Simpson Querrey Institute for Epigenetics, Department of Biochemistry and Molecular Genetics, Feinberg School of Medicine, Northwestern University, Chicago, IL 60611.
Division of Pulmonary and Critical Care, Department of Medicine, Northwestern University, Chicago, IL 60611.
Proc Natl Acad Sci U S A. 2024 Apr 9;121(15):e2321502121. doi: 10.1073/pnas.2321502121. Epub 2024 Apr 2.
The release of paused RNA polymerase II (RNAPII) from promoter-proximal regions is tightly controlled to ensure proper regulation of gene expression. The elongation factor PTEF-b is known to release paused RNAPII via phosphorylation of the RNAPII C-terminal domain by its cyclin-dependent kinase component, CDK9. However, the signal and stress-specific roles of the various RNAPII-associated macromolecular complexes containing PTEF-b/CDK9 are not yet clear. Here, we identify and characterize the CDK9 complex required for transcriptional response to hypoxia. Contrary to previous reports, our data indicate that a CDK9 complex containing BRD4 but not AFF1/4 is essential for this hypoxic stress response. We demonstrate that BRD4 bromodomains (BET) are dispensable for the release of paused RNAPII at hypoxia-activated genes and that BET inhibition by JQ1 is insufficient to impair hypoxic gene response. Mechanistically, we demonstrate that the C-terminal region of BRD4 is required for Polymerase-Associated Factor-1 Complex (PAF1C) recruitment to establish an elongation-competent RNAPII complex at hypoxia-responsive genes. PAF1C disruption using a small-molecule inhibitor (iPAF1C) impairs hypoxia-induced, BRD4-mediated RNAPII release. Together, our results provide insight into potentially targetable mechanisms that control the hypoxia-responsive transcriptional elongation.
暂停的 RNA 聚合酶 II(RNAPII)从启动子近端区域的释放受到严格控制,以确保基因表达的适当调节。已知伸长因子 PTEF-b 通过其细胞周期蛋白依赖性激酶成分 CDK9 对 RNAPII C 末端结构域的磷酸化来释放暂停的 RNAPII。然而,含有 PTEF-b/CDK9 的各种 RNAPII 相关的大分子复合物的信号和应激特异性作用尚不清楚。在这里,我们鉴定并表征了转录对缺氧反应所需的 CDK9 复合物。与之前的报道相反,我们的数据表明,含有 BRD4 但不含有 AFF1/4 的 CDK9 复合物对于这种缺氧应激反应是必需的。我们证明,BRD4 的溴结构域(BET)对于在缺氧激活基因上暂停的 RNAPII 的释放是不必要的,并且 JQ1 对 BET 的抑制不足以损害缺氧基因反应。从机制上讲,我们证明 BRD4 的 C 末端区域对于 Polymerase-Associated Factor-1 Complex(PAF1C)募集到在缺氧反应基因上建立具有延伸能力的 RNAPII 复合物是必需的。使用小分子抑制剂(iPAF1C)破坏 PAF1C 会损害缺氧诱导的 BRD4 介导的 RNAPII 释放。总之,我们的结果提供了潜在的可靶向机制的见解,这些机制控制了缺氧反应性转录延伸。