| Literature DB >> 34297136 |
Annika Blohm1, Swatantar Kumar2, Andreas Knebl1, Martina Herrmann2,3, Kirsten Küsel2,3, Jürgen Popp1,4,5, Torsten Frosch6,7,8,9.
Abstract
Human activities have greatly increased the input of reactive nitrogen species into the environment and disturbed the balance of the global N cycle. This imbalance may be offset by bacterial denitrification, an important process in maintaining the ecological balance of nitrogen. However, our understanding of the activity of mixotrophic denitrifying bacteria is not complete, as most research has focused on heterotrophic denitrification. The aim of this study was to investigate substrate preferences for two mixotrophic denitrifying bacterial strains, Acidovorax delafieldii and Hydrogenophaga taeniospiralis, under heterotrophic, autotrophic or mixotrophic conditions. This complex analysis was achieved by simultaneous identification and quantification of H2, O2, CO2, 14N2, 15N2 and 15N2O in course of the denitrification process with help of cavity-enhanced Raman spectroscopic (CERS) multi-gas analysis. To disentangle electron donor preferences for both bacterial strains, microcosm-based incubation experiments under varying substrate conditions were conducted. We found that Acidovorax delafieldii preferentially performed heterotrophic denitrification in the mixotrophic sub-experiments, while Hydrogenophaga taeniospiralis preferred autotrophic denitrification in the mixotrophic incubation. These observations were supported by stoichiometric calculations. The results demonstrate the prowess of advanced Raman multi-gas analysis to study substrate use and electron donor preferences in denitrification, based on the comprehensive quantification of complex microbial gas exchange processes.Entities:
Keywords: Cavity-enhanced Raman spectroscopy; Denitrification; Multi-gas analysis; Nitrogen cycle
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Year: 2021 PMID: 34297136 PMCID: PMC8748363 DOI: 10.1007/s00216-021-03541-y
Source DB: PubMed Journal: Anal Bioanal Chem ISSN: 1618-2642 Impact factor: 4.142
Fig. 1Gas analysis setup for the denitrification experiments. A closed cycle between the sample and the Raman spectrometer was established for measurements, in which the sample headspace could be cycled (V1 and V4 closed, V2 and V3 open). Argon was connected to flush the measurement cycle in between measurements using MFCs (mass flow controllers); in this case, V1 and V4 are open and V2 and V3 are closed
Fig. 2Concentration changes of selected gases in the headspace and of 15NO3−, 15NO2− and ammonium (NH4+) in the liquid phase of Acidovorax delafieldii strain 16 cultures under different incubation conditions over time. A Mixotrophic conditions, both H2/CO2 and 13C-acetate are available as substrates. B Heterotrophic conditions, 13C-acetate is available as substrate. Depicted values are averaged measurements from three replicate culture flasks with standard deviation
Fig. 3Comparison of concentration changes over time for A 13CO2 and B 15N2 under heterotrophic and mixotrophic growth conditions for Acidovorax delafieldii strain 16. For both gases, concentration changes and time course are very similar for the two incubations. Depicted values are averaged measurements from three replicate culture flasks with standard deviation
Fig. 4Concentration changes of headspace gases and NO3− and NO2− in the liquid medium over time for denitrification by Hydrogenophaga taeniospiralis strain 2K1 under three different growth conditions. A 15N2 concentrations. B All gases as well as nitrate and nitrite, heterotrophic incubation. C All gases and nitrite, autotrophic conditions. D All gases and nitrite, mixotrophic conditions. Depicted values are averages with standard deviations
Fig. 5Optical density (OD) for incubations with Hydrogenophaga taeniospiralis strain 2K1 under three different growth conditions. Depicted values are averages from measurements of three replicate culture flasks with standard deviation