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The replication checkpoint protects fork stability by releasing transcribed genes from nuclear pores

机译:复制检查点通过从核孔释放转录的基因来保护叉子的稳定性

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Transcription hinders replication fork progression and stability, and the Mec1/ATR checkpoint protects fork integrity. Examining checkpoint-dependent mechanisms controlling fork stability, we find that fork reversal and dormant origin firing due to checkpoint defects are rescued in checkpoint mutants lacking THO, TREX-2, or inner-basket nucleoporins. Gene gating tethers transcribed genes to the nuclear periphery and is counteracted by checkpoint kinases through phosphorylation of nucleoporins such as Mlp1. Checkpoint mutants fail to detach transcribed genes from nuclear pores, thus generating topological impediments for incoming forks. Releasing this topological complexity by introducing a double-strand break between a fork and a transcribed unit prevents fork collapse. Mlp1 mutants mimicking constitutive checkpoint-dependent phosphorylation also alleviate checkpoint defects. We propose that the checkpoint assists fork progression and stability at transcribed genes by phosphorylating key nucleoporins and counteracting gene gating, thus neutralizing the topological tension generated at nuclear pore gated genes.
机译:转录阻碍复制前叉的进行和稳定性,而Mec1 / ATR检查点可保护前叉的完整性。检查控制叉稳定性的依赖于检查点的机制,我们发现在缺乏THO,TREX-2或内篮核孔蛋白的检查点突变体中,救援了由于检查点缺陷而引起的叉子反转和休眠原点激发。基因门控系链将基因转录到核外围,并通过核孔蛋白(如Mlp1)的磷酸化被检查点激酶所抵消。 Checkpoint突变体无法将转录的基因从核孔中分离出来,从而为传入的分叉产生了拓扑障碍。通过在叉子和转录单元之间引入双链断裂来缓解这种拓扑复杂性,可以防止叉子崩溃。模仿组成性检查点依赖的磷酸化的Mlp1突变体也减轻了检查点缺陷。我们建议,检查点通过使关键的核孔蛋白磷酸化并抵消基因门控,来帮助转录基因的叉发展和稳定,从而中和核孔门控基因产生的拓扑张力。

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