2026/07/22 by Qiu Min, Yrsa Larsson, James McKenzie +6 · 1 voice
Chemistry · Environmental Science · #Antimicrobial agents and applications #Environmental Chemistry and Analysis #Water Treatment and Disinfection
paper · pdf · doi:10.1038/s44172-026-00731-3
openalex publication_date 2026/07/22 · openalex created_date 2026/07/23 · openalex updated_date 2026/07/24
In urban water engineering, biofilm reactors are often used to remove organic micropollutants from water both in drinking water production and wastewater treatment. However, the functioning of multispecies biofilms is largely unknown. We used mass spectrometry imaging (MSI) to reveal spatially localized reactions of the pollutant benzalkonium chloride to test whether the degradation reactions are evenly distributed over the biomass or localized in reactive centers. Here we show, that several reactions can be localized. It can thus be concluded that the few microorganisms that can metabolize these pollutants are not evenly (homogeneously) distributed over the biofilm. We also show that the different biotransformations have different reaction centers, especially i) the oxidation of the terminal carbon atom by ω-oxidation, followed by both α- and β-oxidation, and ii) the second hydroxylation to form bis-hydroxy derivatives are located differently. Thus, these two different reactions are conducted by different microbial complexes or microcolonies. These differed further in their lipid patterns, which were measured in the same MSI analysis. These findings could have vast impact on designing biofilms for wastewater engineering as they provide a new analytical tool that can tell which domains in a multispecies biofilm need to be promoted for dedicated tasks. Min Qiu and colleagues used mass spectrometry imaging to reveal localized reactions for degrading micropollutants such as benzalkonium compounds in biofilms. This compound is metabolized by different pathways in biofilms which are located in different loci and thus in different organisms.