Molecular Pharmacology, RWTH Aachen University, 52074, Aachen, Germany.
Rudolf-Boehm-Institut for Pharmacology and Toxicology, University of Leipzig, 04107, Leipzig, Germany.
Neuropharmacology. 2019 Nov 1;158:107749. doi: 10.1016/j.neuropharm.2019.107749. Epub 2019 Aug 25.
The homotrimeric P2X3 receptor, one of the seven members of the ATP-gated P2X receptor family, plays a crucial role in sensory neurotransmission. P2X3 receptor antagonists have been identified as promising drugs to treat chronic cough and are suggested to offer pain relief in chronic pain such as neuropathic pain. Here, we analysed whether compounds affect P2X3 receptor activity by high-throughput screening of the Spectrum Collection of 2000 approved drugs, natural products and bioactive substances. We identified aurintricarboxylic acid (ATA) as a nanomolar-potency antagonist of P2X3 receptor-mediated responses. Two-electrode voltage clamp electrophysiology-based concentration-response analysis and selectivity profiling revealed that ATA strongly inhibits the rP2X1 and rP2X3 receptors (with IC values of 8.6 nM and 72.9 nM, respectively) and more weakly inhibits P2X2/3, P2X2, P2X4 or P2X7 receptors (IC values of 0.76 μM, 22 μM, 763 μM or 118 μM, respectively). Patch-clamp analysis of mouse DRG neurons revealed that ATA inhibited native P2X3 and P2X2/3 receptors to a similar extent than rat P2X3 and P2X2/3 receptors expressed in Xenopus oocytes. In a radioligand binding assay, up to 30 μM ATA did not compete with [H]-ATP for rP2X3 receptor binding, indicating a non-competitive mechanism of action. Molecular docking studies, site-directed mutagenesis and concentration-response analysis revealed that ATA binds to the negative allosteric site of the hP2X3 receptor. In summary, ATA as a drug-like pharmacological tool compound is a nanomolar-potency, allosteric antagonist with selectivity towards αβ-methylene-ATP-sensitive P2X1 and P2X3 receptors.
三聚体 P2X3 受体是 ATP 门控 P2X 受体家族的七个成员之一,在感觉神经传递中起着关键作用。P2X3 受体拮抗剂已被确定为治疗慢性咳嗽的有前途的药物,并被认为在慢性疼痛(如神经病理性疼痛)中提供缓解疼痛的作用。在这里,我们通过对 2000 种已批准药物、天然产物和生物活性物质的 Spectrum 化合物库进行高通量筛选,分析了化合物是否会影响 P2X3 受体的活性。我们发现金顶侧耳酸(ATA)是一种纳摩尔效力的 P2X3 受体介导反应的拮抗剂。基于双电极电压钳电生理学的浓度反应分析和选择性分析表明,ATA 强烈抑制 rP2X1 和 rP2X3 受体(IC 值分别为 8.6 nM 和 72.9 nM),并且较弱地抑制 P2X2/3、P2X2、P2X4 或 P2X7 受体(IC 值分别为 0.76 μM、22 μM、763 μM 或 118 μM)。对小鼠背根神经节神经元的膜片钳分析表明,ATA 抑制内源性 P2X3 和 P2X2/3 受体的作用与在非洲爪蟾卵母细胞中表达的大鼠 P2X3 和 P2X2/3 受体相似。在放射性配体结合测定中,高达 30 μM 的 ATA 不与 [H]-ATP 竞争 rP2X3 受体结合,表明其作用机制为非竞争性。分子对接研究、定点突变和浓度反应分析表明,ATA 结合到 hP2X3 受体的负变构位点。总之,ATA 作为一种具有类药性的药理学工具化合物,是一种对 αβ-亚甲基-ATP 敏感的 P2X1 和 P2X3 受体具有纳米摩尔效力的变构拮抗剂。