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人P2X1和P2X3嘌呤能受体的结合热力学特性

Binding thermodynamic characterization of human P2X1 and P2X3 purinergic receptors.

作者信息

Varani Katia, Surprenant Annmarie, Vincenzi Fabrizio, Tosi Alice, Gessi Stefania, Merighi Stefania, Borea Pier Andrea

机构信息

Department of Clinical and Experimental Medicine, Pharmacology Unit, University of Ferrara, via Fossato di Mortara 17-19, 44100 Ferrara, Italy.

出版信息

Biochem Pharmacol. 2008 Mar 1;75(5):1198-208. doi: 10.1016/j.bcp.2007.10.034. Epub 2007 Nov 9.

Abstract

The present study was designed to perform binding and thermodynamic characterization of human P2X1 and P2X3 purinergic receptors expressed in HEK 293 cells. The thermodynamic parameters DeltaG degrees , DeltaH degrees and DeltaS degrees (standard free energy, enthalpy and entropy) of the binding equilibrium of well-known purinergic agonists and antagonists at P2X1 and P2X3 receptors were determined. Saturation binding experiments, performed in the temperature range 4-30 degrees C by using the high affinity purinergic agonist [3H]alphabetameATP, revealed a single class of binding sites with an affinity value in the nanomolar range in both cell lines examined. The affinity changed with the temperature whereas receptor density was essentially independent of it. van't Hoff plots of the purinergic receptors were linear in the range 4-30 degrees C for agonists and antagonists. The thermodynamic parameters of the P2X1 or P2X3 purinergic receptors were in the ranges -31 kJ mol(-1) < or =DeltaH degrees < or =-19 kJ mol(-1) and 17 J K(-1) mol(-1)< or =DeltaS degrees < or =51 J K(-1)mol(-1) or -26 kJ mol(-1)< or =DeltaH degrees < or =36 kJ mol(-1) and 59< or =DeltaS degrees < or =249 JK(-1) mol(-1), respectively. The results of these parameters showed that P2X1 receptors are not thermodynamically discriminated and that the binding of agonists and antagonists was both enthalpy and entropy-driven. P2X3 receptors were thermodynamically discriminated and purinergic agonist binding was enthalpy and entropy-driven while antagonist binding was totally entropy-driven. The analysis of such thermodynamic data makes it possible to obtain additional information on the nature of the forces driving the purinergic binding interaction. These data could be interesting in drug discovery programs aimed at development of novel and potent P2X1 and P2X3 purinergic ligands.

摘要

本研究旨在对在HEK 293细胞中表达的人P2X1和P2X3嘌呤能受体进行结合和热力学特性分析。测定了知名嘌呤能激动剂和拮抗剂在P2X1和P2X3受体上结合平衡的热力学参数ΔG°、ΔH°和ΔS°(标准自由能、焓和熵)。通过使用高亲和力嘌呤能激动剂[3H]α,β-亚甲基ATP在4至30摄氏度温度范围内进行的饱和结合实验表明,在所检测的两种细胞系中均存在一类亲和力值在纳摩尔范围内的结合位点。亲和力随温度变化,而受体密度基本与之无关。嘌呤能受体的范特霍夫图在4至30摄氏度范围内对于激动剂和拮抗剂均呈线性。P2X1或P2X3嘌呤能受体的热力学参数分别在-31 kJ·mol⁻¹≤ΔH°≤-19 kJ·mol⁻¹和17 J·K⁻¹·mol⁻¹≤ΔS°≤51 J·K⁻¹·mol⁻¹或-26 kJ·mol⁻¹≤ΔH°≤36 kJ·mol⁻¹和59≤ΔS°≤249 J·K⁻¹·mol⁻¹范围内。这些参数的结果表明,P2X1受体在热力学上没有区别,激动剂和拮抗剂的结合都是由焓和熵驱动的。P2X3受体在热力学上有区别,嘌呤能激动剂的结合是由焓和熵驱动的,而拮抗剂的结合完全是由熵驱动的。对这些热力学数据的分析使得有可能获得关于驱动嘌呤能结合相互作用的力的性质的额外信息。这些数据对于旨在开发新型强效P2X1和P2X3嘌呤能配体的药物发现计划可能是有意义的。

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