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首次窥探热胁迫接种后的番茄转录组反应 。 你提供的原文似乎不完整,“inoculated with”后面缺少具体内容。

First Peek into the Transcriptomic Response in Heat-Stressed Tomato Inoculated with .

作者信息

Szentpéteri Viktor, Virág Eszter, Mayer Zoltán, Duc Nguyen Hong, Hegedűs Géza, Posta Katalin

机构信息

Department of Microbiology and Applied Biotechnology, Institute of Genetics and Biotechnology, Hungarian University of Agriculture and Life Sciences, 2100 Gödöllő, Hungary.

Agribiotechnology and Precision Breeding for Food Security National Laboratory, Institute of Genetics and Biotechnology, Hungarian University of Agriculture and Life Sciences, 2100 Gödöllő, Hungary.

出版信息

Plants (Basel). 2024 Aug 15;13(16):2266. doi: 10.3390/plants13162266.

Abstract

In this study, we report the interaction between an arbuscular mycorrhizal fungus, , and tomato plants under heat stress. For the first time, this interaction was studied by Illumina RNA-seq, followed by a comprehensive bioinformatic analysis that investigated root and leaf tissue samples. The genome-wide transcriptional profiling displayed fewer transcriptomic changes in the root under heat-stress conditions caused by . The top 50 DEGs suggested significant changes in the expression of genes encoding heat-shock proteins, transporter proteins, and genes of phytohormone metabolism involving jasmonic acid signalling. induced the upregulation of genes associated with pathways such as 'drought-responsive' and the 'development of root hair' in the root, as well as 'glycolipid desaturation', 'intracellular auxin transport', and 'ethylene biosynthesis' in the leaf. The pathways 'biotin biosynthesis' and 'threonine degradation' were found in both investigated tissue types. Expression analysis of transcription factors showed 2 and 11 upregulated transcription factors in heat-stressed root and leaf tissues, respectively. However, we did not find shared transcription factors. Heat-stressed arbuscular mycorrhizal plants suffered less oxidative stress when exposed to high temperatures. Colorimetric tests demonstrated less accumulation of HO and MDA in heat-stressed mycorrhizal plants. This phenomenon was accompanied by the higher expression of six stress genes that encode peroxidases, glutathione S-transferase and ubiquitin carboxyl-terminal hydrolase in roots and leaves. Our findings provide a new perspective on elucidating the functional metabolic processes of tomato plants under mycorrhizal-heat stressed conditions.

摘要

在本研究中,我们报告了丛枝菌根真菌与番茄植株在热胁迫下的相互作用。首次通过Illumina RNA测序对这种相互作用进行了研究,随后进行了全面的生物信息学分析,对根和叶组织样本进行了研究。全基因组转录谱显示,在由……引起的热胁迫条件下,根中的转录组变化较少。前50个差异表达基因表明,编码热休克蛋白、转运蛋白以及涉及茉莉酸信号传导的植物激素代谢基因的表达发生了显著变化。……诱导了根中与“干旱响应”和“根毛发育”等途径相关的基因上调,以及叶中“糖脂去饱和”、“细胞内生长素运输”和“乙烯生物合成”相关基因的上调。在两种被研究的组织类型中都发现了“生物素生物合成”和“苏氨酸降解”途径。转录因子的表达分析显示,在热胁迫的根和叶组织中分别有2个和11个上调的转录因子。然而,我们没有发现共同的转录因子。热胁迫下的丛枝菌根植物在暴露于高温时遭受的氧化应激较小。比色试验表明,热胁迫下的菌根植物中HO和MDA的积累较少。这一现象伴随着根和叶中六个编码过氧化物酶、谷胱甘肽S-转移酶和泛素羧基末端水解酶的应激基因的高表达。我们的研究结果为阐明菌根-热胁迫条件下番茄植株的功能代谢过程提供了新的视角。

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