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酵母GMP激酶突变体通过模拟次黄嘌呤-鸟嘌呤磷酸核糖基转移酶缺陷来组成型表达AMP生物合成基因。

Yeast GMP kinase mutants constitutively express AMP biosynthesis genes by phenocopying a hypoxanthine-guanine phosphoribosyltransferase defect.

作者信息

Lecoq K, Konrad M, Daignan-Fornier B

机构信息

Institut de Biochimie et Génétique Cellulaires, CNRS UMR 5095, 33077 Bordeaux Cedex, France.

出版信息

Genetics. 2000 Nov;156(3):953-61. doi: 10.1093/genetics/156.3.953.

Abstract

We have characterized a new locus, BRA3, leading to deregulation of the yeast purine synthesis genes (ADE genes). We show that bra3 mutations are alleles of the GUK1 gene, which encodes GMP kinase. The bra3 mutants have a low GMP kinase activity, excrete purines in the medium, and show vegetative growth defects and resistance to purine base analogs. The bra3 locus also corresponds to the previously described pur5 locus. Several lines of evidence indicate that the decrease in GMP kinase activity in the bra3 mutants results in GMP accumulation and feedback inhibition of hypoxanthine-guanine phosphoribosyltransferase (HGPRT), encoded by the HPT1 gene. First, guk1 and hpt1 mutants share several phenotypes, such as adenine derepression, purine excretion, and 8-azaguanine resistance. Second, overexpression of HPT1 allows suppression of the deregulated phenotype of the guk1 mutants. Third, we show that purified yeast HGPRT is inhibited by GMP in vitro. Finally, incorporation of hypoxanthine into nucleotides is similarly diminished in hpt1 and guk1 mutants in vivo. We conclude that the decrease in GMP kinase activity in the guk1 mutants results in deregulation of the ADE gene expression by phenocopying a defect in HGPRT. The possible occurrence of a similar phenomenon in humans is discussed.

摘要

我们鉴定了一个新的基因座BRA3,它导致酵母嘌呤合成基因(ADE基因)的表达失调。我们发现bra3突变是GUK1基因的等位基因,该基因编码GMP激酶。bra3突变体的GMP激酶活性较低,在培养基中排泄嘌呤,并表现出营养生长缺陷和对嘌呤碱基类似物的抗性。bra3基因座也对应于先前描述的pur5基因座。几条证据表明,bra3突变体中GMP激酶活性的降低导致GMP积累,并反馈抑制由HPT1基因编码的次黄嘌呤 - 鸟嘌呤磷酸核糖转移酶(HGPRT)。首先,guk1和hpt1突变体具有几种共同的表型,如腺嘌呤去阻遏、嘌呤排泄和对8 - 氮杂鸟嘌呤的抗性。其次,HPT1的过表达可以抑制guk1突变体的失调表型。第三,我们表明纯化的酵母HGPRT在体外被GMP抑制。最后,在体内hpt1和guk1突变体中次黄嘌呤掺入核苷酸的情况同样减少。我们得出结论,guk1突变体中GMP激酶活性的降低通过模拟HGPRT缺陷导致ADE基因表达失调。文中还讨论了人类中可能发生类似现象的情况。

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