School of Agronomy, Jilin Agricultural Science and Technology University, Jilin, 132301, People's Republic of China.
Key Laboratory of Molecular Epigenetics of the Ministry of Education (MOE), Northeast Normal University, Changchun, 130024, People's Republic of China.
Plant Cell Rep. 2019 Feb;38(2):131-145. doi: 10.1007/s00299-018-2354-x. Epub 2018 Nov 15.
Maize SWI3-type chromatin remodeler impacts alternative splicing contexts in response to osmotic stress by altering nucleosome density and affecting transcriptional elongation rate. Alternative splicing (AS) is commonly found in higher eukaryotes and is an important posttranscriptional regulatory mechanism to generate transcript diversity. AS has been widely accepted as playing essential roles in different biological processes including growth, development, signal transduction and responses to biotic and abiotic stresses in plants. However, whether and how chromatin remodeling complex functions in AS in plant under osmotic stress remains unknown. Here, we show that a maize SWI3D protein, ZmCHB101, impacts AS contexts in response to osmotic stress. Genome-wide analysis of mRNA contexts in response to osmotic stress using ZmCHB101-RNAi lines reveals that ZmCHB101 impacts alternative splicing contexts of a subset of osmotic stress-responsive genes. Intriguingly, ZmCHB101-mediated regulation of gene expression and AS is largely uncoupled, pointing to diverse molecular functions of ZmCHB101 in transcriptional and posttranscriptional regulation. We further found ZmCHB101 impacts the alternative splicing contexts by influencing alteration of chromatin and histone modification status as well as transcriptional elongation rates mediated by RNA polymerase II. Taken together, our findings suggest a novel insight of how plant chromatin remodeling complex impacts AS under osmotic stress .
玉米 SWI3 型染色质重塑复合物通过改变核小体密度和影响转录延伸率来响应渗透胁迫改变可变剪接的上下文。可变剪接(AS)在高等真核生物中普遍存在,是产生转录多样性的重要转录后调控机制。AS 被广泛认为在不同的生物学过程中发挥着重要作用,包括生长、发育、信号转导以及植物对生物和非生物胁迫的反应。然而,染色质重塑复合物在植物渗透胁迫下的 AS 中是否以及如何发挥作用仍不清楚。在这里,我们表明,一种玉米 SWI3D 蛋白 ZmCHB101 响应渗透胁迫影响 AS 上下文。使用 ZmCHB101-RNAi 系对渗透胁迫下的 mRNA 上下文进行全基因组分析表明,ZmCHB101 影响了一组响应渗透胁迫的基因的可变剪接上下文。有趣的是,ZmCHB101 介导的基因表达和 AS 的调控在很大程度上是解耦的,这表明 ZmCHB101 在转录和转录后调控中具有不同的分子功能。我们进一步发现,ZmCHB101 通过影响染色质和组蛋白修饰状态以及 RNA 聚合酶 II 介导的转录延伸率来影响可变剪接上下文。总之,我们的研究结果表明,植物染色质重塑复合物在渗透胁迫下影响 AS 的一种新见解。