代谢组学分析揭示了硅诱导水稻抗草食的机制

IF 1.2 3区 农林科学 Q3 ENTOMOLOGY
Chengzhen Gu, Mengmeng Wang, Yangzheng Lin, Yujia Zhang, Afsar Khan, Yuanyuan Song, Rensen Zeng
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引用次数: 0

摘要

每年因虫害造成的水稻损失约占总产量的30%,传统农药的使用带来了环境污染、食品安全等问题。利用水稻次生代谢物防治害虫已成为研究热点,但对水稻自抗的机制了解甚少。水稻是典型的硅富集作物。以往研究表明,硅能显著增强水稻对螟蛾的抗性,但硅处理水稻的抗虫活性物质尚不清楚。本研究对两组水稻进行了代谢组学分析(T1组,硅和昆虫处理;T3,仅用昆虫处理)。与T3组相比,T1组有23个代谢物显著上调,128个代谢物显著下调。不同代谢产物主要富集于色氨酸代谢、硫辛酸代谢、亚油酸代谢、异黄酮生物合成和吲哚生物碱生物合成。不同富集于硫辛酸代谢和脂肪酸生物合成的代谢物(p < 0.1)均显著上调。从T1中选择了10个显著上调的不同代谢物。分别为3-羟基棕榈酸甲酯(1)、辛酸(2)、3-羟基十八烷酸(3)、12-羟基十八烷酸(4)、2-亚油基甘油(5)、甲基丁香酚(6)、α -细辛酮(7)、2,4,5-三甲氧基苯甲醛(8)、阿维甲素(9)、甲萘醌(10),并对其抗虫活性进行了评价。化合物1 ~ 5和7 ~ 10均能显著抑制辣椒的生长。化合物2和3对昆虫生长的抑制作用分别为35.5%和64.5%。化合物2属于硫辛酸代谢和脂肪酸生物合成。我们推测硅正调控硫辛酸和脂肪酸的代谢途径,从而增强水稻的抗虫能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Metabolomic profiling reveals the anti-herbivore mechanism of rice (Oryza sativa) induced by silicon

Metabolomic profiling reveals the anti-herbivore mechanism of rice (Oryza sativa) induced by silicon

Annual loss of rice caused by insect pests accounts for about 30% of total production, and the use of traditional pesticides has brought about environmental pollution, food safety, and other problems. The use of secondary metabolites of rice to control pests has become a research hotspot, but little is known about the mechanism of rice self-resistance. Rice is a typical silicon accumulating crop. Previous study showed that silicon can significantly enhance the resistance of rice to Chilo suppressalis, but anti-insect active substances in silicon-treated rice were unknown. In current study, metabolomics analysis has been performed on two groups of rice (T1, treated with silicon and insect; T3, treated with only insect). A total of 151 significantly different metabolites were obtained, compared with T3 group, 23 metabolites in T1 were significantly up-regulated and 128 metabolites were significantly down-regulated. Different metabolites were mainly enriched to tryptophan metabolism, lipoic acid metabolism, linoleic acid metabolism, isoflavone biosynthesis, and indole alkaloid biosynthesis. The different metabolites (p < 0.1) enriched to lipoic acid metabolism and fatty acid biosynthesis were all significantly up-regulated. Ten significantly up-regulated different metabolites were selected from T1. These were 3-hydroxy-palmitic acid methyl ester (1), octanoic acid (2), 3-hydroxyoctadecanoic acid (3), 12-hydroxyoctadecanoic acid (4), 2-linoleoylglycerol (5), methyleugenol (6), alpha-asarone (7), 2,4,5-trimethoxybenzaldehyde (8), acitretin (9), and menatetrenone (10), and their anti-insect activity was evaluated. Compounds 15 and 7–10 could significantly inhibit the growth of Chilo suppressalis. Compounds 2 and 3 inhibited growth of the insect by 35.5 and 64.5%, respectively. Compound 2 belongs to lipoic acid metabolism and fatty acid biosynthesis. We speculate that silicon positively regulated the metabolic pathway of lipoic acid and fatty acid to enhance the resistance of rice to insects.

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来源期刊
Arthropod-Plant Interactions
Arthropod-Plant Interactions 生物-昆虫学
CiteScore
3.00
自引率
6.20%
发文量
58
审稿时长
6 months
期刊介绍: Arthropod-Plant Interactions is dedicated to publishing high quality original papers and reviews with a broad fundamental or applied focus on ecological, biological, and evolutionary aspects of the interactions between insects and other arthropods with plants. Coverage extends to all aspects of such interactions including chemical, biochemical, genetic, and molecular analysis, as well reporting on multitrophic studies, ecophysiology, and mutualism. Arthropod-Plant Interactions encourages the submission of forum papers that challenge prevailing hypotheses. The journal encourages a diversity of opinion by presenting both invited and unsolicited review papers.
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