1H-咪唑并[4,5-c]喹啉-4-胺 A3 腺苷受体正异位调节剂在螺旋 8 和跨膜结构域 1 和 7 远端的螺旋外结合位点。

IF 3.2 3区 医学 Q2 PHARMACOLOGY & PHARMACY Molecular Pharmacology Pub Date : 2024-02-15 DOI:10.1124/molpharm.123.000784
Courtney L Fisher, Matteo Pavan, Veronica Salmaso, Robert F Keyes, Tina C Wan, Balaram Pradhan, Zhan-Guo Gao, Brian C Smith, Kenneth A Jacobson, John A Auchampach
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引用次数: 0

摘要

本研究描述了 A3 腺苷受体(A3AR)正异构调节剂 LUF6000(2-环己基-1H-咪唑并[4,5-c]喹啉-4-(3,4-二氯苯基)胺)推定结合位点的定位和计算预测。这项研究揭示了一个面向脂质的螺旋外结合口袋,该口袋与正交结合位点不同,它包括跨膜结构域(TMD)1、TMD7 和螺旋(H)8。根据该模型,近乎平面的 1H-咪唑并[4,5-c]喹啉胺环系统平行于跨膜区段,插入到一个芳香笼中,该芳香笼是通过与 TMD 7 中的 Y2847.55 和 H8 中的 Y2938.54 的侧链的π-π堆叠相互作用以及 Y2847.55 与外环胺之间的π-NH 键形成的。2-Cyclohexyl 基团 "向上 "位于由 TMD 1 和 7 中的残基形成的小疏水亚口袋中,而 3,4-二氯苯基基团则向脂质界面延伸。杂环的 N-1 氨基与 G291.49 的羰基之间的 H 键进一步稳定了相互作用。MD 模拟预测了两个可转移的中间体,一个类似于分子对接确定的姿势,另一个涉及与 Y2938.54 的瞬时相互作用;在模拟中,每个中间体都汇聚成最终的结合态。用缺乏氢键捐赠能力的杂原子替换已确定的外环胺或内环胺的结构-活性关系与假设的姿势一致。因此,我们表征了 1H-咪唑并[4,5-c]喹啉-4-胺的异构口袋,该口袋与正交方法产生的数据一致,这将有助于合理设计改进的 A3AR PAMs。意义声明 正交 A3AR 激动剂在治疗炎症、肝病和癌症的临床试验中取得了进展。因此,选择性受体激活的临床吸引力可扩展到异位增强剂,它将在受影响的组织中诱导特定部位和时间的激活。通过确定已知正性异构调节剂的异构位点,基于结构的药物发现模式可以增强 1H-咪唑并[4,5-c]喹啉-4-胺类 A3AR 正性异构调节剂的药理特性。
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Extrahelical Binding Site for a 1H-Imidazo[4,5-c]quinolin-4-amine A3 Adenosine Receptor Positive Allosteric Modulator on Helix 8 and Distal Portions of Transmembrane Domains 1 and 7.

This study describes the localization and computational prediction of a binding site for the A3 adenosine receptor (A3AR) positive allosteric modulator 2-cyclohexyl-1H-imidazo[4,5-c]quinolin-4-(3,4-dichlorophenyl)amine (LUF6000). The work reveals an extrahelical lipid-facing binding pocket disparate from the orthosteric binding site that encompasses transmembrane domain (TMD) 1, TMD7, and Helix (H) 8, which was predicted by molecular modeling and validated by mutagenesis. According to the model, the nearly planar 1H-imidazo[4,5-c]quinolinamine ring system lies parallel to the transmembrane segments, inserted into an aromatic cage formed by π-π stacking interactions with the side chains of Y2847.55 in TMD7 and Y2938.54 in H8 and by π-NH bonding between Y2847.55 and the exocyclic amine. The 2-cyclohexyl group is positioned "upward" within a small hydrophobic subpocket created by residues in TMDs 1 and 7, while the 3,4-dichlorophenyl group extends toward the lipid interface. An H-bond between the N-1 amine of the heterocycle and the carbonyl of G291.49 further stabilizes the interaction. Molecular dynamics simulations predicted two metastable intermediates, one resembling a pose determined by molecular docking and a second involving transient interactions with Y2938.54; in simulations, each of these intermediates converges into the final bound state. Structure-activity-relationships for replacement of either of the identified exocyclic or endocyclic amines with heteroatoms lacking H-bond donating ability were consistent with the hypothetical pose. Thus, we characterized an allosteric pocket for 1H-imidazo[4,5-c]quinolin-4-amines that is consistent with data generated by orthogonal methods, which will aid in the rational design of improved A3AR positive allosteric modulators. SIGNIFICANCE STATEMENT: Orthosteric A3AR agonists have advanced in clinical trials for inflammatory conditions, liver diseases, and cancer. Thus, the clinical appeal of selective receptor activation could extend to allosteric enhancers, which would induce site- and time-specific activation in the affected tissue. By identifying the allosteric site for known positive allosteric modulators, structure-based drug discovery modalities can be enabled to enhance the pharmacological properties of the 1H-imidazo[4,5-c]quinolin-4-amine class of A3AR positive allosteric modulators.

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来源期刊
Molecular Pharmacology
Molecular Pharmacology 医学-药学
CiteScore
7.20
自引率
2.80%
发文量
50
审稿时长
3-6 weeks
期刊介绍: Molecular Pharmacology publishes findings derived from the application of innovative structural biology, biochemistry, biophysics, physiology, genetics, and molecular biology to basic pharmacological problems that provide mechanistic insights that are broadly important for the fields of pharmacology and toxicology. Relevant topics include: Molecular Signaling / Mechanism of Drug Action Chemical Biology / Drug Discovery Structure of Drug-Receptor Complex Systems Analysis of Drug Action Drug Transport / Metabolism
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