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首页> 外文期刊>Current Biology: CB >Patterns of auxin transport and gene expression during primordium development revealed by live imaging of the Arabidopsis inflorescence meristem
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Patterns of auxin transport and gene expression during primordium development revealed by live imaging of the Arabidopsis inflorescence meristem

机译:拟南芥花序分生组织的实时成像揭示了原基发育过程中生长素运输和基因表达的模式

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BACKGROUND: Plants produce leaf and flower primordia from a specialized tissue called the shoot apical meristem (SAM). Genetic studies have identified a large number of genes that affect various aspects of primordium development including positioning, growth, and differentiation. So far, however, a detailed understanding of the spatio-temporal sequence of events leading to primordium development has not been established. RESULTS: We use confocal imaging of green fluorescent protein (GFP) reporter genes in living plants to monitor the expression patterns of multiple proteins and genes involved in flower primordial developmental processes. By monitoring the expression and polarity of PINFORMED1 (PIN1), the auxin efflux facilitator, and the expression of the auxin-responsive reporter DR5, we reveal stereotypical PIN1 polarity changes which, together with auxin induction experiments, suggest that cycles of auxin build-up and depletion accompany, and may direct, different stages of primordium development. Imaging of multiple GFP-protein fusions shows that these dynamics also correlate with the specification of primordial boundary domains, organ polarity axes, and the sites of floral meristem initiation. CONCLUSIONS: These results provide new insight into auxin transport dynamics during primordial positioning and suggest a role for auxin transport in influencing primordial cell type.
机译:背景:植物从称为芽顶端分生组织(SAM)的特殊组织中产生叶片和花朵的原基。遗传研究已经鉴定出许多影响原基发育各个方面的基因,包括定位,生长和分化。然而,到目前为止,尚未建立对导致原基发育的事件的时空顺序的详细理解。结果:我们使用共聚焦成像的绿色荧光蛋白(GFP)报告基因在活植物中,以监测多种蛋白质和基因参与花原始发育过程的表达模式。通过监测PINFORMED1(PIN1),植物生长素外排促进子的表达和极性以及植物生长素反应性报告基因DR5的表达,我们揭示了典型的PIN1极性变化,并与植物生长素诱导实验一起表明植物生长素积累的周期和耗竭伴随着并可能指导着原基发育的不同阶段。多个GFP-蛋白融合物的成像显示,这些动力学也与原始边界域,器官极性轴和花分生组织起始位点的规格相关。结论:这些结果提供了对原始定位过程中生长素转运动力学的新见解,并暗示了生长素转运在影响原始细胞类型中的作用。

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