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OsSPX1表达量的增加增强了烟草和拟南芥对低温/亚冰点的耐受性。

Increased expression of OsSPX1 enhances cold/subfreezing tolerance in tobacco and Arabidopsis thaliana.

作者信息

Zhao Linna, Liu Fengxia, Xu Wenying, Di Chao, Zhou Shaoxia, Xue Yongbiao, Yu Jingjuan, Su Zhen

机构信息

State Key Laboratory for Agricultural Biotechnology, College of Biological Sciences, China Agricultural University, Beijing, China.

出版信息

Plant Biotechnol J. 2009 Aug;7(6):550-61. doi: 10.1111/j.1467-7652.2009.00423.x. Epub 2009 Jun 8.

Abstract

Low temperature is a major environmental stress for plants. Many important cultivated crops have limited capacity to survive below freezing/subfreezing temperatures. Low inorganic phosphate (Pi) is reportedly important in triggering cold acclimatization. SPX (SYG1/Pho81/XPR1: SYG1, suppressor of yeast gpal; Pho81, CDK inhibitor in yeast PHO pathway; XPR1, xenotropic and polytropic retrovirus receptor) domain proteins have been shown to be involved in the phosphate-related signal transduction and regulation pathways. Recently, Arabidopsis AtSPX family genes have been found to possess diverse functions in plant tolerance to phosphorus starvation, and OsSPX1 is involved in phosphate homeostasis in rice and optimizes growth under phosphate-limited conditions through a negative feedback loop. In this study, our phylogenetic and gene expression profiling approaches identified six rice OsSPX genes up-regulated during cold stress. Transgenic tobacco plants with constitutive expression of OsSPX1 were more tolerant to cold stress than were wild-type plants, and showed better seedling survival and reduced cellular electrolyte leakage. In addition, there was decreased total leaf Pi content and accumulation of free proline and sucrose in transgenic tobacco plants during cold stress. To further establish a cause-and-effect relationship between intracellular Pi level and cold acclimatization in transgenic plants, we generated transgenic Arabidopsis plants with constitutive expression of OsSPX1. Cold stress resulted in reduced leaf Pi levels in Arabidopsis transgenic relative to wild-type plants. From real-time reverse transcriptase-polymerase chain reaction analysis, several Pi starvation-related genes, such as AtSPX1 (orthologue of OsSPX1), PHO2, PLDZ2 and ATSIZ1, showed differential expression between wild-type and transgenic plants during cold stress. Our results indicate that OsSPX1 may play an important role in linking cold stress and Pi starvation signal transduction pathways.

摘要

低温是植物面临的主要环境胁迫。许多重要的栽培作物在冰点以下/亚冰点温度下的存活能力有限。据报道,低无机磷酸盐(Pi)在触发冷驯化过程中很重要。SPX(SYG1/Pho81/XPR1:SYG1,酵母gpal的抑制因子;Pho81,酵母PHO途径中的CDK抑制剂;XPR1,嗜异性和多嗜性逆转录病毒受体)结构域蛋白已被证明参与磷酸盐相关的信号转导和调控途径。最近,已发现拟南芥AtSPX家族基因在植物对磷饥饿的耐受性中具有多种功能,而OsSPX1参与水稻的磷酸盐稳态,并通过负反馈环在磷酸盐限制条件下优化生长。在本研究中,我们的系统发育和基因表达谱分析方法鉴定出六个在冷胁迫期间上调的水稻OsSPX基因。组成型表达OsSPX1的转基因烟草植株比野生型植株更耐冷胁迫,表现出更好的幼苗存活率和更低的细胞电解质渗漏。此外,在冷胁迫期间,转基因烟草植株的总叶片Pi含量降低,游离脯氨酸和蔗糖积累减少。为了进一步建立转基因植物细胞内Pi水平与冷驯化之间的因果关系,我们构建了组成型表达OsSPX1的转基因拟南芥植株。与野生型植株相比,冷胁迫导致拟南芥转基因植株的叶片Pi水平降低。通过实时逆转录-聚合酶链反应分析,几个与Pi饥饿相关的基因,如AtSPX1(OsSPX1的直系同源物)、PHO2、PLDZ2和ATSIZ1,在冷胁迫期间野生型和转基因植株之间表现出差异表达。我们的结果表明,OsSPX1可能在连接冷胁迫和Pi饥饿信号转导途径中起重要作用。

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