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远距离膨压变化诱导植物谷氨酸受体样通道的局部激活。

Long-distance turgor pressure changes induce local activation of plant glutamate receptor-like channels.

作者信息

Grenzi Matteo, Buratti Stefano, Parmagnani Ambra Selene, Abdel Aziz Ilaria, Bernacka-Wojcik Iwona, Resentini Francesca, Šimura Jan, Doccula Fabrizio Gandolfo, Alfieri Andrea, Luoni Laura, Ljung Karin, Bonza Maria Cristina, Stavrinidou Eleni, Costa Alex

机构信息

Department of Biosciences, University of Milan, via Celoria 26, 20133 Milano, Italy.

Laboratory of Organic Electronics, Department of Science and Technology, Linköping University, 601 74 Norrköping, Sweden.

出版信息

Curr Biol. 2023 Mar 27;33(6):1019-1035.e8. doi: 10.1016/j.cub.2023.01.042. Epub 2023 Feb 15.

Abstract

In Arabidopsis thaliana, local wounding and herbivore feeding provoke leaf-to-leaf propagating Ca waves that are dependent on the activity of members of the glutamate receptor-like channels (GLRs). In systemic tissues, GLRs are needed to sustain the synthesis of jasmonic acid (JA) with the subsequent activation of JA-dependent signaling response required for the plant acclimation to the perceived stress. Even though the role of GLRs is well established, the mechanism through which they are activated remains unclear. Here, we report that in vivo, the amino-acid-dependent activation of the AtGLR3.3 channel and systemic responses require a functional ligand-binding domain. By combining imaging and genetics, we show that leaf mechanical injury, such as wounds and burns, as well as hypo-osmotic stress in root cells, induces the systemic apoplastic increase of L-glutamate (L-Glu), which is largely independent of AtGLR3.3 that is instead required for systemic cytosolic Ca elevation. Moreover, by using a bioelectronic approach, we show that the local release of minute concentrations of L-Glu in the leaf lamina fails to induce any long-distance Ca waves.

摘要

在拟南芥中,局部创伤和食草动物取食会引发叶片间传播的钙波,这些钙波依赖于类谷氨酸受体通道(GLRs)成员的活性。在系统组织中,需要GLRs来维持茉莉酸(JA)的合成,随后激活植物适应感知到的胁迫所需的JA依赖性信号反应。尽管GLRs的作用已得到充分证实,但其激活机制仍不清楚。在这里,我们报告在体内,AtGLR3.3通道的氨基酸依赖性激活和系统反应需要一个功能性的配体结合结构域。通过结合成像和遗传学方法,我们表明叶片机械损伤,如伤口和烧伤,以及根细胞中的低渗胁迫,会诱导L-谷氨酸(L-Glu)在系统质外体中的增加,这在很大程度上不依赖于AtGLR3.3,而AtGLR3.3是系统胞质钙升高所必需的。此外,通过使用生物电子学方法,我们表明在叶片中局部释放微量浓度的L-Glu不会诱导任何长距离的钙波。

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