Measuring Temporal Variations of Nucleotide Pools in Microbial Granular Biofilm

ABSTRACT Microbial communities often face environmental fluctuations that occur on timescales much shorter than their growth rate or proteome turnover. In such cases, cellular responses are likely driven by rapid changes in metabolite pools, particularly energy nucleotides including ATP, ADP, and AMP. However, robust methods to quantify these metabolites in biofilm‐forming microbial communities are lacking. Here, we developed and systematically evaluated a metabolomics workflow for a granular biofilm enrichment, which performs enhanced biological phosphorus removal (EBPR). We combined fast quenching in liquid nitrogen and a boiling water extraction, followed by high‐resolution mass spectrometry, using porous graphitic carbon chromatography and 13 C‐labeled internal reference standards. Among tested procedures, a boiling water extraction was most suitable for extraction of nucleotides, as indicated by stable adenylate energy charge (AEC) and isotopic ratios. The method was exemplified by applying it to an anaerobic–aerobic cycle of a lab‐scale EBPR system. Preliminary results showed dynamic changes in AEC and uridylate energy charge (UEC) during acetate uptake and polyphosphate degradation. The established method provides a foundation for performing metabolomic studies of microbial biofilms in general.

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Publication Details

Journal
Helvetica Chimica Acta
Published
2026-09-30
DOI
https://doi.org/10.1002/hlca.70103
Primary Topic
Wastewater Treatment and Nitrogen Removal
Type
article
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article

Measuring Temporal Variations of Nucleotide Pools in Microbial Granular Biofilm

Martin Pabst, Mark C.M. van Loosdrecht, Timothy Páez-Watson, Jitske M. van Ede
Helvetica Chimica Acta
Wastewater Treatment and Nitrogen Removal
article

Measuring Temporal Variations of Nucleotide Pools in Microbial Granular Biofilm

Martin Pabst, Mark C.M. van Loosdrecht, Timothy Páez-Watson, Jitske M. van Ede
article en

Abstract

ABSTRACT Microbial communities often face environmental fluctuations that occur on timescales much shorter than their growth rate or proteome turnover. In such cases, cellular responses are likely driven by rapid changes in metabolite pools, particularly energy nucleotides including ATP, ADP, and AMP. However, robust methods to quantify these metabolites in biofilm‐forming microbial communities are lacking. Here, we developed and systematically evaluated a metabolomics workflow for a granular biofilm enrichment, which performs enhanced biological phosphorus removal (EBPR). We combined fast quenching in liquid nitrogen and a boiling water extraction, followed by high‐resolution mass spectrometry, using porous graphitic carbon chromatography and 13 C‐labeled internal reference standards. Among tested procedures, a boiling water extraction was most suitable for extraction of nucleotides, as indicated by stable adenylate energy charge (AEC) and isotopic ratios. The method was exemplified by applying it to an anaerobic–aerobic cycle of a lab‐scale EBPR system. Preliminary results showed dynamic changes in AEC and uridylate energy charge (UEC) during acetate uptake and polyphosphate degradation. The established method provides a foundation for performing metabolomic studies of microbial biofilms in general.

Helvetica Chimica Acta
Delft University of Technology (NL)
Clean water and sanitation
Openalex Percentile: Top 23%
Wastewater Treatment and Nitrogen Removal
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