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一种新型传感器,可实现高时空分辨率的生长素响应和分布测绘。

A novel sensor to map auxin response and distribution at high spatio-temporal resolution.

机构信息

Laboratoire de Reproduction et Développement des Plantes, CNRS, INRA, ENS Lyon, UCBL, Université de Lyon, 69364 Lyon, France.

出版信息

Nature. 2012 Jan 15;482(7383):103-6. doi: 10.1038/nature10791.

Abstract

Auxin is a key plant morphogenetic signal but tools to analyse dynamically its distribution and signalling during development are still limited. Auxin perception directly triggers the degradation of Aux/IAA repressor proteins. Here we describe a novel Aux/IAA-based auxin signalling sensor termed DII-VENUS that was engineered in the model plant Arabidopsis thaliana. The VENUS fast maturing form of yellow fluorescent protein was fused in-frame to the Aux/IAA auxin-interaction domain (termed domain II; DII) and expressed under a constitutive promoter. We initially show that DII-VENUS abundance is dependent on auxin, its TIR1/AFBs co-receptors and proteasome activities. Next, we demonstrate that DII-VENUS provides a map of relative auxin distribution at cellular resolution in different tissues. DII-VENUS is also rapidly degraded in response to auxin and we used it to visualize dynamic changes in cellular auxin distribution successfully during two developmental responses, the root gravitropic response and lateral organ production at the shoot apex. Our results illustrate the value of developing response input sensors such as DII-VENUS to provide high-resolution spatio-temporal information about hormone distribution and response during plant growth and development.

摘要

生长素是一种关键的植物形态发生信号,但分析其在发育过程中动态分布和信号转导的工具仍然有限。生长素的感知直接触发Aux/IAA 抑制蛋白的降解。在这里,我们描述了一种新型的基于 Aux/IAA 的生长素信号传感器,称为 DII-VENUS,它是在模式植物拟南芥中构建的。黄色荧光蛋白的 VENUS 快速成熟形式被融合到 Aux/IAA 生长素相互作用结构域(称为结构域 II;DII)中,并在组成型启动子下表达。我们最初表明,DII-VENUS 的丰度依赖于生长素、其 TIR1/AFBs 共受体和蛋白酶体活性。接下来,我们证明 DII-VENUS 以细胞分辨率提供了不同组织中相对生长素分布的图谱。DII-VENUS 也能快速响应生长素而降解,我们成功地用它来可视化两个发育反应过程中细胞内生长素分布的动态变化,即根的向重力性反应和茎尖侧生器官的产生。我们的结果表明,开发响应输入传感器,如 DII-VENUS,对于提供有关植物生长和发育过程中激素分布和响应的高分辨率时空信息具有重要价值。

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