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首页> 外文期刊>FEMS Yeast Research >The genome sequence of the popular hexose-transport-deficient Saccharomyces cerevisiae strain EBY.VW4000 reveals LoxP/Cre-induced translocations and gene loss
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The genome sequence of the popular hexose-transport-deficient Saccharomyces cerevisiae strain EBY.VW4000 reveals LoxP/Cre-induced translocations and gene loss

机译:普遍的己糖 - 转运缺陷酵母菌菌菌株Eby.vw4000的基因组序列揭示了Loxp / Cre-诱导的易位和基因损失

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摘要

Saccharomyces cerevisiae harbours a large group of tightly controlled hexose transporters with different characteristics. Construction and characterization of S. cerevisiae EBY.VW4000, a strain devoid of glucose import, was a milestone in hexose-transporter research. This strain has become a widely used platform for discovery and characterization of transporters from a wide range of organisms. To abolish glucose uptake, 21 genes were knocked out, involving 16 successive deletion rounds with the LoxP/Cre system. Although such intensive modifications are known to increase the risk of genome alterations, the genome of EBY.VW4000 has hitherto not been characterized. Based on a combination of whole genome sequencing, karyotyping and molecular confirmation, the present study reveals that construction of EBY.VW4000 resulted in gene losses and chromosomal rearrangements. Recombinations between the LoxP scars have led to the assembly of four neo-chromosomes, truncation of two chromosomes and loss of two subtelomeric regions. Furthermore, sporulation and spore germination are severely impaired in EBY.VW4000. Karyotyping of the EBY.VW4000 lineage retraced its current chromosomal architecture to four translocations events occurred between the 6th and the 12th rounds of deletion. The presented data facilitate further studies on EBY.VW4000 and highlight the risks of genome alterations associated with repeated use of the LoxP/Cre system.
机译:Saccharomyces Cerevisiae将大群紧密控制的己糖转运蛋白具有不同的特征。 S. Cerevisiae Eby.vw4000的构建与表征,一种缺乏葡萄糖进口的菌株,是Hexose-Transporter研究中的里程碑。这种菌株已成为从各种生物体发现和表征转运蛋白的广泛使用平台。为了消除葡萄糖摄取,将21种基因撞出,涉及16个连续删除LOXP / CRE系统。虽然已知这种密集的修饰来增加基因组改变的风险,但Eby.Vw4000的基因组迄今为止。基于全基因组测序,核型化和分子确认的组合,本研究表明,EBY.VW4000的构建导致基因损失和染色体重排。 LoxP疤痕之间的重组导致了四种新染色体的组装,截短了两种染色体和两个子调制区域的丧失。此外,孢子率和孢子萌发在EBY.VW4000中严重受损。 EBY.VW4000谱系的核型划分算法将其当前的染色体架构重新回到了第6轮和第12轮删除之间发生的四个易位事件。所呈现的数据有助于进一步研究EBY.VW4000,并突出与重复使用LOXP / CRE系统相关的基因组改变的风险。

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