Shenzhen Key Laboratory of Gene Regulation and Systems Biology, School of Life Sciences, Southern University of Science and Technology, Shenzhen, China.
Innovative Center for RNA Therapeutics (ICRT), School of Life Sciences, Southern University of Science and Technology, Shenzhen, China.
Nat Commun. 2024 Aug 22;15(1):7222. doi: 10.1038/s41467-024-51694-y.
CRISPR/Cas-based transcriptional activators can be enhanced by intrinsically disordered regions (IDRs). However, the underlying mechanisms are still debatable. Here, we examine 12 well-known IDRs by fusing them to the dCas9-VP64 activator, of which only seven can augment activation, albeit independently of their phase separation capabilities. Moreover, modular domains (MDs), another class of multivalent molecules, though ineffective in enhancing dCas9-VP64 activity on their own, show substantial enhancement in transcriptional activation when combined with dCas9-VP64-IDR. By varying the number of gRNA binding sites and fusing dCas9-VP64 with different IDRs/MDs, we uncover that optimal, rather than maximal, cis-trans cooperativity enables the most robust activation. Finally, targeting promoter-enhancer pairs yields synergistic effects, which can be further amplified via enhancing chromatin interactions. Overall, our study develops a versatile platform for efficient gene activation and sheds important insights into CRIPSR-based transcriptional activators enhanced with multivalent molecules.
基于 CRISPR/Cas 的转录激活因子可以通过固有无序区域 (IDR) 得到增强。然而,其潜在的机制仍存在争议。在这里,我们通过融合到 dCas9-VP64 激活剂中研究了 12 个众所周知的 IDR,其中只有 7 个可以增强激活作用,尽管它们与相分离能力无关。此外,作为另一类多价分子的模块结构域 (MD),尽管单独使用时不能增强 dCas9-VP64 活性,但与 dCas9-VP64-IDR 结合时,在转录激活方面表现出显著的增强。通过改变 gRNA 结合位点的数量并将 dCas9-VP64 与不同的 IDR/MD 融合,我们发现最优的顺式-反式协同作用而不是最大的协同作用能够实现最强大的激活。最后,靶向启动子-增强子对会产生协同效应,通过增强染色质相互作用可以进一步放大这些效应。总的来说,我们的研究为高效基因激活开发了一个多功能平台,并为基于 CRISPR 的转录激活因子与多价分子增强提供了重要的见解。