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氨基酸代谢和碳水化合物代谢途径在番茄盐胁迫响应过程中发挥重要作用。

The Amino Acid Metabolic and Carbohydrate Metabolic Pathway Play Important Roles during Salt-Stress Response in Tomato.

作者信息

Zhang Zhi, Mao Cuiyu, Shi Zheng, Kou Xiaohong

机构信息

School of Food Science and Nutrition Engineering, China Agricultural UniversityBeijing, China.

School of Chemical Engineering and Technology, Tianjin UniversityTianjin, China.

出版信息

Front Plant Sci. 2017 Jul 17;8:1231. doi: 10.3389/fpls.2017.01231. eCollection 2017.

Abstract

Salt stress affects the plant quality, which affects the productivity of plants and the quality of water storage. In a recent study, we conducted the Technique for Order Preference by Similarity to Ideal Solution (TOPSIS) analysis and RNA-Seq, bioinformatics study methods, and detection of the key genes with qRT-PCR. Our findings suggested that the optimum salt treatment conditions are 200 mM and 19d for the identification of salt tolerance in tomato. Based on the RNA-Seq, we found 17 amino acid metabolic and 17 carbohydrate metabolic pathways enriched in the biological metabolism during the response to salt stress in tomato. We found 7 amino acid metabolic and 6 carbohydrate metabolic pathways that were significantly enriched in the adaption to salt stress. Moreover, we screened 17 and 19 key genes in 7 amino acid metabolic and 6 carbohydrate metabolic pathways respectively. We chose some of the key genes for verifying by qRT-PCR. The results showed that the expression of these genes was the same as that of RNA-seq. We found that these significant pathways and vital genes occupy an important roles in a whole process of adaptation to salt stress. These results provide valuable information, improve the ability to resist pressure, and improve the quality of the plant.

摘要

盐胁迫会影响植物品质,进而影响植物的生产力及储水质量。在最近的一项研究中,我们采用了逼近理想解排序法(TOPSIS)分析以及RNA测序、生物信息学研究方法,并通过qRT-PCR检测关键基因。我们的研究结果表明,番茄耐盐性鉴定的最佳盐处理条件为200 mM和19天。基于RNA测序,我们发现番茄在响应盐胁迫期间,生物代谢中有17条氨基酸代谢途径和17条碳水化合物代谢途径富集。我们发现7条氨基酸代谢途径和6条碳水化合物代谢途径在适应盐胁迫过程中显著富集。此外,我们分别在7条氨基酸代谢途径和6条碳水化合物代谢途径中筛选出了17个和19个关键基因。我们选择了一些关键基因通过qRT-PCR进行验证。结果表明,这些基因的表达与RNA测序结果一致。我们发现这些重要途径和关键基因在整个盐胁迫适应过程中发挥着重要作用。这些结果提供了有价值的信息,提高了植物的抗压能力,改善了植物品质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f196/5511834/38b9aeee86bd/fpls-08-01231-g0001.jpg

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