Shemyakin-Ovchinnikov Institute of Bioorganic Chemistry of the Russian Academy of Sciences, Moscow, Russian Federation.
Belozersky Institute of Physico-chemical Biology, Lomonosov Moscow State University, Moscow, Russian Federation.
Mol Plant Pathol. 2021 Jan;22(1):77-91. doi: 10.1111/mpp.13009. Epub 2020 Nov 4.
Plant-virus interactions are greatly influenced by environmental factors such as temperatures. In virus-infected plants, enhanced temperature is frequently associated with more severe symptoms and higher virus content. However, the mechanisms involved in such regulatory effects remain largely uncharacterized. To provide more insight into the mechanisms whereby temperature regulates plant-virus interactions, we analysed changes in the proteome of potato cv. Chicago plants infected with potato virus Y (PVY) at normal (22 °C) and elevated temperature (28 °C), which is known to significantly increase plant susceptibility to the virus. One of the most intriguing findings is that the main enzymes of the methionine cycle (MTC) were down-regulated at the higher but not at normal temperatures. With good agreement, we found that higher temperature conditions triggered consistent and concerted changes in the level of MTC metabolites, suggesting that the enhanced susceptibility of potato plants to PVY at 28 °C may at least be partially orchestrated by the down-regulation of MTC enzymes and concomitant cycle perturbation. In line with this, foliar treatment of these plants with methionine restored accumulation of MTC metabolites and subverted the susceptibility to PVY at elevated temperature. These data are discussed in the context of the major function of the MTC in transmethylation processes.
植物-病毒相互作用受环境因素(如温度)的极大影响。在感染病毒的植物中,温度升高通常与更严重的症状和更高的病毒含量有关。然而,这种调节作用的机制在很大程度上仍未被描述。为了更深入地了解温度调节植物-病毒相互作用的机制,我们分析了在正常(22°C)和升高温度(28°C)下感染马铃薯 Y 病毒(PVY)的马铃薯 cv. Chicago 植株的蛋白质组变化,已知升高温度会显著增加植物对病毒的易感性。最有趣的发现之一是,蛋氨酸循环(MTC)的主要酶在较高温度下而非正常温度下下调。我们发现,较高的温度条件引发了 MTC 代谢物水平的一致和协同变化,这表明马铃薯植株在 28°C 时对 PVY 的易感性增强至少部分是由 MTC 酶的下调和伴随的循环干扰协调的。与此一致的是,用蛋氨酸对这些植物进行叶面处理恢复了 MTC 代谢物的积累,并在高温下逆转了对 PVY 的易感性。这些数据在 MTC 在转甲基化过程中的主要功能的背景下进行了讨论。