The Centre for Plant Sciences, Faculty of Biological Sciences, University of Leeds, Leeds LS2 9JT, U.K.
School of Biosciences, College of Life and Environmental Sciences, University of Birmingham, Edgbaston B15 2TT, U.K.
Biochem J. 2023 Jul 12;480(13):941-956. doi: 10.1042/BCJ20230008.
The WHIRLY (WHY) family of DNA/RNA binding proteins fulfil multiple but poorly characterised functions in plants. We analysed WHY protein functions in the Arabidopsis Atwhy1, Atwhy3, Atwhy1why3 single and double mutants and wild type controls. The Atwhy3 and Atwhy1why3 double mutants showed a significant delay in flowering, having more siliques per plant but with fewer seeds per silique than the wild type. While germination was similar in the unaged high-quality seeds of all lines, significant decreases in vigour and viability were observed in the aged mutant seeds compared with the wild type. Imbibition of unaged high-quality seeds was characterised by large increases in transcripts that encode proteins involved in oxygen sensing and responses to hypoxia. Seed aging resulted in a disruption of the imbibition-induced transcriptome profile such that transcripts encoding RNA metabolism and processing became the most abundant components of the imbibition signature. The imbibition-related profile of the Atwhy1why3 mutant seeds, was characterised by decreased expression of hypoxia-related and oxygen metabolism genes even in the absence of aging. Seed aging further decreased the abundance of hypoxia-related and oxygen metabolism transcripts relative to the wild type. These findings suggest that the WHY1 and WHY3 proteins regulate the imbibition-induced responses to oxygen availability and hypoxia. Loss of WHY1 and WHY3 functions decreases the ability of Arabidopsis seeds to resist the adverse effects of seed aging.
WHIRLY(WHY)家族的 DNA/RNA 结合蛋白在植物中具有多种但特征描述不充分的功能。我们分析了拟南芥 Atwhy1、Atwhy3、Atwhy1why3 单突变体和双突变体以及野生型对照中 WHY 蛋白的功能。Atwhy3 和 Atwhy1why3 双突变体表现出明显的开花延迟,每株植物的果荚更多,但每荚种子数比野生型少。虽然所有系的未老化高质量种子的萌发率相似,但与野生型相比,老化突变体种子的活力和活力显著下降。未老化高质量种子的吸胀过程中,编码参与氧感应和缺氧反应的蛋白质的转录本大量增加。种子老化导致吸胀诱导的转录组图谱中断,使得编码 RNA 代谢和加工的转录本成为吸胀特征的最丰富成分。Atwhy1why3 突变体种子的吸胀相关图谱的特征是,即使在没有老化的情况下,与缺氧相关和氧代谢基因的表达也减少。与野生型相比,种子老化进一步降低了与缺氧相关和氧代谢转录本的丰度。这些发现表明,WHY1 和 WHY3 蛋白调节对氧气供应和缺氧的吸胀诱导反应。WHY1 和 WHY3 功能的丧失降低了拟南芥种子抵抗种子老化不利影响的能力。