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首页> 外文期刊>Neuropsychopharmacology >Histone H3 Phosphorylation is Under the Opposite Tonic Control of Dopamine D2 and Adenosine A2A Receptors in Striatopallidal Neurons
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Histone H3 Phosphorylation is Under the Opposite Tonic Control of Dopamine D2 and Adenosine A2A Receptors in Striatopallidal Neurons

机译:组蛋白H3磷酸化处于纹状体外层神经元中多巴胺D2和腺苷A2A受体的相反补品控制下

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The antipsychotic agent haloperidol regulates gene transcription in striatal medium spiny neurons (MSNs) by blocking dopamine D2 receptors (D2Rs). We examined the mechanisms by which haloperidol increases the phosphorylation of histone H3, a key step in the nucleosomal response. Using bacterial artificial chromosome (BAC)-transgenic mice that express EGFP under the control of the promoter of the dopamine D1 receptor (D1R) or the D2R, we found that haloperidol induced a rapid and sustained increase in the phosphorylation of histone H3 in the striatopallidal MSNs of the dorsal striatum, with no change in its acetylation. This effect was mimicked by raclopride, a selective D2R antagonist, and prevented by the blockade of adenosine A2A receptors (A2ARs), or genetic attenuation of the A2AR-associated G protein, Gαolf. Mutation of the cAMP-dependent phosphorylation site (Thr34) of the 32-kDa dopamine and cAMP-regulated phosphoprotein (DARPP-32) decreased the haloperidol-induced H3 phosphorylation, supporting the role of cAMP in H3 phosphorylation. Haloperidol also induced extracellular signal-regulated kinase (ERK) phosphorylation in striatopallidal MSNs, but this effect was not implicated in H3 phosphorylation. The levels of mitogen- and stress-activated kinase 1 (MSK1), which has been reported to mediate ERK-induced H3 phosphorylation, were lower in striatopallidal than in striatonigral MSNs. Moreover, haloperidol-induced H3 phosphorylation was unaltered in MSK1-knockout mice. These data indicate that, in striatopallidal MSNs, H3 phosphorylation is controlled by the opposing actions of D2Rs and A2ARs. Thus, blockade of D2Rs promotes histone H3 phosphorylation through the A2AR-mediated activation of Gαolf and inhibition of protein phosphatase-1 (PP-1) through the PKA-dependent phosphorylation of DARPP-32.
机译:抗精神病药氟哌啶醇通过阻断多巴胺D2受体(D2Rs)调节纹状体中棘神经元(MSNs)中的基因转录。我们检查了氟哌啶醇增加组蛋白H3磷酸化的机制,这是核小体反应的关键步骤。使用在多巴胺D1受体(D1R)或D2R启动子控制下表达EGFP的细菌人工染色体(BAC)转基因小鼠,我们发现氟哌啶醇在纹状体外脂中诱导组蛋白H3磷酸化的持续快速增加背侧纹状体的MSN,其乙酰化没有变化。选择性的D2R拮抗剂雷洛必利可以模仿这种作用,而腺苷A2A受体(A2ARs)的阻断或与A2AR相关的G蛋白Gαolf的遗传衰减则可​​以阻止这种作用。 32 kDa多巴胺的cAMP依赖性磷酸化位点(Thr34)和cAMP调节的磷蛋白(DARPP-32)的突变降低了氟哌啶醇诱导的H3磷酸化,支持cAMP在H3磷酸化中的作用。氟哌啶醇还可以诱导纹状体外最高层MSN中的细胞外信号调节激酶(ERK)磷酸化,但是这种作用与H3磷酸化无关。据报道介导ERK诱导的H3磷酸化的丝裂原活化和应激活化激酶1(MSK1)的水平在纹状体中比在纹状体MSN中低。此外,氟哌啶醇诱导的H3磷酸化在MSK1基因敲除小鼠中未改变。这些数据表明,在纹状体外线MSN中,H3磷酸化受D2R和A2AR的相反作用控制。因此,D2Rs的阻断通过A2AR介导的Gαolf的活化促进组蛋白H3磷酸化,并通过DARPP-32的PKA依赖性磷酸化抑制蛋白磷酸酶-1(PP-1)。

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