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原位宿主-微生物相互作用的微观空间代谢组学。

Spatial metabolomics of in situ host-microbe interactions at the micrometre scale.

机构信息

Max Planck Institute for Marine Microbiology, Bremen, Germany.

Institute of Inorganic and Analytical Chemistry, Justus Liebig University Giessen, Giessen, Germany.

出版信息

Nat Microbiol. 2020 Mar;5(3):498-510. doi: 10.1038/s41564-019-0664-6. Epub 2020 Feb 3.

Abstract

Spatial metabolomics describes the location and chemistry of small molecules involved in metabolic phenotypes, defence molecules and chemical interactions in natural communities. Most current techniques are unable to spatially link the genotype and metabolic phenotype of microorganisms in situ at a scale relevant to microbial interactions. Here, we present a spatial metabolomics pipeline (metaFISH) that combines fluorescence in situ hybridization (FISH) microscopy and high-resolution atmospheric-pressure matrix-assisted laser desorption/ionization mass spectrometry to image host-microbe symbioses and their metabolic interactions. The metaFISH pipeline aligns and integrates metabolite and fluorescent images at the micrometre scale to provide a spatial assignment of host and symbiont metabolites on the same tissue section. To illustrate the advantages of metaFISH, we mapped the spatial metabolome of a deep-sea mussel and its intracellular symbiotic bacteria at the scale of individual epithelial host cells. Our analytical pipeline revealed metabolic adaptations of the epithelial cells to the intracellular symbionts and variation in metabolic phenotypes within a single symbiont 16S rRNA phylotype, and enabled the discovery of specialized metabolites from the host-microbe interface. metaFISH provides a culture-independent approach to link metabolic phenotypes to community members in situ and is a powerful tool for microbiologists across fields.

摘要

空间代谢组学描述了参与代谢表型、防御分子和自然群落中化学相互作用的小分子的位置和化学性质。目前大多数技术都无法在与微生物相互作用相关的尺度上,对原位微生物的基因型和代谢表型进行空间关联。在这里,我们提出了一种空间代谢组学分析方法(metaFISH),该方法结合荧光原位杂交(FISH)显微镜和高分辨率大气压基质辅助激光解吸/电离质谱,以对宿主-微生物共生体及其代谢相互作用进行成像。metaFISH 分析方法在微米尺度上对代谢物和荧光图像进行对齐和整合,从而在同一组织切片上提供宿主和共生体代谢物的空间分配。为了说明 metaFISH 的优势,我们以单个上皮宿主细胞的尺度绘制了深海贻贝及其细胞内共生细菌的空间代谢组图谱。我们的分析方法揭示了上皮细胞对细胞内共生体的代谢适应,以及单个共生体 16S rRNA 型内代谢表型的变化,并能够从宿主-微生物界面发现特殊代谢产物。metaFISH 提供了一种无需培养即可将代谢表型与原位群落成员联系起来的方法,是各个领域微生物学家的有力工具。

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