDAT. Comparing to sNRIs, a clear reduction in the hydrophobic property of NDRIs' one functional group was observed, and the depth of drugs' aromatic ring stretched into the pocket of both targets was further identified as key contributors to drugs' selectivity.

CONCLUSIONS

The hydrophobic property of NDRI ADHD drugs' one functional group contributes to their selectivity when bind hNET and hDAT.

GENERAL SIGNIFICANCE

These results provide insights into NDRI ADHD drugs' binding mechanisms, which could be utilized as structural blueprints for assessing and discovering more efficacious drugs for ADHD therapy.

摘要

背景

治疗注意缺陷多动障碍(ADHD)的药物主要是选择性去甲肾上腺素(sNRIs)和双去甲肾上腺素-多巴胺(NDRIs)再摄取抑制剂。sNRIs 类药物的主要问题在于其起效时间延迟,部分或无反应,这使得 NDRIs 在药物疗效上有所区别。了解这两种药物与相应靶标的不同结合模式,可以深入了解具有改善疗效的特权类药物样支架的发现。到目前为止,还没有进行过这样的研究。

方法

采用组合计算策略,整合同源建模、分子对接、分子动力学(MD)和结合自由能计算,分析 8 种临床重要 ADHD 药物在其靶标中的结合模式。

结果

首次通过 MD 模拟确定了 2 类 ADHD 药物(sNRIs 和 NDRIs)在其靶标中的结合模式,并发现了 15 个热点残基,这些残基对 hNET 和 hDAT 中 NDRIs 的结合至关重要。与 sNRIs 相比,NDRIs 的一个功能基团的疏水性明显降低,药物的芳香环深入到两个靶标的口袋的深度被进一步确定为药物选择性的关键贡献者。

结论

NDRI ADHD 药物的一个功能基团的疏水性有助于其与 hNET 和 hDAT 结合的选择性。

一般意义

这些结果深入了解了 NDRI ADHD 药物的结合机制,可作为评估和发现更有效的 ADHD 治疗药物的结构蓝图。

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