4.6 Article

NanoSIMS sample preparation decreases isotope enrichment: magnitude, variability and implications for single-cell rates of microbial activity

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ENVIRONMENTAL MICROBIOLOGY
卷 23, 期 1, 页码 -

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WILEY
DOI: 10.1111/1462-2920.15264

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资金

  1. Centre for Dark Energy Biosphere Investigations [549]
  2. Simons Foundation [507798]
  3. Stanford Graduate Fellowship
  4. National Science Foundation [ECCS-1542152]

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Studies indicate that different sample preparation methods significantly affect the isotopic enrichment of microorganisms, with the impact varying by taxa, growth phase, isotope label, and protocol. When accounting for sample preparation, cell-specific rates increase and are more consistent with modeled and bulk rates.
The activity of individual microorganisms can be measured within environmental samples by detecting uptake of isotope-labelled substrates using nano-scale secondary ion mass spectrometry (nanoSIMS). Recent studies have demonstrated that sample preparation can decrease C-13 and N-15 enrichment in bacterial cells, resulting in underestimates of activity. Here, we explore this effect with a variety of preparation types, microbial lineages and isotope labels to determine its consistency and therefore potential for correction. Specifically, we investigated the impact of different protocols for fixation, nucleic acid staining and catalysed reporter deposition fluorescence in situ hybridization (CARD-FISH) on >14 500 archaeal and bacterial cells (Methanosarcina acetivorans, Sulfolobus acidocaldarius and Pseudomonas putida) enriched in C-13, N-15, O-18, H-2 and/or S-34. We found these methods decrease isotope enrichments by up to 80% - much more than previously reported - and that the effect varies by taxa, growth phase, isotope label and applied protocol. We make recommendations for how to account for this effect experimentally and analytically. We also re-evaluate published nanoSIMS datasets and revise estimated microbial turnover times in the marine subsurface and nitrogen fixation rates in pelagic unicellular cyanobacteria. When sample preparation is accounted for, cell-specific rates increase and are more consistent with modelled and bulk rates.

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