拟南芥PM19L1蛋白在渗透胁迫下调控种子萌发

IF 2.3 3区 生物学 Q2 PLANT SCIENCES
Plant Direct Pub Date : 2025-05-19 eCollection Date: 2025-05-01 DOI:10.1002/pld3.70059
Ross D Alexander, Pablo Castillejo-Pons, Nina Melzer, Omar Alsaif, Vivien I Strotmann, Yvonne Stahl, Madeleine Seale, Peter C Morris
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引用次数: 0

摘要

植物如何感知和响应水分供应,特别是在种子形成和发芽的关键阶段,是它们生存的关键。在发育、成熟和萌发过程中,种子的含水量发生了很大的变化,在成熟过程中下降到10%左右,在萌发后24小时内再次上升到90%。然而,植物感知和响应其渗透环境的机制在很大程度上仍然未知。本文的结果表明,种子的渗透环境是由PM19L1蛋白感知的。我们发现拟南芥质膜蛋白PM19L1在所有陆地植物中都是进化保守的,在种子和幼苗中高度表达,并调节渗透胁迫下的萌发,如PM19L1突变体在盐胁迫和渗透胁迫下的萌发率降低。PM19L1蛋白在结构上类似于酵母的渗透传感器Sho1,在酵母中表达PM19L1将补充渗透敏感的Sho1突变体,因此PM19L1可以作为一种渗透传感器。与酵母中sho1介导的渗透耐受机制相反,PM19L1并不控制植物中的渗透物水平,而是调控脱落酸和赤霉素合成的基因,以及介导脱落酸反应的转录因子。在pm19l1突变体中,促进种子晚熟的ABI3、LEC1和FUS3基因的表达下调,而介导脱落酸依赖性抑制种子萌发的ABI4和ABI5转录因子的表达上调。PM19L1的异位表达证实了PM19L1在植物中作为渗透传感器的作用,PM19L1通过增强ABI3、LEC1和FUS3的表达,赋予营养植物对施加的渗透胁迫作出反应的能力。这表明PM19L1作为一个整合渗透环境信息的因子,在种子发育和萌发过程中调节种子的发育命运。分析内源激素水平和基因突变的表型,例如pm19l1/abi3和pm19l1/abi4,将有助于确认和完善这一模型。与酵母中的ShoI渗透感应进一步平行,植物中PM19L1下游的细胞内信号传导可能涉及MAP激酶信号转导途径,如蛋白质-蛋白质相互作用的分裂泛素分析和植物提取物的下拉试验所示。MAP激酶蛋白AtMKK2和AtMKK3特异性结合PM19L1,并且AtMKK2和AtMKK3突变体具有与PM19L1惊人相似的萌发和基因表达表型;然而,要证实这些蛋白在信号通路中的作用,还需要进一步分析pm19l1背景下MKK突变体的敲除和功能获得。这些结果对包括作物在内的陆地植物的休眠、耐旱和耐盐性的研究具有启示意义,也可能为植物对陆地环境的进化适应提供见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Arabidopsis PM19L1 Protein Functions as a Regulator of Germination Under Osmotic Stress.

How plants perceive and respond to water availability, especially during the critical stages of seed formation and germination, is key to their survival. During development, ripening, and germination, seeds undergo large changes in water content, down to around 10% during maturation and up to 90% again within 24 h of germination. However, the mechanisms by which plants perceive and respond to their osmotic environment remain largely unknown. The results presented here indicate that the osmotic environment of the seed is perceived by the PM19L1 protein. We find the Arabidopsis plasma membrane protein PM19L1 is evolutionarily conserved in all land plants, is highly expressed in seeds and seedlings, and regulates germination under osmotic stress, as shown by the reduced germination of the pm19l1 mutant under salt and osmotic stress. The PM19L1 protein structurally resembles the yeast osmosensor Sho1, and expression of PM19L1 in yeast will complement the osmosensitive sho1 mutant, thus PM19L1 can function as an osmosensor. In contrast to the Sho1-mediated mechanisms for osmotic tolerance in yeast, PM19L1 does not control osmolyte levels in plants, but is a regulator of genes governing abscisic acid and gibberellin synthesis, and of transcription factors that mediate the abscisic acid response. In the pm19l1 mutant, expression of genes for ABI3, LEC1, and FUS3, which promote the late maturation of the seed, is downregulated, whereas expression of the ABI4 and ABI5 transcription factors, which confer abscisic acid-dependent inhibition of germination, is upregulated. The role of PM19L1 as an osmosensor in the plant was verified by ectopic expression of PM19L1 which conferred the ability of vegetative plants to respond to imposed osmotic stress by enhanced expression of ABI3, LEC1, and FUS3. This suggests a function for PM19L1 as a factor that integrates information on the osmotic environment to modulate the developmental fate of the seed during development and germination. Analysis of endogenous hormone levels and phenotypes of digenic mutants, for example pm19l1/abi3 and pm19l1/abi4, will help confirm and refine this model. In a further parallel to ShoI osmosensing in yeast, intracellular signaling downstream of PM19L1 in the plant likely involves a MAP kinase signal transduction pathway, as shown by split ubiquitin analysis for protein-protein interactions, and by pull-down assays from plant extracts. The MAP kinase proteins AtMKK2 and AtMKK3 specifically bind to PM19L1, and the atmkk2, and atmkk3 mutants have strikingly similar germination and gene expression phenotypes to pm19l1; however, corroboration of the role of these proteins in the signaling pathway will require further analysis of knockout and gain of function MKK mutants in the pm19l1 background. These results have implications for the study of dormancy, drought, and salinity tolerance in land plants including crops, and may also provide an insight into evolutionary adaptation of plants to a terrestrial environment.

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来源期刊
Plant Direct
Plant Direct Environmental Science-Ecology
CiteScore
5.00
自引率
3.30%
发文量
101
审稿时长
14 weeks
期刊介绍: Plant Direct is a monthly, sound science journal for the plant sciences that gives prompt and equal consideration to papers reporting work dealing with a variety of subjects. Topics include but are not limited to genetics, biochemistry, development, cell biology, biotic stress, abiotic stress, genomics, phenomics, bioinformatics, physiology, molecular biology, and evolution. A collaborative journal launched by the American Society of Plant Biologists, the Society for Experimental Biology and Wiley, Plant Direct publishes papers submitted directly to the journal as well as those referred from a select group of the societies’ journals.
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