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首页> 外文期刊>The Plant Cell >Constitutively Elevated Salicylic Acid Levels Alter Photosynthesis and Oxidative State but Not Growth in Transgenic Populus
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Constitutively Elevated Salicylic Acid Levels Alter Photosynthesis and Oxidative State but Not Growth in Transgenic Populus

机译:组成升高的水杨酸水平改变光合作用和氧化状态,但在转基因杨树中没有生长

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摘要

Salicylic acid (SA) has long been implicated in plant responses to oxidative stress. SA overproduction in Arabidopsis thaliana leads to dwarfism, making in planta assessment of SA effects difficult in this model system. We report that transgenic Populus tremula x 3 alba expressing a bacterial SA synthase hyperaccumulated SA and SA conjugates without negative growth consequences. In the absence of stress, endogenously elevated SA elicited widespread metabolic and transcriptional changes that resembled those of wild-type plants exposed to oxidative stress-promoting heat treatments. Potential signaling and oxidative stress markers azelaic and gluconic acids as well as antioxidant chlorogenic acids were strongly coregulated with SA, while soluble sugars and other phenylpropanoids were inversely correlated. Photosynthetic responses to heat were attenuated in SA-overproducing plants. Network analysis identified potential drivers of SA-mediated transcriptome rewiring, including receptor-like kinases and WRKY transcription factors. Orthologs of Arabidopsis SA signaling components NON-EXPRESSOR OF PATHOGENESIS-RELATED GENES1 and thioredoxins were not represented. However, all members of the expanded Populus nucleoredoxin-1 family exhibited increased expression and increased network connectivity in SA-overproducing Populus, suggesting a previously undescribed role in SA-mediated redox regulation. The SA response in Populus involved a reprogramming of carbon uptake and partitioning during stress that is compatible with constitutive chemical defense and sustained growth, contrasting with the SA response in Arabidopsis, which is transient and compromises growth if sustained.
机译:SALICYLIC酸(SA)长期涉及植物反应对氧化应激。拟南芥的生产过量生产导致侏儒症,在该模型系统中制作植物的评估SA效应。我们报告称,表达细菌SA合成酶超自累计SA和SA缀合物的转基因杨树X 3没有负增长后果。在没有压力的情况下,内源性升高的SA引发了广泛的代谢和转录变化,类似于暴露于氧化应激促进热处理的野生型植物的转录变化。潜在的信号传导和氧化应激标记物偶氮和葡萄糖酸以及抗氧化的绿原酸与SA强烈塑造,而可溶性糖和其他苯丙醇均呈逆转。在SA过量植物中衰减对热的光合反应。网络分析确定了SA介导的转录组重新挤出的潜在驱动因子,包括受体样激酶和衣物转录因子。拟南芥的原果表现出了发病机构相关基因1和硫氧化司的非富态。然而,扩张杨树核细胞素-1系列的所有成员都表现出增加的表达和苏丹过产杨树中的网络连接增加,表明在SA介导的氧化还原调节中先前未描述的作用。杨树中的SA反应涉及与构成化学防御和持续生长相容的应力期间的碳吸收和分区的重新编程,与拟南芥中的SA反应对比,这是瞬态的,如果持续存在增长。

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  • 来源
    《The Plant Cell》 |2013年第7期|共17页
  • 作者单位

    Univ Georgia Warnell Sch Forestry &

    Nat Resources Athens GA 30602 USA;

    Univ Georgia Warnell Sch Forestry &

    Nat Resources Athens GA 30602 USA;

    Michigan Technol Univ Sch Forest Resources &

    Environm Sci Houghton MI 49931 USA;

    Univ Georgia Warnell Sch Forestry &

    Nat Resources Athens GA 30602 USA;

    Univ Georgia Warnell Sch Forestry &

    Nat Resources Athens GA 30602 USA;

    Univ Georgia Inst Bioinformat Athens GA 30602 USA;

    Univ Georgia Warnell Sch Forestry &

    Nat Resources Athens GA 30602 USA;

    Univ Georgia Warnell Sch Forestry &

    Nat Resources Athens GA 30602 USA;

    Univ Georgia Warnell Sch Forestry &

    Nat Resources Athens GA 30602 USA;

    Univ Georgia Warnell Sch Forestry &

    Nat Resources Athens GA 30602 USA;

    Univ Georgia Warnell Sch Forestry &

    Nat Resources Athens GA 30602 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 植物细胞学;
  • 关键词

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