Gibberellin transport affects lateral root growth through HY5 in response to far-red light.

Kasper van Gelderen,Kyra van der Velde,Chia-Kai Kang,Jessy Hollander,Alicia Koppenol,Orfeas Petropoulos,Putri Prasetyaningrum,Tuğba Akyüz,Ronald Pierik
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Abstract

Plants compete for light by growing taller than their nearest competitors. This is part of the shade avoidance syndrome and is a response to an increase in far-red light (FR) reflected from neighboring leaves. The root responds to this shoot-sensed FR cue by reducing lateral root emergence. It is well established that the phytohormone gibberellic acid (GA) is involved in supplemental FR-induced shoot elongation. Although GA is transported from shoot to root, its role in regulating lateral root growth is unclear. Here, we chemically and genetically manipulated GA and showed that GA modulates the lateral root reduction induced by shoot-sensed FR enrichment in Arabidopsis (Arabidopsis thaliana). Using the FRET-based GA biosensor GPS1 (GIBBERELLIN PERCEPTION SENSOR 1), we observed detailed GA changes in the root upon shoot exposure to FR enrichment and upon GA application to the shoot. Supplying GA to the shoot mitigated the FR-enrichment-induced root phenotype, indicating a functional link between GA and changes in root development in response to shoot-sensed FR. The regulatory role of GA in root growth appears to be partially dependent on ELONGATED HYPOCOTYL 5 (HY5), a light-responsive transcription factor that regulates root growth. Shoot-to-root transported GA4 led to increased HY5 protein levels in the lateral root primordia. HY5 then repressed auxin signaling, which inhibited lateral root growth. Our data reveal a gibberellin-dependent mechanism through which above-ground FR light signals modulate lateral root growth, whereby phytohormone and light signaling coordinate development across spatial scales.
赤霉素通过HY5对远红光的响应影响侧根生长。
植物通过比最接近的竞争者长得更高来争夺光。这是避荫综合症的一部分,是对邻近树叶反射的远红光(FR)增加的反应。根系通过减少侧根的出苗来响应这种梢感FR提示。已经确定植物激素赤霉素(GA)参与了添加fr诱导的芽伸长。虽然GA从茎部转运到根,但其在调控侧根生长中的作用尚不清楚。本研究通过化学和遗传方法对拟南芥(Arabidopsis thaliana)进行调控,结果表明,GA可调节由茎部感测FR富集引起的侧根减少。利用基于fret的赤霉素感知传感器GPS1 (GIBBERELLIN PERCEPTION SENSOR 1),我们观察了芽部暴露于FR富集和芽部施用GA时根系GA的详细变化。向茎部提供GA可减轻FR富集诱导的根表型,这表明GA与响应于茎部感知FR的根发育变化之间存在功能联系。GA对根生长的调节作用似乎部分依赖于细长下胚轴5 (HY5),这是一种调节根生长的光响应转录因子。茎向根的GA4转运导致侧根原基中HY5蛋白水平升高。然后,HY5抑制生长素信号,从而抑制侧根生长。我们的数据揭示了一个依赖赤霉素的机制,通过该机制,地上FR光信号调节侧根生长,从而植物激素和光信号在空间尺度上协调发育。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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