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Spatial transcriptional signatures define margin morphogenesis along the proximal-distal and medio-lateral axes in tomato (Solarium lycopersicum) leaves

机译:空间转录签名沿番茄(日光浴菌氏岩)叶片的近端远端和Medio-横向轴定义边缘形态发生

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摘要

Leaf morphogenesis involves cell division, expansion, and differentiation in the developing leaf, which take place at different rates and at different positions along the medio-lateral and proximal-distal leaf axes. The gene expression changes that control cell fate along these axes remain elusive due to difficulties in precisely isolating tissues. Here, we combined rigorous early leaf characterization, laser capture microdissection, and transcriptomic sequencing to ask how gene expression patterns regulate early leaf morphogenesis in wild-type tomato (Solanum lycopersicum) and the leaf morphogenesis mutant trifoliate. We observed transcriptional regulation of cell differentiation along the proximal-distal axis and identified molecular signatures delineating the classically defined marginal meristem/blastozone region during early leaf development. We describe the role of endoreduplication during leaf development, when and where leaf cells first achieve photosynthetic competency, and the regulation of auxin transport and signaling along the leaf axes. Knockout mutants of BLADE-ON-PETIOLE2 exhibited ectopic shoot apical meristem formation on leaves, highlighting the role of this gene in regulating margin tissue identity. We mapped gene expression signatures in specific leaf domains and evaluated the role of each domain in conferring indeterminacy and permitting blade outgrowth. Finally, we generated a global gene expression atlas of the early developing compound leaf.
机译:叶片形态发生涉及发育中叶片中的细胞分裂、扩张和分化,这些细胞在中外侧和近端-远端叶轴上以不同的速率和不同的位置发生。由于精确分离组织的困难,控制这些轴上细胞命运的基因表达变化仍然难以捉摸。在这里,我们结合严格的早期叶片表征、激光捕获显微切割和转录组测序来研究基因表达模式如何调节野生型番茄(Solanum lycopersicum)和叶片形态发生突变三叶番茄的早期叶片形态发生。我们观察了细胞分化沿近端-远端轴的转录调控,并确定了在早期叶片发育期间描绘经典定义的边缘分生组织/胚泡区的分子标记。我们描述了叶内复制在叶发育过程中的作用,叶细胞何时何地首次达到光合能力,以及生长素运输和信号沿着叶轴的调节。叶柄上叶片2的敲除突变体在叶片上表现出异位的茎尖分生组织形成,突出了该基因在调节边缘组织身份中的作用。我们绘制了特定叶片结构域的基因表达特征图,并评估了每个结构域在赋予不确定性和允许叶片生长方面的作用。最后,我们生成了早期发育的复叶的全球基因表达图谱。

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