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渗透胁迫、温度和脱落酸在拟南芥基因表达调控中的相互作用

Interaction of osmotic stress, temperature, and abscisic acid in the regulation of gene expression in Arabidopsis.

作者信息

Xiong L, Ishitani M, Zhu J K

机构信息

Department of Plant Sciences, University of Arizona, Tucson, Arizona 85721, USA.

出版信息

Plant Physiol. 1999 Jan;119(1):205-12. doi: 10.1104/pp.119.1.205.

Abstract

The impact of simultaneous environmental stresses on plants and how they respond to combined stresses compared with single stresses is largely unclear. By using a transgene (RD29A-LUC) consisting of the firefly luciferase coding sequence (LUC) driven by the stress-responsive RD29A promoter, we investigated the interactive effects of temperature, osmotic stress, and the phytohormone abscisic acid (ABA) in the regulation of gene expression in Arabidopsis seedlings. Results indicated that both positive and negative interactions exist among the studied stress factors in regulating gene expression. At a normal growth temperature (22 degrees C), osmotic stress and ABA act synergistically to induce the transgene expression. Low temperature inhibits the response to osmotic stress or to combined treatment of osmotic stress and ABA, whereas low temperature and ABA treatments are additive in inducing transgene expression. Although high temperature alone does not activate the transgene, it significantly amplifies the effects of ABA and osmotic stress. The effect of multiple stresses in the regulation of RD29A-LUC expression in signal transduction mutants was also studied. The results are discussed in the context of cold and osmotic stress signal transduction pathways.

摘要

同时存在的环境胁迫对植物的影响,以及与单一胁迫相比它们如何应对复合胁迫,目前很大程度上尚不清楚。通过使用一种由应激反应性RD29A启动子驱动的萤火虫荧光素酶编码序列(LUC)组成的转基因(RD29A-LUC),我们研究了温度、渗透胁迫和植物激素脱落酸(ABA)在拟南芥幼苗基因表达调控中的相互作用。结果表明,在研究的胁迫因子之间,在调控基因表达方面既存在正向相互作用也存在负向相互作用。在正常生长温度(22摄氏度)下,渗透胁迫和ABA协同作用诱导转基因表达。低温抑制对渗透胁迫或渗透胁迫与ABA联合处理的反应,而低温和ABA处理在诱导转基因表达方面具有累加效应。虽然单独高温不会激活转基因,但它会显著放大ABA和渗透胁迫的效应。还研究了多种胁迫对信号转导突变体中RD29A-LUC表达调控的影响。在低温和渗透胁迫信号转导途径的背景下对结果进行了讨论。

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