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Alternative splicing and gene duplication differentially shaped the regulation of isochorismate synthase in Populus and Arabidopsis

机译:选择性剪接和基因复制不同程度地影响了胡杨和拟南芥中异戊酸合酶的调控

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摘要

Isochorismate synthase (ICS) converts chorismate to isochorismate for the biosynthesis of phylloquinone, an essential cofactor for photosynthetic electron transport. ICS is also required for salicylic acid (SA) synthesis during Arabidopsis defense. In several other species, including Populus, SA is derived primarily from the phenylpropanoid pathway. We therefore sought to investigate ICS regulation in Populus to learn the extent of ICS involvement in SA synthesis and defense. Arabidopsis harbors duplicated AtICS genes that differ in their exon-intron structure, basal expression, and stress inducibility. In contrast, we found a single ICS gene in Populus and six other sequenced plant genomes, pointing to the AtICS duplication as a lineage-specific event. The Populus ICS encodes a functional plastidic enzyme, and was not responsive to stresses that stimulated phenylpropanoid accumulation. Populus ICS underwent extensive alternative splicing that was rare for the duplicated AtICSs. Sequencing of 184 RT-PCR Populus clones revealed 37 alternative splice variants, with normal transcripts representing ≈50% of the population. When expressed in Arabidopsis, Populus ICS again underwent alternative splicing, but did not produce normal transcripts to complement AtICS1 function. The splice-site sequences of Populus ICS are unusual, suggesting a causal link between junction sequence, alternative splicing, and ICS function. We propose that gene duplication and alternative splicing of ICS evolved independently in Arabidopsis and Populus in accordance with their distinct defense strategies. AtICS1 represents a divergent isoform for inducible SA synthesis during defense. Populus ICS primarily functions in phylloquinone biosynthesis, a process that can be sustained at low ICS transcript levels.
机译:异氰酸酯合酶(ICS)将分支酸酯转化为异邻苯二甲酸酯,以进行叶绿醌的生物合成,叶绿醌是光合作用电子转运的重要辅助因子。拟南芥防御过程中水杨酸(SA)的合成也需要ICS。在包括胡杨在内的其他几个物种中,SA主要来源于苯基丙烷途径。因此,我们寻求调查胡杨中的ICS法规,以了解ICS参与SA合成和防御的程度。拟南芥包含重复的AtICS基因,它们的外显子-内含子结构,基础表达和应激诱导性不同。相比之下,我们在胡杨和其他六个已测序植物基因组中发现了一个ICS基因,指出At​​ICS重复是谱系特异性事件。杨ICS编码功能性质体酶,并且对刺激苯丙烷积累的压力无反应。 Populus ICS经历了广泛的替代剪接,这对于重复的AtICS而言是罕见的。 184个RT-PCR杨树克隆的测序揭示了37个替代剪接变体,其中正常转录本占种群的约50%。当在拟南芥中表达时,Populus ICS再次经历了可变剪接,但没有产生正常的转录本来补充AtICS1的功能。胡杨ICS的剪接位点序列是不寻常的,表明连接序列,替代剪接和ICS功能之间存在因果关系。我们认为 ICS 的基因复制和选择性剪接在拟南芥中是根据它们独特的防御策略而独立进化的。 AtICS1 代表防御过程中诱导型SA合成的发散亚型。 杨ICS 主要在叶醌的生物合成中起作用,该过程可以在 ICS 较低的转录本水平下维持。

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