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Genome-wide transcriptome and proteome analyses of tobacco psaA and psbA deletion mutants

机译:烟草psaA和psbA缺失突变体的全基因组转录组和蛋白质组分析

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摘要

Photosynthesis in higher land plants is a complex process involving several proteins encoded by both nuclear and chloroplast genomes that require a highly coordinated gene expression. Significant changes in plastid differentiation and biochemical processes are associated with the deletion of chloroplast genes. In this study we report the genome-wide responses caused by the deletion of tobacco psaA and psbA genes coding core components of photosystem I (PSI) and photosystem II (PSII), respectively, generated through a chloroplast genetic engineering approach. Transcriptomic and quantitative proteomic analysis showed the down regulation of specific groups of nuclear and chloroplast genes involved in photosynthesis, energy metabolism and chloroplast biogenesis. Moreover, our data show simultaneous activation of several defense and stress responsive genes including those involved in reactive oxygen species (ROS) scavenging mechanisms. A major finding is the differential transcription of the plastome of deletion mutants: genes known to be transcribed by the plastid encoded polymerase (PEP) were generally down regulated while those transcribed by the nuclear encoded polymerase (NEP) were up regulated, indicating simultaneous activation of multiple signaling pathways in response to disruption of PSI and PSII complexes. The genome wide transcriptomic and proteomic analysis of the.ΔpsaA and ΔpsbA deletion mutants revealed a simultaneous up and down regulation of the specific groups of genes located in nucleus and chloroplasts suggesting a complex circuitry involving both retrograde and anterograde signaling mechanisms responsible for the coordinated expression of nuclear and chloroplast genomes.
机译:高地植物的光合作用是一个复杂的过程,涉及核和叶绿体基因组编码的几种蛋白质,需要高度协调的基因表达。质体分化和生化过程的重大变化与叶绿体基因的缺失有关。在这项研究中,我们报告了由叶绿体基因工程方法分别产生的编码光系统I(PSI)和光系统II(PSII)核心成分的烟草psaA和psbA基因缺失引起的全基因组响应。转录组学和定量蛋白质组学分析表明,参与光合作用,能量代谢和叶绿体生物发生的特定组的核和叶绿体基因被下调。此外,我们的数据显示了几种防御和应激反应基因的同时激活,包括那些参与活性氧清除机制的基因。一个主要发现是缺失突变体的塑性组的差异转录:已知被质体编码的聚合酶(PEP)转录的基因通常被下调,而被核编码的聚合酶(NEP)转录的基因被上调,表明同时激活多种信号通路响应PSI和PSII复合物的破坏。 ΔpsaA和ΔpsbA缺失突变体的全基因组转录组和蛋白质组学分析揭示了同时调节细胞核和叶绿体中特定基因组的上调和下调,这表明涉及逆行和顺行信号机制的复杂电路负责协调表达。核和叶绿体基因组。

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