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CRISPRa 系统在果蝇不同类型异染色质中的不同转录反应。

Different transcriptional responses by the CRISPRa system in distinct types of heterochromatin in Drosophila melanogaster.

机构信息

Departamento de Genética del Desarrollo Y Fisiología Molecular, Instituto de Biotecnología, Universidad Nacional Autónoma de México, Av. Universidad 2001, Cuernavaca, Morelos, 62250, México.

出版信息

Sci Rep. 2022 Jul 9;12(1):11702. doi: 10.1038/s41598-022-15944-7.

Abstract

Transcription factors (TFs) activate gene expression by binding to elements close to promoters or enhancers. Some TFs can bind to heterochromatic regions to initiate gene activation, suggesting that if a TF is able to bind to any type of heterochromatin, it can activate transcription. To investigate this possibility, we used the CRISPRa system based on dCas9-VPR as an artificial TF in Drosophila. dCas9-VPR was targeted to the TAHRE telomeric element, an example of constitutive heterochromatin, and to promoters and enhancers of the HOX Ultrabithorax (Ubx) and Sex Combs Reduced (Scr) genes in the context of facultative heterochromatin. dCas9-VPR robustly activated TAHRE transcription, showing that although this element is heterochromatic, dCas9-VPR was sufficient to activate its expression. In the case of HOX gene promoters, although Polycomb complexes epigenetically silence these genes, both were ectopically activated. When the artificial TF was directed to enhancers, we found that the expression pattern was different compared to the effect on the promoters. In the case of the Scr upstream enhancer, dCas9-VPR activated the gene ectopically but with less expressivity; however, ectopic activation also occurred in different cells. In the case of the bxI enhancer located in the third intron of Ubx, the presence of dCas9-VPR is capable of increasing transcription initiation while simultaneously blocking transcription elongation, generating a lack of functional phenotype. Our results show that CRISPRa system is able to activate transcription in any type of heterochromatin; nevertheless, its effect on transcription is subject to the intrinsic characteristics of each gene or regulatory element.

摘要

转录因子 (TFs) 通过与启动子或增强子附近的元件结合来激活基因表达。一些 TF 可以结合异染色质区域来启动基因激活,这表明如果 TF 能够结合任何类型的异染色质,它就可以激活转录。为了研究这种可能性,我们在果蝇中使用了基于 dCas9-VPR 的 CRISPRa 系统作为人工 TF。dCas9-VPR 靶向 TAHRE 端粒元件,这是组成型异染色质的一个例子,以及 HOX Ultrabithorax (Ubx) 和 Sex Combs Reduced (Scr) 基因的启动子和增强子,这些基因处于兼性异染色质的背景下。dCas9-VPR 强烈激活 TAHRE 转录,表明尽管这个元件是异染色质的,但 dCas9-VPR 足以激活其表达。在 HOX 基因启动子的情况下,尽管 Polycomb 复合物表观遗传沉默这些基因,但它们都被异位激活。当人工 TF 被导向增强子时,我们发现与对启动子的影响相比,表达模式有所不同。在 Scr 上游增强子的情况下,dCas9-VPR 异位激活了基因,但表达能力较弱;然而,异位激活也发生在不同的细胞中。在位于 Ubx 第三个内含子的 bxI 增强子的情况下,dCas9-VPR 的存在能够增加转录起始,同时阻断转录延伸,导致缺乏功能表型。我们的结果表明,CRISPRa 系统能够激活任何类型的异染色质中的转录;然而,它对转录的影响取决于每个基因或调节元件的固有特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3330/9271074/1d419ee3289d/41598_2022_15944_Fig1_HTML.jpg

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