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Cross‐species complementation reveals conserved functions for EARLY FLOWERING 3 between monocots and dicots

机译:跨物种互补揭示了单子叶植物和双子叶植物之间早期开花3的保守功能

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摘要

Plant responses to the environment are shaped by external stimuli and internal signaling pathways. In both the model plant ( ) and crop species, circadian clock factors are critical for growth, flowering, and circadian rhythms. Outside of however, little is known about the molecular function of clock gene products. Therefore, we sought to compare the function of ( ) and ( ) orthologs of a key clock gene in . To identify both cycling genes and putative functional orthologs in , a circadian ‐seq dataset and online query tool (Diel Explorer) were generated to explore expression profiles of genes under circadian conditions. The function of orthologs from and was tested for complementation of an mutation in . We find that both monocot orthologs were capable of rescuing hypocotyl elongation, flowering time, and arrhythmic clock phenotypes. Using affinity purification and mass spectrometry, our data indicate that Bd 3 and Sv 3 could be integrated into similar complexes as At 3. Thus, we find that, despite 180 million years of separation, and can functionally complement loss of at the molecular and physiological level.
机译:植物对环境的反应受外部刺激和内部信号传导途径的影响。在模型植物()和作物物种中,昼夜节律因素对于生长,开花和昼夜节律都是至关重要的。然而,除此之外,关于时钟基因产物的分子功能知之甚少。因此,我们试图比较的关键时钟基因的()和()直系同源物的功能。为了在其中识别循环基因和假定的功能直系同源物,生成了昼夜节拍序列数据集和在线查询工具(Diel Explorer)以探索昼夜节律条件下基因的表达谱。功能的直系同源物和进行了测试的突变的补充。我们发现,两个单子叶植物直系同源基因都能够挽救下胚轴伸长,开花时间和心律不齐的时钟表型。使用亲和纯化和质谱分析,我们的数据表明Bd 3和Sv 3可以整合到与At 3相似的复合物中。因此,我们发现,尽管分离了1.8亿年,但它们在功能上可以弥补分子和生理上的损失。水平。

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