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首页> 外文期刊>Biochemical Pharmacology >Structure activity and molecular modeling analyses of ribose- and base-modified uridine 5'-triphosphate analogues at the human P2Y2 and P2Y4 receptors.
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Structure activity and molecular modeling analyses of ribose- and base-modified uridine 5'-triphosphate analogues at the human P2Y2 and P2Y4 receptors.

机译:核糖和碱基修饰的尿苷5'-三磷酸酯类似物在人P2Y2和P2Y4受体上的结构活性和分子建模分析。

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With the long-term goal of developing receptor subtype-selective high affinity agonists for the uracil nucleotide-activated P2Y receptors we have carried out a series of structure activity and molecular modeling studies of the human P2Y2 and P2Y4 receptors. UTP analogues with substitutions in the 2'-position of the ribose moiety retained capacity to activate both P2Y2 and P2Y4 receptors. Certain of these analogues were equieffective for activation of both receptors whereas 2'-amino-2'-deoxy-UTP exhibited higher potency for the P2Y2 receptor and 2'-azido-UTP exhibited higher potency for the P2Y4 receptor. 4-Thio substitution of the uracil base resulted in a UTP analogue with increased potency relative to UTP for activation of both the P2Y2 and P2Y4 receptors. In contrast, 2-thio substitution and halo- or alkyl substitution in the 5-position of the uracil base resulted in molecules that were 3-30-fold more potent at the P2Y2 receptor than P2Y4 receptor. 6-Aza-UTP was a P2Y2 receptor agonist that exhibited no activity at the P2Y4 receptor. Stereoisomers of UTPalphaS and 2'-deoxy-UTPalphaS were more potent at the P2Y2 than P2Y4 receptor, and the R-configuration was favored at both receptors. Molecular docking studies revealed that the binding mode of UTP is similar for both the P2Y2 and P2Y4 receptor binding pockets with the most prominent dissimilarities of the two receptors located in the second transmembrane domain (V90 in the P2Y2 receptor and I92 in the P2Y4 receptor) and the second extracellular loop (T182 in the P2Y2 receptor and L184 in the P2Y4 receptor). In summary, this work reveals substitutions in UTP that differentially affect agonist activity at P2Y2 versus P2Y4 receptors and in combination with molecular modeling studies should lead to chemical synthesis of new receptor subtype-selective drugs.
机译:为开发针对尿嘧啶核苷酸激活的P2Y受体的受体亚型选择性高亲和力激动剂的长期目标,我们对人类P2Y2和P2Y4受体进行了一系列结构活性和分子建模研究。在核糖部分2'-位具有取代基的UTP类似物保留了激活P2Y2和P2Y4受体的能力。这些类似物中的某些对两个受体的激活均等效,而2'-氨基-2'-脱氧-UTP对P2Y2受体表现出更高的效力,而2'-叠氮基-UTP对P2Y4受体表现出更高的效力。尿嘧啶碱基的4-硫代取代导致UTP类似物具有相对于UTP增加的激活P2Y2和P2Y4受体的效力。相反,在尿嘧啶碱基的5位上的2-硫取代和卤代或烷基取代产生的分子在P2Y2受体上的效力比P2Y4受体高3-30倍。 6-Aza-UTP是一种P2Y2受体激动剂,对P2Y4受体无活性。 UTPalphaS和2'-脱氧-UTPalphaS的立体异构体在P2Y2上比在P2Y4受体上更有效,并且R-构型在两个受体上都更受青睐。分子对接研究表明,P2Y2和P2Y4受体结合口袋的UTP结合模式相似,而位于第二个跨膜结构域的两个受体(P2Y2受体中的V90和P2Y4受体中的I92)最显着不同。第二个细胞外环(P2Y2受体中的T182和P2Y4受体中的L184)。总而言之,这项工作揭示了UTP中的替代物,该替代物差异性地影响P2Y2与P2Y4受体的激动剂活性,并且与分子模型研究相结合应导致新的受体亚型选择性药物的化学合成。

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