Dwyer Katherine, Agarwal Neha, Pile Lori, Ansari Athar
Department of Biological Science, Wayne State University, Detroit, MI, United States.
Front Mol Biosci. 2021 Apr 21;8:669004. doi: 10.3389/fmolb.2021.669004. eCollection 2021.
Introns impact several vital aspects of eukaryotic organisms like proteomic plasticity, genomic stability, stress response and gene expression. A role for introns in the regulation of gene expression at the level of transcription has been known for more than thirty years. The molecular basis underlying the phenomenon, however, is still not entirely clear. An important clue came from studies performed in budding yeast that indicate that the presence of an intron within a gene results in formation of a multi-looped gene architecture. When looping is defective, these interactions are abolished, and there is no enhancement of transcription despite normal splicing. In this review, we highlight several potential mechanisms through which looping interactions may enhance transcription. The promoter-5' splice site interaction can facilitate initiation of transcription, the terminator-3' splice site interaction can enable efficient termination of transcription, while the promoter-terminator interaction can enhance promoter directionality and expedite reinitiation of transcription. Like yeast, mammalian genes also exhibit an intragenic interaction of the promoter with the gene body, especially exons. Such promoter-exon interactions may be responsible for splicing-dependent transcriptional regulation. Thus, the splicing-facilitated changes in gene architecture may play a critical role in regulation of transcription in yeast as well as in higher eukaryotes.
内含子影响真核生物的几个重要方面,如蛋白质组可塑性、基因组稳定性、应激反应和基因表达。内含子在转录水平上对基因表达的调控作用已为人所知超过三十年。然而,这一现象背后的分子基础仍不完全清楚。一个重要线索来自对芽殖酵母的研究,这些研究表明基因内存在内含子会导致形成多环基因结构。当环化有缺陷时,这些相互作用就会被消除,尽管剪接正常,但转录也不会增强。在这篇综述中,我们强调了环化相互作用可能增强转录的几种潜在机制。启动子-5'剪接位点相互作用可以促进转录起始,终止子-3'剪接位点相互作用可以实现转录的有效终止,而启动子-终止子相互作用可以增强启动子方向性并加速转录的重新起始。与酵母一样,哺乳动物基因的启动子也与基因体,特别是外显子,存在基因内相互作用。这种启动子-外显子相互作用可能负责剪接依赖性转录调控。因此,剪接促进的基因结构变化可能在酵母以及高等真核生物的转录调控中起关键作用。