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Transcriptional responses of Medicago truncatula upon sulfur deficiency stress and arbuscular mycorrhizal symbiosis

机译:ca藜对硫缺乏胁迫和丛枝菌根共生的转录响应

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摘要

Sulfur plays an essential role in plants' growth and development and in their response to various abiotic and biotic stresses despite its leachability and its very low abundance in the only form that plant roots can uptake (sulfate). It is part of amino acids, glutathione (GSH), thiols of proteins and peptides, membrane sulfolipids, cell walls and secondary products, so reduced availability can drastically alter plant growth and development. The nutritional benefits of symbiotic interactions can help the plant in case of S deficiency. In particular the arbuscular mycorrhizal (AM) interaction improves N, P, and S plant nutrition, but the mechanisms behind these exchanges are not fully known yet. Although the transcriptional changes in the leguminous model plant Medicago truncatula have been already assessed in several biotic and/or abiotic conditions, S deficiency has not been considered so far. The aim of this work is to get a first overview on S-deficiency responses in the leaf and root tissues of plants interacting with the AM fungus Rhizophagus irregularis. Several hundred genes displayed significantly different transcript accumulation levels. Annotation and GO ID association were used to identify biological processes and molecular functions affected by sulfur starvation. Beside the beneficial effects of AM interaction, plants were greatly affected by the nutritional status, showing various differences in their transcriptomic footprints. Several pathways in which S plays an important role appeared to be differentially affected according to mycorrhizal status, with a generally reduced responsiveness to S deficiency in mycorrhized plants.
机译:硫在植物的生长和发育以及对各种非生物和生物胁迫的响应中起着至关重要的作用,尽管硫具有浸出性,并且其丰度非常低,只有植物根部才能吸收(硫酸盐)。它是氨基酸,谷胱甘肽(GSH),蛋白质和肽的硫醇,膜硫脂,细胞壁和二级产物的一部分,因此,利用率降低会大大改变植物的生长发育。在缺乏硫的情况下,共生相互作用的营养益处可以帮助植物。尤其是丛枝菌根(AM)相互作用可改善N,P和S植物的营养,但这些交换背后的机制尚不完全清楚。尽管已经在几种生物和/或非生物条件下评估了豆科模型植物苜蓿苜蓿(Medicago truncatula)的转录变化,但迄今为止尚未考虑到S缺乏症。这项工作的目的是对与AM真菌不规则根瘤菌相互作用的植物的叶和根组织中的S缺乏应答进行初步概述。数百个基因显示出明显不同的转录本积累水平。注释和GO ID关联用于鉴定受硫饥饿影响的生物过程和分子功能。除了AM相互作用的有益作用外,植物还受到营养状况的极大影响,其转录组足迹显示出各种差异。 S在其中起重要作用的几种途径似乎根据菌根状态而受到不同的影响,在菌根植物中,对S缺乏的反应性通常降低。

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