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首页> 外文期刊>Plant Molecular Biology >RNAi-mediated suppression of isoprene emission in poplar transiently impacts phenolic metabolism under high temperature and high light intensities: A transcriptomic and metabolomic analysis
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RNAi-mediated suppression of isoprene emission in poplar transiently impacts phenolic metabolism under high temperature and high light intensities: A transcriptomic and metabolomic analysis

机译:RNAi介导的杨树中异戊二烯释放的抑制瞬时影响高温和高光强度下的酚类代谢:转录组和代谢组学分析

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In plants, isoprene plays a dual role: (a) as thermo-protective agent proposed to prevent degradation of enzymes/membrane structures involved in photosynthesis, and (b) as reactive molecule reducing abiotic oxidative stress. The present work addresses the question whether suppression of isoprene emission interferes with genome wide transcription rates and metabolite fluxes in grey poplar (Populusxcanescens) throughout the growing season. Gene expression and metabolite profiles of isoprene emitting wild type plants and RNAi-mediated non-isoprene emitting poplars were compared by using poplar Affymetrix microarrays and non-targeted FT-ICR-MS (Fourier transform ion cyclotron resonance mass spectrometry). We observed a transcriptional down-regulation of genes encoding enzymes of phenylpropanoid regulatory and biosynthetic pathways, as well as distinct metabolic down-regulation of condensed tannins and anthocyanins, in non-isoprene emitting genotypes during July, when high temperature and light intensities possibly caused transient drought stress, as indicated by stomatal closure. Under these conditions leaves of non-isoprene emitting plants accumulated hydrogen peroxide (H_2O_2), a signaling molecule in stress response and negative regulator of anthocyanin biosynthesis. The absence of isoprene emission under high temperature and light stress resulted transiently in a new chemo(pheno)type with suppressed production of phenolic compounds. This may compromise inducible defenses and may render non-isoprene emitting poplars more susceptible to environmental stress.
机译:在植物中,异戊二烯具有双重作用:(a)作为热保护剂,可防止光合作用中涉及的酶/膜结构的降解,(b)作为减少非生物氧化应激的反应性分子。本工作解决了异戊二烯排放的抑制是否干扰整个生长季节灰杨(Populusxcanescens)中的全基因组转录率和代谢产物通量的问题。通过使用杨树Affymetrix微阵列和非靶向FT-ICR-MS(傅里叶变换离子回旋共振质谱法)比较了发射异戊二烯的野生型植物和发射RNAi的非异戊二烯的杨树的基因表达和代谢谱。我们观察到在7月非异戊二烯发射基因型中,编码苯丙烷调节和生物合成途径的酶的基因的转录下调,以及缩合单宁和花色苷的独特代谢下调,而高温和光照强度可能引起瞬时如气孔关闭所指示的干旱胁迫。在这些条件下,非异戊二烯发射植物的叶子中积累了过氧化氢(H_2O_2),过氧化氢是应激反应中的信号分子,并且是花色苷生物合成的负调节剂。在高温和轻度压力下不存在异戊二烯释放会导致一种新的化学(苯酚)型瞬态现象,从而抑制了酚类化合物的产生。这可能会损害诱导防御能力,并可能使散发异戊二烯的杨树更易受到环境压力的影响。

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