Sybilska Ewa, Daszkowska-Golec Agata
Institute of Biology, Biotechnology and Environmental Protection, Faculty of Natural Sciences, University of Silesia in Katowice, Katowice, Poland.
Front Plant Sci. 2023 Mar 16;14:1144990. doi: 10.3389/fpls.2023.1144990. eCollection 2023.
Seed germination is an essential step in a plant's life cycle. It is controlled by complex physiological, biochemical, and molecular mechanisms and external factors. Alternative splicing (AS) is a co-transcriptional mechanism that regulates gene expression and produces multiple mRNA variants from a single gene to modulate transcriptome diversity. However, little is known about the effect of AS on the function of generated protein isoforms. The latest reports indicate that alternative splicing (AS), the relevant mechanism controlling gene expression, plays a significant role in abscisic acid (ABA) signaling. In this review, we present the current state of the art about the identified AS regulators and the ABA-related changes in AS during seed germination. We show how they are connected with the ABA signaling and the seed germination process. We also discuss changes in the structure of the generated AS isoforms and their impact on the functionality of the generated proteins. Also, we point out that the advances in sequencing technology allow for a better explanation of the role of AS in gene regulation by more accurate detection of AS events and identification of full-length splicing isoforms.
种子萌发是植物生命周期中的一个重要步骤。它受复杂的生理、生化和分子机制以及外部因素的控制。可变剪接(AS)是一种共转录机制,可调节基因表达,并从单个基因产生多种mRNA变体,以调节转录组多样性。然而,关于可变剪接对所产生蛋白质异构体功能的影响,人们所知甚少。最新报告表明,可变剪接(AS)这种控制基因表达的相关机制在脱落酸(ABA)信号传导中发挥着重要作用。在本综述中,我们介绍了已确定的可变剪接调节因子的现状以及种子萌发过程中可变剪接与ABA相关的变化。我们展示了它们如何与ABA信号传导和种子萌发过程相联系。我们还讨论了所产生的可变剪接异构体的结构变化及其对所产生蛋白质功能的影响。此外,我们指出测序技术的进步能够通过更准确地检测可变剪接事件和鉴定全长剪接异构体,更好地解释可变剪接在基因调控中的作用。