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透明土壤微宇宙用于活细胞成像和土壤微生物的非破坏性稳定同位素探测。

Transparent soil microcosms for live-cell imaging and non-destructive stable isotope probing of soil microorganisms.

机构信息

Department of Biology, University of North Carolina, Chapel Hill, United States.

Department of Microbiology and Ecosystem Science, Centre for Microbiology and Environmental Systems Science, University of Vienna, Vienna, Austria.

出版信息

Elife. 2020 Nov 3;9:e56275. doi: 10.7554/eLife.56275.

Abstract

Microscale processes are critically important to soil ecology and biogeochemistry yet are difficult to study due to soil's opacity and complexity. To advance the study of soil processes, we constructed transparent soil microcosms that enable the visualization of microbes via fluorescence microscopy and the non-destructive measurement of microbial activity and carbon uptake in situ via Raman microspectroscopy. We assessed the polymer Nafion and the crystal cryolite as optically transparent soil substrates. We demonstrated that both substrates enable the growth, maintenance, and visualization of microbial cells in three dimensions over time, and are compatible with stable isotope probing using Raman. We applied this system to ascertain that after a dry-down/rewetting cycle, bacteria on and near dead fungal hyphae were more metabolically active than those far from hyphae. These data underscore the impact fungi have facilitating bacterial survival in fluctuating conditions and how these microcosms can yield insights into microscale microbial activities.

摘要

微观过程对土壤生态学和生物地球化学至关重要,但由于土壤的不透明性和复杂性,很难对其进行研究。为了推进土壤过程的研究,我们构建了透明土壤微系统,通过荧光显微镜可以对微生物进行可视化,通过拉曼微光谱技术可以对原位微生物活性和碳吸收进行非破坏性测量。我们评估了聚合物全氟磺酸(Nafion)和晶体冰晶石作为透明的土壤基质。我们证明了这两种基质都能够使微生物细胞在三维空间中生长、维持和可视化,并且与拉曼稳定同位素探测兼容。我们应用该系统确定,在干燥/再润湿循环之后,死真菌菌丝上和附近的细菌比远离菌丝的细菌具有更高的代谢活性。这些数据强调了真菌在波动条件下促进细菌生存的影响,以及这些微系统如何为微生物活动的微观尺度提供深入了解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2c43/7609051/203cb670c8ee/elife-56275-fig1.jpg

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