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Co-directional replication-transcription conflicts lead to replication restart

机译:双向复制-转录冲突导致复制重新启动

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摘要

Head-on encounters between the replication and transcription machineries on the lagging DNA strand can lead to replication fork arrest and genomic instability. To avoid head-on encounters, most genes, especially essential and highly transcribed genes, are encoded on the leading strand such that transcription and replication are co-directional. Virtually all bacteria have the highly expressed ribosomal RNA genes co-directional with replication. In bacteria, co-directional encounters seem inevitable because the rate of replication is about 10-20-fold greater than the rate of transcription. However, these encounters are generally thought to be benign. Biochemical analyses indicate that head-on encounters are more deleterious than co-directional encounters and that in both situations, replication resumes without the need for any auxiliary restart proteins, at least in vitro. Here we show that in vivo, co-directional transcription can disrupt replication, leading to the involvement of replication restart proteins. We found that highly transcribed rRNA genes are hotspots for co-directional conflicts between replication and transcription in rapidly growing Bacillus subtilis cells. We observed a transcription-dependent increase in association of the replicative helicase and replication restart proteins where head-on and co-directional conflicts occur. Our results indicate that there are co-directional conflicts between replication and transcription in vivo. Furthermore, in contrast to the findings in vitro, the replication restart machinery is involved in vivo in resolving potentially deleterious encounters due to head-on and co-directional conflicts. These conflicts probably occur in many organisms and at many chromosomal locations and help to explain the presence of important auxiliary proteins involved in replication restart and in helping to clear a path along the DNA for the replisome.
机译:落后的DNA链上的复制和转录机制之间的正面相遇会导致复制叉停滞和基因组不稳定。为了避免正面冲突,大多数基因,尤其是必需的和高度转录的基因,都在前导链上编码,使得转录和复制是同向的。几乎所有细菌都具有与复制同向的高表达核糖体RNA基因。在细菌中,同向的相遇似乎是不可避免的,因为复制速率比转录速率高约10-20倍。但是,这些相遇通常被认为是良性的。生化分析表明,正面接触比同向接触更具有害性,并且在两种情况下,至少在体外,复制都可以恢复而无需任何辅助重启蛋白。在这里,我们显示了体内同向转录可以破坏复制,从而导致复制重启蛋白的参与。我们发现高度转录的rRNA基因是快速增长的枯草芽孢杆菌细胞中复制和转录之间同向冲突的热点。我们观察到了转录解旋酶和复制重启蛋白的关联中转录依赖性的增加,其中发生正面和同向冲突。我们的结果表明体内复制和转录之间存在同向冲突。此外,与体外发现相反,复制重启机制在体内涉及解决因正面冲突和同向冲突而可能造成的有害冲突。这些冲突可能发生在许多生物体和许多染色体位置,并有助于解释复制重启中涉及的重要辅助蛋白的存在,并有助于为复制体清除沿着DNA的路径。

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  • 来源
    《Nature》 |2011年第7335期|p.554-557|共4页
  • 作者单位

    Department of Biology, Building 68-530, M.I.T., Cambridge, Massachusetts 02139, USA;

    Centre tor Biomolecular Sciences, School of Chemistry, University of Nottingham, University Park, Nottingham NG7 2RD, UK;

    Centre tor Biomolecular Sciences, School of Chemistry, University of Nottingham, University Park, Nottingham NG7 2RD, UK;

    Department of Biology, Building 68-530, M.I.T., Cambridge, Massachusetts 02139, USA;

    Centre tor Biomolecular Sciences, School of Chemistry, University of Nottingham, University Park, Nottingham NG7 2RD, UK;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 02:54:29

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