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缺氧诱导的转录应激是由 ROS 诱导的 R 环介导的。

Hypoxia-induced transcriptional stress is mediated by ROS-induced R-loops.

机构信息

Department of Oncology, University of Oxford, Oxford OX3 7DQ, UK.

Sir William Dunn School of Pathology, University of Oxford, Oxford OX1 3RE, UK.

出版信息

Nucleic Acids Res. 2023 Nov 27;51(21):11584-11599. doi: 10.1093/nar/gkad858.

Abstract

Hypoxia is a common feature of solid tumors and is associated with poor patient prognosis, therapy resistance and metastasis. Radiobiological hypoxia (<0.1% O2) is one of the few physiologically relevant stresses that activates both the replication stress/DNA damage response and the unfolded protein response. Recently, we found that hypoxia also leads to the robust accumulation of R-loops, which led us to question here both the mechanism and consequence of hypoxia-induced R-loops. Interestingly, we found that the mechanism of R-loop accumulation in hypoxia is dependent on non-DNA damaging levels of reactive oxygen species. We show that hypoxia-induced R-loops play a critical role in the transcriptional stress response, evidenced by the repression of ribosomal RNA synthesis and the translocation of nucleolin from the nucleolus into the nucleoplasm. Upon depletion of R-loops, we observed a rescue of both rRNA transcription and nucleolin translocation in hypoxia. Mechanistically, R-loops accumulate on the rDNA in hypoxia and promote the deposition of heterochromatic H3K9me2 which leads to the inhibition of Pol I-mediated transcription of rRNA. These data highlight a novel mechanistic insight into the hypoxia-induced transcriptional stress response through the ROS-R-loop-H3K9me2 axis. Overall, this study highlights the contribution of transcriptional stress to hypoxia-mediated tumorigenesis.

摘要

缺氧是实体肿瘤的常见特征,与患者预后不良、治疗耐药和转移有关。放射生物学缺氧(<0.1% O2)是少数几种生理相关应激之一,可激活复制应激/DNA 损伤反应和未折叠蛋白反应。最近,我们发现缺氧还会导致 R 环的大量积累,这促使我们在这里探讨缺氧诱导的 R 环的机制和后果。有趣的是,我们发现缺氧诱导的 R 环积累的机制依赖于非 DNA 损伤水平的活性氧。我们表明,缺氧诱导的 R 环在转录应激反应中发挥关键作用,这表现在核糖体 RNA 合成的抑制和核仁蛋白核仁蛋白从核仁到核质的易位。在 R 环耗尽后,我们观察到缺氧中 rRNA 转录和核仁蛋白易位的恢复。在机制上,R 环在缺氧时在 rDNA 上积累,并促进异染色质 H3K9me2 的沉积,从而抑制 Pol I 介导的 rRNA 转录。这些数据突出了通过 ROS-R 环-H3K9me2 轴,缺氧诱导的转录应激反应的新的机制见解。总的来说,这项研究强调了转录应激对缺氧介导的肿瘤发生的贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a3ab/10681727/eaf476c924c5/gkad858figgra1.jpg

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