Department of Chemistry and Applied Biosciences, ETH Zurich, 8093 Zurich, Switzerland.
Department of Health Sciences and Technology, ETH Zurich, 8093 Zurich, Switzerland.
Cell Rep Methods. 2023 Jul 26;3(8):100539. doi: 10.1016/j.crmeth.2023.100539. eCollection 2023 Aug 28.
The metabolic "handshake" between the microbiota and its mammalian host is a complex, dynamic process with major influences on health. Dissecting the interaction between microbial species and metabolites found in host tissues has been a challenge due to the requirement for invasive sampling. Here, we demonstrate that secondary electrospray ionization-mass spectrometry (SESI-MS) can be used to non-invasively monitor metabolic activity of the intestinal microbiome of a live, awake mouse. By comparing the headspace metabolome of individual gut bacterial culture with the "volatilome" (metabolites released to the atmosphere) of gnotobiotic mice, we demonstrate that the volatilome is characteristic of the dominant colonizing bacteria. Combining SESI-MS with feeding heavy-isotope-labeled microbiota-accessible sugars reveals the presence of microbial cross-feeding within the animal intestine. The microbiota is, therefore, a major contributor to the volatilome of a living animal, and it is possible to capture inter-species interaction within the gut microbiota using volatilome monitoring.
微生物与其哺乳动物宿主之间的代谢“握手”是一个复杂而动态的过程,对健康有重大影响。由于需要进行侵入性采样,因此解析宿主组织中微生物物种和代谢物之间的相互作用一直是一个挑战。在这里,我们证明了二次电喷雾电离-质谱(SESI-MS)可用于非侵入性地监测活体清醒小鼠肠道微生物组的代谢活性。通过将单个肠道细菌培养物的顶空代谢组与无菌小鼠的“挥发组”(释放到大气中的代谢物)进行比较,我们证明了挥发组是优势定植细菌的特征。将 SESI-MS 与饲喂重同位素标记的微生物可利用糖相结合,揭示了动物肠道内微生物交叉喂养的存在。因此,微生物群是活体动物挥发组的主要贡献者,并且可以使用挥发组监测来捕获肠道微生物群内的种间相互作用。