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嘌呤中间体5-氨基-4-咪唑甲酰胺核糖核苷酸(AICAR)在酵母中的生理和毒性作用。

Physiological and toxic effects of purine intermediate 5-amino-4-imidazolecarboxamide ribonucleotide (AICAR) in yeast.

作者信息

Hürlimann Hans C, Laloo Benoît, Simon-Kayser Barbara, Saint-Marc Christelle, Coulpier Fanny, Lemoine Sophie, Daignan-Fornier Bertrand, Pinson Benoît

机构信息

Institut de Biochimie et Génétique Cellulaires (IBGC) Unité Mixte de Recherche (UMR) 5095, Université Ségalen, Bordeaux F-33077, France; IBGC UMR 5095, CNRS, Bordeaux F-33077, France.

Institut de Biologie de l'ENS, IBENS, École normale supérieure (ENS), Paris F-75005, France; INSERM, U1024, Paris F-75005, France; UMR 8197, CNRS, Paris F-75005, France.

出版信息

J Biol Chem. 2011 Sep 2;286(35):30994-31002. doi: 10.1074/jbc.M111.262659. Epub 2011 Jul 12.

Abstract

5-Amino-4-imidazolecarboxamide ribonucleotide 5'-phosphate (AICAR) is a monophosphate metabolic intermediate of the de novo purine synthesis pathway that has highly promising metabolic and antiproliferative properties. Yeast mutants unable to metabolize AICAR are auxotroph for histidine. A screening for suppressors of this phenotype identified recessive and dominant mutants that result in lowering the intracellular AICAR concentration. The recessive mutants affect the adenosine kinase, which is shown here to catalyze the phosphorylation of AICAR riboside in yeast. The dominant mutants strongly enhance the capacity of the alkaline phosphatase Pho13 to dephosphorylate 5-amino-4-imidazole N-succinocarboxamide ribonucleotide 5'-phosphate(SAICAR) into its non-toxic riboside form. By combining these mutants with transcriptomics and metabolomics analyses, we establish that in yeast responses to AICAR and SAICAR are clearly linked to the concentration of the monophosphate forms, whereas the derived nucleoside moieties have no effect even at high intracellular concentration. Finally, we show that AICAR/SAICAR concentrations vary under physiological conditions known to modulate transcription of the purine and phosphate pathway genes.

摘要

5-氨基-4-咪唑甲酰胺核糖核苷酸5'-磷酸(AICAR)是嘌呤从头合成途径的一种单磷酸代谢中间体,具有极具前景的代谢和抗增殖特性。无法代谢AICAR的酵母突变体对组氨酸呈营养缺陷型。对这种表型的抑制子进行筛选,鉴定出隐性和显性突变体,这些突变体导致细胞内AICAR浓度降低。隐性突变体影响腺苷激酶,本文证明该酶在酵母中催化AICAR核苷的磷酸化。显性突变体强烈增强碱性磷酸酶Pho13将5-氨基-4-咪唑N-琥珀酰胺羧酰胺核糖核苷酸5'-磷酸(SAICAR)去磷酸化为无毒核苷形式的能力。通过将这些突变体与转录组学和代谢组学分析相结合,我们确定在酵母中对AICAR和SAICAR的反应与单磷酸形式的浓度明显相关,而即使在细胞内高浓度下,衍生的核苷部分也没有影响。最后,我们表明在已知可调节嘌呤和磷酸途径基因转录的生理条件下,AICAR/SAICAR浓度会发生变化。

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