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在快速伸长的组织中可视化体内赤霉素梯度。

In vivo gibberellin gradients visualized in rapidly elongating tissues.

机构信息

Sainsbury Laboratory, Cambridge University, Cambridge, UK.

Carnegie Institution for Science, Department of Plant Biology, Stanford, CA, USA.

出版信息

Nat Plants. 2017 Oct;3(10):803-813. doi: 10.1038/s41477-017-0021-9. Epub 2017 Oct 2.

DOI:10.1038/s41477-017-0021-9
PMID:28970478
Abstract

The phytohormone gibberellin (GA) is a key regulator of plant growth and development. Although the upstream regulation and downstream responses to GA vary across cells and tissues, developmental stages and environmental conditions, the spatiotemporal distribution of GA in vivo remains unclear. Using a combinatorial screen in yeast, we engineered an optogenetic biosensor, GIBBERELLIN PERCEPTION SENSOR 1 (GPS1), that senses nanomolar levels of bioactive GAs. Arabidopsis thaliana plants expressing a nuclear localized GPS1 report on GAs at the cellular level. GA gradients were correlated with gradients of cell length in rapidly elongating roots and dark-grown hypocotyls. In roots, accumulation of exogenously applied GA also correlated with cell length, intimating that a root GA gradient can be established independently of GA biosynthesis. In hypocotyls, GA levels were reduced in a phytochrome interacting factor (pif) quadruple mutant in the dark and increased in a phytochrome double mutant in the light, indicating that PIFs elevate GA in the dark and that phytochrome inhibition of PIFs could lower GA in the light. As GA signalling directs hypocotyl elongation largely through promoting PIF activity, PIF promotion of GA accumulation represents a positive feedback loop within the molecular framework driving rapid hypocotyl growth.

摘要

植物激素赤霉素(GA)是植物生长和发育的关键调节剂。虽然 GA 的上游调控和下游响应在细胞和组织、发育阶段和环境条件上存在差异,但体内 GA 的时空分布仍不清楚。我们通过酵母的组合筛选,设计了一种光遗传生物传感器 GIBBERELLIN PERCEPTION SENSOR 1(GPS1),它可以感应生物活性 GA 的纳米级水平。表达核定位 GPS1 的拟南芥植物可以在细胞水平上报告 GA。GA 梯度与快速伸长的根和黑暗生长的下胚轴中的细胞长度梯度相关。在根中,外源施加的 GA 的积累也与细胞长度相关,暗示根 GA 梯度可以独立于 GA 生物合成而建立。在黑暗中,phytochrome interacting factor(pif)四重突变体中的 GA 水平降低,而在光中 phytochrome 双突变体中的 GA 水平升高,表明 PIFs 在黑暗中升高 GA,phytochrome 抑制 PIFs 可以在光中降低 GA。由于 GA 信号转导主要通过促进 PIF 活性来指导下胚轴伸长,因此 PIF 促进 GA 积累代表了驱动快速下胚轴生长的分子框架内的正反馈回路。

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In vivo gibberellin gradients visualized in rapidly elongating tissues.在快速伸长的组织中可视化体内赤霉素梯度。
Nat Plants. 2017 Oct;3(10):803-813. doi: 10.1038/s41477-017-0021-9. Epub 2017 Oct 2.
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