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A Multi-OMICs Approach Sheds Light on the Higher Yield Phenotype and Enhanced Abiotic Stress Tolerance in Tobacco Lines Expressing the Carrot lycopene β-cyclase1 Gene

机译:一种多OMICS方法在表达胡萝卜番茄红素β-Cyclase1基因的烟草线中提高产量表型和增强的非生物胁迫耐受性

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摘要

Recently, we published a set of tobacco lines expressing the Daucus carota (carrot) DcLCYB1 gene with accelerated development, increased carotenoid content, photosynthetic efficiency, and yield. Because of this development, DcLCYB1 expression might be of general interest in crop species as a strategy to accelerate development and increase biomass production under field conditions. However, to follow this path, a better understanding of the molecular basis of this phenotype is essential. Here, we combine OMICs (RNAseq, proteomics, and metabolomics) approaches to advance our understanding of the broader effect of LCYB expression on the tobacco transcriptome and metabolism. Upon DcLCYB1 expression, the tobacco transcriptome (~2,000 genes), proteome (~700 proteins), and metabolome (26 metabolites) showed a high number of changes in the genes involved in metabolic processes related to cell wall, lipids, glycolysis, and secondary metabolism. Gene and protein networks revealed clusters of interacting genes and proteins mainly involved in ribosome and RNA metabolism and translation. In addition, abiotic stress-related genes and proteins were mainly upregulated in the transgenic lines. This was well in line with an enhanced stress (high light, salt, and H2O2) tolerance response in all the transgenic lines compared with the wild type. Altogether, our results show an extended and coordinated response beyond the chloroplast (nucleus and cytosol) at the transcriptome, proteome, and metabolome levels, supporting enhanced plant growth under normal and stress conditions. This final evidence completes the set of benefits conferred by the expression of the DcLCYB1 gene, making it a very promising bioengineering tool to generate super crops.
机译:最近,我们发表了一组表达Daucus Carota(胡萝卜)DCLCYB1基因的一组烟草线,加速发育,类胡萝卜素含量增加,光合效率和产量。由于这种发展,DCLCYB1表达可能对作物物种的一般兴趣是加速发展的策略,并在现场条件下增加生物量产量。然而,为了遵循这条路径,更好地了解这种表型的分子基础是必不可少的。在这里,我们结合OMICS(RNASEQ,蛋白质组学和代谢组科)来推进我们对LCYB表达对烟草转录组和代谢的更广泛影响的理解。在DCLCYB1表达时,烟草转录组(〜2,000个基因),蛋白质组(〜700蛋白)和代谢物(26代谢物)显示出与细胞壁,脂质,糖酵解和中学有关的代谢过程中的基因的大量变化代谢。基因和蛋白质网络揭示了主要参与核糖体和RNA代谢和翻译的相互作用基因和蛋白质的簇。此外,主要在转基因系中升高无生物胁迫相关基因和蛋白质。与野生型相比,这与所有转基因系列中的增强的应力(高光,盐和H2O2)耐受性响应有关。完全,我们的结果表明,在转录组,蛋白质组和代谢物水平的叶绿体(核和胞嘧啶)之外,在正常和胁迫条件下支持增强的植物生长,展示了超出叶绿体(核和胞嘧啶)的延长和协调的响应。这一最终证据完成了DCLCYB1基因表达赋予的一组益处,使其成为一种非常有前途的生物工程,以产生超级作物。

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