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首页> 外文期刊>PLoS Genetics >Penetration of the Stigma and Style Elicits a Novel Transcriptome in Pollen Tubes, Pointing to Genes Critical for Growth in a Pistil
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Penetration of the Stigma and Style Elicits a Novel Transcriptome in Pollen Tubes, Pointing to Genes Critical for Growth in a Pistil

机译:耻辱和风格的渗透在花粉管中引发了一种新的转录组,指向对雌蕊生长至关重要的基因

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Pollen tubes extend through pistil tissues and are guided to ovules where they release sperm for fertilization. Although pollen tubes can germinate and elongate in a synthetic medium, their trajectory is random and their growth rates are slower compared to growth in pistil tissues. Furthermore, interaction with the pistil renders pollen tubes competent to respond to guidance cues secreted by specialized cells within the ovule. The molecular basis for this potentiation of the pollen tube by the pistil remains uncharacterized. Using microarray analysis in Arabidopsis, we show that pollen tubes that have grown through stigma and style tissues of a pistil have a distinct gene expression profile and express a substantially larger fraction of the Arabidopsis genome than pollen grains or pollen tubes grown in vitro. Genes involved in signal transduction, transcription, and pollen tube growth are overrepresented in the subset of the Arabidopsis genome that is enriched in pistil-interacted pollen tubes, suggesting the possibility of a regulatory network that orchestrates gene expression as pollen tubes migrate through the pistil. Reverse genetic analysis of genes induced during pollen tube growth identified seven that had not previously been implicated in pollen tube growth. Two genes are required for pollen tube navigation through the pistil, and five genes are required for optimal pollen tube elongation in vitro. Our studies form the foundation for functional genomic analysis of the interactions between the pollen tube and the pistil, which is an excellent system for elucidation of novel modes of cell–cell interaction.
机译:花粉管通过雌蕊组织延伸,并被引导到卵子,在那里它们释放精子的施肥。虽然花粉管可以在合成培养基中发芽和细长,但它们的轨迹是随机的,并且与雌蕊组织的生长相比,它们的生长速率慢。此外,与雌蕊的相互作用使花粉管称职,以应对胚珠内的专用细胞分泌的指导提示。通过雌蕊对花粉管的这种潜力的分子基础保持不表达。在拟南芥中使用微阵列分析,我们表明,通过裂缝和雌蕊的风格组织生长的花粉管具有不同的基因表达谱,表达了比在体外种植的花粉颗粒或花粉管的基本上更大的拟南芥基因组。参与信号转导,转录和花粉管生长的基因在拟拟合在雌蕊 - 相互作用的花粉管中富集的拟南芥基因组的副本中,表明作为花粉管通过雌蕊迁移的调节网络的可能性。花粉管生长期间诱导基因的逆向遗传分析确定了七种,以前没有涉及花粉管生长。通过雌蕊,花粉管导航需要两种基因,并且在体外最佳花粉管伸长率为5个基因。我们的研究表明了花粉管和雌蕊之间的相互作用的功能基因组分析的基础,这是一种优异的细胞 - 细胞相互作用模式的阐明系统。

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