Population-level exploration of alternative splicing and its unique role in controlling agronomic traits of rice

水稻 RNA剪接 选择性拼接 基因 生物 表型 特质 数量性状位点 基因亚型 遗传学 植物 计算机科学 核糖核酸 程序设计语言
作者
Hong Zhang,Wu Chen,De Zhu,Bintao Zhang,Qiang Xu,Chuanlin Shi,Huiying He,Xiaodong Dai,Y. Li,Wenchuang He,Yang Lv,Longbo Yang,Xiaocong Cao,Yan Cui,Yue Leng,Hua Wei,Xiang-Pei Liu,Bin Zhang,Xianmeng Wang,Mingliang Guo,Zhipeng Zhang,Xiaoxia Li,Congcong Liu,Qiaoling Yuan,Tianyi Wang,Xiaoman Yu,Hongge Qian,Qianqian Zhang,D.X. Chen,Guanjing Hu,Qian Qian,Lianguang Shang
出处
期刊:The Plant Cell [Oxford University Press]
标识
DOI:10.1093/plcell/koae181
摘要

Abstract Alternative splicing (AS) plays crucial roles in regulating various biological processes in plants. However, the genetic mechanisms underlying AS and its role in controlling important agronomic traits in rice (Oryza sativa) remain poorly understood. In this study, we explored AS in rice leaves and panicles using the rice minicore collection. Our analysis revealed a high level of transcript isoform diversity, with approximately one-fifth of the potential isoforms acting as major transcripts in both tissues. Regarding the genetic mechanism of AS, we found that the splicing of 833 genes in the leaf and 1,230 genes in the panicle was affected by cis-genetic variation. Twenty-one percent of these AS events could only be explained by large structural variations. Approximately 77.5% of genes with significant splicing quantitative trait loci (sGenes) exhibited tissue-specific regulation, and AS can cause 26.9% (leaf) and 23.6% (panicle) of sGenes to have altered, lost, or gained functional domains. Additionally, through splicing-phenotype association analysis, we identified phosphate–starvation-induced RING-type E3 ligase (OsPIE1; LOC_Os01g72480), whose splicing ratio was significantly associated with plant height. In summary, this study provides an understanding of AS in rice and its contribution to the regulation of important agronomic traits.
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