首页> 外文期刊>Journal of Plant Research >Chiba Tendril-Less locus determines tendril organ identity in melon (Cucumis melo L.) and potentially encodes a tendril-specific TCP homolog
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Chiba Tendril-Less locus determines tendril organ identity in melon (Cucumis melo L.) and potentially encodes a tendril-specific TCP homolog

机译:千叶卷须-较少的基因座决定瓜(Cucumis melo L.)中的卷须器官身份,并可能编码卷须特异性的TCP同源物

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摘要

Tendrils are filamentous plant organs that coil on contact with an object, thereby providing mechanical support for climbing to reach more sunlight. Plant tendrils are considered to be modified structure of leaves, stems, or inflorescence, but the origin of cucurbit tendrils is still argued because of the complexity in the axillary organ patterning. We carried out morphological and genetic analyses of the Chiba Tendril-Less (ctl) melon (Cucumis melo) mutant, and found strong evidence that the melon tendril is a modified organ derived from a stem-leaf complex of a lateral shoot. Heterozygous (CTL/ctl) plants showed traits intermediate between tendril and shoot, and ontogenies of wild-type tendrils and mutant modified shoots coincided. We identified the CTL locus in a 200-kb region in melon linkage group IX. A single base deletion in a melon TCP transcription factor gene (CmTCP1) was detected in the mutant ctl sequence, and the expression of CmTCP1 was specifically high in wild-type tendrils. Phylogenetic analysis demonstrated the novelty of the CmTCP1 protein and the unique molecular evolution of its orthologs in the Cucurbitaceae. Our results move us closer to answering the long-standing question of which organ was modified to become the cucurbit tendril, and suggest a novel function of the TCP transcription factor in plant development.
机译:卷须是丝状植物器官,在与物体接触时会盘绕,从而为攀爬提供机械支撑以达到更多的阳光。植物卷须被认为是叶,茎或花序的修饰结构,但是葫芦卷须的起源仍然存在争议,因为腋窝器官的构图很复杂。我们对千叶卷须-Less(ctl)甜瓜(Cucumis melo)突变体进行了形态和遗传分析,发现有力的证据表明甜瓜卷须是从侧生茎叶复合体衍生的修饰器官。杂合子(CTL / ctl)植物表现出性状介于卷须和幼芽之间,野生型卷须和突变体修饰的幼芽的个体发育同时发生。我们在瓜键连锁组IX中的200 kb区域中确定了CTL基因座。在突变体ctl序列中检测到甜瓜TCP转录因子基因(CmTCP1)的单碱基缺失,并且在野生型卷须中CmTCP1的表达特别高。系统发育分析表明CmTCP1蛋白的新颖性和其在葫芦科中的直系同源物的独特分子进化。我们的结果使我们更接近回答长期存在的问题,即哪个器官被修饰成葫芦卷须,并暗示了TCP转录因子在植物发育中的新功能。

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