Simpson Querrey Institute for Epigenetics, Department of Biochemistry and Molecular Genetics, Feinberg School of Medicine, Northwestern University, Chicago, Illinois 60611, USA.
Genes Dev. 2021 Feb 1;35(3-4):273-285. doi: 10.1101/gad.346106.120. Epub 2021 Jan 14.
The regulation of gene expression catalyzed by RNA polymerase II (Pol II) requires a host of accessory factors to ensure cell growth, differentiation, and survival under environmental stress. Here, using the auxin-inducible degradation (AID) system to study transcriptional activities of the bromodomain and extraterminal domain (BET) and super elongation complex (SEC) families, we found that the CDK9-containing BRD4 complex is required for the release of Pol II from promoter-proximal pausing for most genes, while the CDK9-containing SEC is required for activated transcription in the heat shock response. By using both the proteolysis targeting chimera (PROTAC) dBET6 and the AID system, we found that dBET6 treatment results in two major effects: increased pausing due to BRD4 loss, and reduced enhancer activity attributable to BRD2 loss. In the heat shock response, while auxin-mediated depletion of the AFF4 subunit of the SEC has a more severe defect than AFF1 depletion, simultaneous depletion of AFF1 and AFF4 leads to a stronger attenuation of the heat shock response, similar to treatment with the SEC inhibitor KL-1, suggesting a possible redundancy among SEC family members. This study highlights the usefulness of orthogonal acute depletion/inhibition strategies to identify distinct and redundant biological functions among Pol II elongation factor paralogs.
RNA 聚合酶 II(Pol II)催化的基因表达调控需要许多辅助因子,以确保细胞在环境压力下的生长、分化和存活。在这里,我们使用生长素诱导的降解(AID)系统来研究溴结构域和末端结构域(BET)和超级延伸复合物(SEC)家族的转录活性,发现包含 CDK9 的 BRD4 复合物对于大多数基因的 Pol II 从启动子近端暂停中释放是必需的,而包含 CDK9 的 SEC 对于热休克反应中的激活转录是必需的。通过使用蛋白酶体靶向嵌合体(PROTAC)dBET6 和 AID 系统,我们发现 dBET6 处理导致两个主要影响:由于 BRD4 缺失导致暂停增加,以及由于 BRD2 缺失导致增强子活性降低。在热休克反应中,虽然 AID 介导的 SEC 的 AFF4 亚基耗竭比 AFF1 耗竭具有更严重的缺陷,但 AFF1 和 AFF4 的同时耗竭导致热休克反应的衰减更强,类似于 SEC 抑制剂 KL-1 的处理,表明 SEC 家族成员之间可能存在冗余。这项研究强调了正交急性耗竭/抑制策略在识别 Pol II 延伸因子同源物中的独特和冗余生物学功能方面的有用性。