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宏基因组测序揭示了小型食草哺乳动物(新域鼠属)肠道微生物解毒机制。

Metagenomic sequencing provides insights into microbial detoxification in the guts of small mammalian herbivores (Neotoma spp.).

机构信息

Department of Biological Sciences, University of Pittsburgh, 4249 Fifth Ave., Pittsburgh, PA, 15260, USA.

Department of Biology, University of Utah, 257 South 1400 East, Salt Lake City, UT, 84112, USA.

出版信息

FEMS Microbiol Ecol. 2018 Nov 1;94(12). doi: 10.1093/femsec/fiy184.

Abstract

Microbial detoxification of plant toxins influences the use of plants as food sources by herbivores. Stephen's woodrats (Neotoma stephensi) specialize on juniper, which is defended by oxalate, phenolics and monoterpenes, while closely related N. albigula specialize on cactus, which only contains oxalate. Woodrats maintain two gut chambers harboring dense microbial communities: a foregut chamber proximal to the major site of toxin absorption, and a cecal chamber in their hindgut. We performed several experiments to investigate the location and nature of microbial detoxification in the woodrat gut. First, we measured toxin concentrations across gut chambers of N. stephensi. Compared to food material, oxalate concentrations were immediately lower in the foregut, while concentrations of terpenes remained high in the foregut, and were lowest in the cecal chamber. We conducted metagenomic sequencing of the foregut chambers of both woodrat species and cecal chambers of N. stephensi to compare microbial functions. We found that most genes associated with detoxification were more abundant in the cecal chambers of N. stephensi. However, some genes associated with degradation of oxalate and phenolic compounds were more abundant in the foregut chambers. Thus, microbial detoxification may take place in various chambers depending on the class of chemical compound.

摘要

微生物对植物毒素的解毒作用影响了食草动物对植物作为食物来源的利用。斯蒂芬氏林鼠(Neotoma stephensi)专门以含有草酸、类黄酮和单萜类化合物的杜松为食,而与其关系密切的 N. albigula 则专门以只含有草酸的仙人掌为食。林鼠有两个容纳密集微生物群落的肠道室:靠近主要毒素吸收部位的前肠室和后肠的盲肠室。我们进行了几项实验来研究林鼠肠道中微生物解毒的位置和性质。首先,我们测量了 N. stephensi 肠道各室的毒素浓度。与食物材料相比,草酸浓度在前肠中立即降低,而萜类物质在前肠中的浓度仍然很高,在盲肠中浓度最低。我们对这两种林鼠的前肠室和 N. stephensi 的盲肠室进行了宏基因组测序,以比较微生物功能。我们发现,与解毒相关的大多数基因在 N. stephensi 的盲肠室中更为丰富。然而,一些与草酸和酚类化合物降解相关的基因在前肠室中更为丰富。因此,微生物解毒可能根据化合物的类别在不同的腔室中进行。

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