首页> 外文OA文献 >A Systems Analysis With “Simplified Source-Sink Model” Reveals Metabolic Reprogramming in a Pair of Source-to-Sink Organs During Early Fruit Development in Tomato by LED Light Treatments
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A Systems Analysis With “Simplified Source-Sink Model” Reveals Metabolic Reprogramming in a Pair of Source-to-Sink Organs During Early Fruit Development in Tomato by LED Light Treatments

机译:具有“简化源水槽模型”的系统分析显示,通过LED光处理在番茄早期果实开发期间,在番茄早期果实开发期间揭示了代谢重新编程

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摘要

Tomato (Solanum lycopersicum) is a model crop for studying development regulation and ripening in flesh fruits and vegetables. Supplementary light to maintain the optimal light environment can lead to the stable growth of tomatoes in greenhouses and areas without sufficient daily light integral. Technological advances in genome-wide molecular phenotyping have dramatically enhanced our understanding of metabolic shifts in the plant metabolism across tomato fruit development. However, comprehensive metabolic and transcriptional behaviors along the developmental process under supplementary light provided by light-emitting diodes (LEDs) remain to be fully elucidated. We present integrative omic approaches to identify the impact on the metabolism of a single tomato plant leaf exposed to monochromatic red LEDs of different intensities during the fruit development stage. Our special light delivery system, the “simplified source-sink model,” involves the exposure of a single leaf below the second truss to red LED light of different intensities. We evaluated fruit-size- and fruit-shape variations elicited by different light intensities. Our findings suggest that more than high-light treatment (500 μmol m-2 s-1) with the red LED light is required to accelerate fruit growth for 2 weeks after anthesis. To investigate transcriptomic and metabolomic changes in leaf- and fruit samples we used microarray-, RNA sequencing-, and gas chromatography-mass spectrometry techniques. We found that metabolic shifts in the carbohydrate metabolism and in several key pathways contributed to fruit development, including ripening and cell-wall modification. Our findings suggest that the proposed workflow aids in the identification of key metabolites in the central metabolism that respond to monochromatic red-LED treatment and contribute to increase the fruit size of tomato plants. This study expands our understanding of systems-level responses mediated by low-, appropriate-, and high levels of red light irradiation in the fruit growth of tomato plants.
机译:番茄(Solanum Lycopersicum)是研究发展调节和肉类水果和蔬菜成熟的模型作物。保持最佳光环境的补充光可以导致西红柿在温室和区域的稳定增长,没有足够的日常光线。基因组分子表型的技术进步大大提高了我们对番茄果实发展植物代谢的代谢变化的理解。然而,沿着发光二极管(LED)提供的补充光在发光二极管(LED)提供的辅助光线下的全面代谢和转录行为仍然被完全阐明。我们提出了综合的环境方法,以确定在果实开发阶段在不同强度的单色红色LED暴露于单色红色LED的单色红色LED的影响。我们的特殊光传递系统,“简化源水槽模型”,涉及在第二串以下的单片叶暴露于不同强度的红色LED光。我们评估了不同光强度引发的果实尺寸和果实形状的变化。我们的研究结果表明,在开花后2周内加速果实增长,需要多于高光处理(500μmolM-2S-1)。探讨叶片和水果样品中的转录组和代谢物变化,我们使用微阵列,RNA测序和气相色谱 - 质谱技术。我们发现碳水化合物代谢和几个关键途径中的代谢变化导致果实发育,包括成熟和细胞壁改性。我们的研究结果表明,拟议的工作流程有助于鉴定中央代谢的关键代谢产物,这些代谢反应单色红铅处理并有助于增加番茄植物的果实尺寸。本研究扩大了我们对由番茄植物果实生长的低,适当,高水平的红光照射介导的系统级响应的理解。

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