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PNAS Plus: Loss of deeply conserved C-class floral homeotic gene function and C- and E-class protein interaction in a double-flowered ranunculid mutant

机译:PNAS Plus:双花无核突变体中高度保守的C类花卉同源基因功能以及C和E类蛋白质相互作用的丧失

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摘要

In the model plant Arabidopsis thaliana, a core eudicot, the floral homeotic C-class gene AGAMOUS (AG) has a dual role specifying reproductive organ identity and floral meristem determinacy. We conduct a functional analysis of the putative AG ortholog ThtAG1 from the ranunculid Thalictrum thalictroides, a representative of the sister lineage to all other eudicots. Down-regulation of ThtAG1 by virus-induced gene silencing resulted in homeotic conversion of stamens and carpels into sepaloid organs and loss of flower determinacy. Moreover, flowers exhibiting strong silencing of ThtAG1 phenocopied the double-flower ornamental cultivar T. thalictroides ‘Double White.’ Molecular analysis of ‘Double White’ ThtAG1 alleles revealed the insertion of a retrotransposon causing either nonsense-mediated decay of transcripts or alternative splicing that results in mutant proteins with K-domain deletions. Biochemical analysis demonstrated that the mutation abolishes protein–protein interactions with the putative E-class protein ThtSEP3. C- and E-class protein heterodimerization is predicted by the floral quartet model, but evidence for the functional importance of this interaction is scarce outside the core eudicots. Our findings therefore corroborate the importance and conservation of the interactions between C- and E-class proteins. This study provides a functional description of a full C-class mutant in a noncore (“basal”) eudicot, an ornamental double flower, affecting both organ identity and meristem determinacy. Using complementary forward and reverse genetic approaches, this study demonstrates deep conservation of the dual C-class gene function and of the interactions between C- and E-class proteins predicted by the floral quartet model.
机译:在模式植物拟南芥(Arabidopsis thaliana)(一种核心的双子叶植物)中,花卉同源C类基因AGAMOUS(AG)具有双重作用,可指定生殖器官特性和花卉分生组织的确定性。我们对来自无节理的Thalictrum thalictroides的推定AG直系同源物ThtAG1进行功能分析,该蛋白是所有其他双子叶植物的姐妹谱系的代表。病毒诱导的基因沉默对ThtAG1的下调导致雄蕊和心皮等轴同生转化为萼片器官并丧失花的确定性。此外,表现出强力沉默ThtAG1的花被双花观赏品种T.thalictroides'Double White。'双重分析。对'Double White'ThtAG1等位基因的分子分析表明,反转录转座子的插入会导致无义介导的转录物衰变或选择性剪接,产生具有K结构域缺失的突变蛋白。生化分析表明,该突变消除了蛋白与假定的E类蛋白ThtSEP3的相互作用。 C级和E级蛋白质异源二聚体是由花卉四重奏模型预测的,但是这种相互作用的功能重要性在核心双子叶植物之外很少见。因此,我们的发现证实了C类和E类蛋白之间相互作用的重要性和保守性。这项研究提供了功能性描述,描述了无核(“基生”)双子叶植物(观赏双花)中完整的C类突变体,同时影响器官特性和分生组织的确定性。使用互补的正向和反向遗传方法,这项研究证明了双重保守的C类基因功能以及由花卉四重奏模型预测的C类和E类蛋白之间的相互作用的深层保护。

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