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A genetic screen pinpoints ribonucleotide reductase residues that sustain dNTP homeostasis and specifies a highly mutagenic type of dNTP imbalance

机译:遗传筛分定位维持DNTP稳态的核糖核苷酸还原酶残留物,并规定了一种高度诱变的DNTP失衡类型

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摘要

The balance and the overall concentration of intracellular deoxyribonucleoside triphosphates (dNTPs) are important determinants of faithful DNA replication. Despite the established fact that changes in dNTP pools negatively influence DNA replication fidelity, it is not clear why certain dNTP pool alterations are more mutagenic than others. As intracellular dNTP pools are mainly controlled by ribonucleotide reductase (RNR), and given the limited number of eukaryotic RNR mutations characterized so far, we screened for RNR1 mutations causing mutator phenotypes in Saccharomyces cerevisiae. We identified 24 rnr1 mutant alleles resulting in diverse mutator phenotypes linked in most cases to imbalanced dNTPs. Among the identified rnr1 alleles the strongest mutators presented a dNTP imbalance in which three out of the four dNTPs were elevated (dCTP, dTTP and dGTP), particularly if dGTP levels were highly increased. These rnr1 alleles caused growth defects/lethality in DNA replication fidelity-compromised backgrounds, and caused strong mutator phenotypes even in the presence of functional DNA polymerases and mismatch repair. In summary, this study pinpoints key residues that contribute to allosteric regulation of RNR's overall activity or substrate specificity. We propose a model that distinguishes between different dNTP pool alterations and provides a mechanistic explanation why certain dNTP imbalances are particularly detrimental.
机译:细胞内脱氧核糖核苷三磷酸(DNTPS)的平衡和整体浓度是忠实DNA复制的重要决定因素。尽管既定的事实,但DNTP池的变化对DNA复制保真度产生负面影响,但目前尚不清楚为什么某些DNTP池改变比其他DNTP池更改更加致突变。由于细胞内DNTP池主要由核糖核苷酸还原酶(RNR)控制,并且给出了到目前为止表征的有限数量的真核RNR突变,我们筛选了导致酿酒酵母中腐败型表型的RNR1突变。我们鉴定了24个RNR1突变等位基因,导致多种突变表型在大多数情况下联系在大多数情况下,以不平衡DNTPS。在鉴定的RNR1等位基因中,最强的突变体呈现DNTP不平衡,其中四种DNTP中的三个升高(DCTP,DTTP和DGTP),特别是如果DGTP水平高度增加。这些RNR1等位基因在DNA复制浮动 - 受损的背景中引起生长缺陷/致死性,即使在功能性DNA聚合酶的存在和错配修复情况下也引起了强烈的突变表型。总之,该研究针对RNR整体活性或底物特异性的构建调节有助于构建的关键残留物。我们提出了一种在不同的DNTP池改变之间区分的模型,并提供机械解释为什么某些DNTP失衡特别有害。

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  • 来源
    《Nucleic Acids Research》 |2019年第1期|共16页
  • 作者单位

    German Canc Res Ctr DNA Repair Mech &

    Canc D-69120 Heidelberg Germany;

    Umea Univ Dept Med Biochem &

    Biophys SE-90187 Umea Sweden;

    German Canc Res Ctr DNA Repair Mech &

    Canc D-69120 Heidelberg Germany;

    German Canc Res Ctr DNA Repair Mech &

    Canc D-69120 Heidelberg Germany;

    German Canc Res Ctr DNA Repair Mech &

    Canc D-69120 Heidelberg Germany;

    German Canc Res Ctr DNA Repair Mech &

    Canc D-69120 Heidelberg Germany;

    HITS Mol &

    Cellular Modeling Grp D-69118 Heidelberg Germany;

    HITS Mol &

    Cellular Modeling Grp D-69118 Heidelberg Germany;

    Umea Univ Dept Med Biochem &

    Biophys SE-90187 Umea Sweden;

    German Canc Res Ctr DNA Repair Mech &

    Canc D-69120 Heidelberg Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

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