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膳食乌头碱和尼古丁对两种鳞翅目植食性昆虫肠道微生物群的影响。

Influence of dietary aconitine and nicotine on the gut microbiota of two lepidopteran herbivores.

机构信息

Department of Forest Protection, School of Forestry, Northeast Forestry University, Harbin, China.

Key Laboratory of Saline-alkali Vegetation Ecology Restoration, Ministry of Education, College of Life Science, Northeast Forestry University, Harbin, China.

出版信息

Arch Insect Biochem Physiol. 2020 Jul;104(3):e21676. doi: 10.1002/arch.21676. Epub 2020 Apr 23.

Abstract

The gut microbiota plays an important role in pheromone production, pesticide degradation, vitamin synthesis, and pathogen prevention in the host animal. Therefore, similar to gut morphology and digestive enzyme activity, the gut microbiota may also get altered under plant defensive compound-induced stress. To test this hypothesis, Dendrolimus superans larvae were fed either aconitine- or nicotine-treated fresh leaves of Larix gmelinii, and Lymantria dispar larvae were fed either aconitine- or nicotine-treated fresh leaves of Salix matsudana. Subsequently, the larvae were sampled 72hr after diet administration and DNA extracted from larval enteric canals were employed for gut microbial 16S ribosomal RNA gene sequencing (338 F and 806 R primers). The sequence analysis revealed that dietary nicotine and aconitine influenced the dominant bacteria in the larval gut and determined their abundance. Moreover, the effect of either aconitine or nicotine on D. superans and L. dispar larvae had a greater dependence on insect species than on secondary plant metabolites. These findings further our understanding of the interaction between herbivores and host plants and the coevolution of plants and insects.

摘要

肠道微生物群在宿主动物的信息素产生、农药降解、维生素合成和病原体预防中发挥着重要作用。因此,类似于肠道形态和消化酶活性,肠道微生物群也可能在植物防御化合物诱导的应激下发生改变。为了验证这一假设,用处理过的兴安落叶松或柳杉新鲜叶片喂养马尾松毛虫幼虫,用处理过的苦马豆或柳树新鲜叶片喂养舞毒蛾幼虫。随后,在喂食后 72 小时采集幼虫样本,并从幼虫肠道中提取 DNA,用于肠道微生物 16S 核糖体 RNA 基因测序(338 F 和 806 R 引物)。序列分析表明,饮食中的尼古丁和乌头碱影响了幼虫肠道中的优势细菌,并决定了它们的丰度。此外,无论是乌头碱还是尼古丁对马尾松毛虫和舞毒蛾幼虫的影响,更多地取决于昆虫种类,而不是次生植物代谢物。这些发现进一步加深了我们对食草动物与宿主植物之间相互作用以及植物与昆虫共同进化的理解。

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