Exploring the spatial distribution of biomolecules in Pseudomonas aeruginosa biofilms formed on PDMS and lung explants by mass spectrometry imaging

Bacterial biofilms constitute a form of collective organization that enhances bacterial tolerance to both antibiotics and immune defences. Among bacteria, Pseudomonas aeruginosa (P. aeruginosa) is a major opportunistic pathogen, with marked biofilm-forming capacity, highly implicated in chronic pulmonary infections. Understanding the metabolic and structural dynamics of P. aeruginosa biofilms is thus essential for the development of new therapeutic strategies. In this work, we investigated the formation of P. aeruginosa biofilm and its molecular composition on two different substrates of importance in public health. The first model is a synthetic polydimethylsiloxane (PDMS) surface, an inert model commonly used to simulate biomedical devices, and the second is a murine lung explant which offers a more physiologically relevant context to study lung infection. Using these models, mass spectrometry imaging (MSI), specifically MALDI-MSI technology, was used to map the spatial distribution of biofilm-produced compounds without prior labelling. This approach enabled the detection of multiple molecular families involved in the regulation, communication and structural organization of biofilm. The technique provides additional information on differences in the distribution of these molecules, particularly phenazine derivatives, within the models. Indeed, biofilms formed on lung explants show increased production of pyocyanin, invading lung tissue. These results highlight the power of MSI to explore the spatial metabolism of bacterial biofilms. It opens interesting perspectives for the microbiology of chronic infections by enabling visualization of chemical interactions between pathogens and their host environment.

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Publication Details

Journal
Biofilm
Published
2026-09-17
DOI
https://doi.org/10.1016/j.bioflm.2026.100401
Primary Topic
Bacterial biofilms and quorum sensing
Type
article
Field-Weighted Citation Impact
0.00

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article

Exploring the spatial distribution of biomolecules in Pseudomonas aeruginosa biofilms formed on PDMS and lung explants by mass spectrometry imaging

Christophe Arnoult, Teddy Grandjean, Pascal Cosette, C. Le Guillou et al.
Biofilm
Bacterial biofilms and quorum sensing
article

Exploring the spatial distribution of biomolecules in Pseudomonas aeruginosa biofilms formed on PDMS and lung explants by mass spectrometry imaging

Christophe Arnoult, Teddy Grandjean, Pascal Cosette, C. Le Guillou, Marie Droniou, Isabelle Schmitz, Philippe Gosset, Hung Le
article en

Abstract

Bacterial biofilms constitute a form of collective organization that enhances bacterial tolerance to both antibiotics and immune defences. Among bacteria, Pseudomonas aeruginosa (P. aeruginosa) is a major opportunistic pathogen, with marked biofilm-forming capacity, highly implicated in chronic pulmonary infections. Understanding the metabolic and structural dynamics of P. aeruginosa biofilms is thus essential for the development of new therapeutic strategies. In this work, we investigated the formation of P. aeruginosa biofilm and its molecular composition on two different substrates of importance in public health. The first model is a synthetic polydimethylsiloxane (PDMS) surface, an inert model commonly used to simulate biomedical devices, and the second is a murine lung explant which offers a more physiologically relevant context to study lung infection. Using these models, mass spectrometry imaging (MSI), specifically MALDI-MSI technology, was used to map the spatial distribution of biofilm-produced compounds without prior labelling. This approach enabled the detection of multiple molecular families involved in the regulation, communication and structural organization of biofilm. The technique provides additional information on differences in the distribution of these molecules, particularly phenazine derivatives, within the models. Indeed, biofilms formed on lung explants show increased production of pyocyanin, invading lung tissue. These results highlight the power of MSI to explore the spatial metabolism of bacterial biofilms. It opens interesting perspectives for the microbiology of chronic infections by enabling visualization of chemical interactions between pathogens and their host environment.

BiofilmVol. 12
Centre National de la Recherche Scientifique (FR), Inserm (FR), Université de Lille (FR), Institut Pasteur de Lille (FR), Centre Hospitalier Universitaire de Lille (FR), Center for Infection and Immunity of Lille (FR), Normandie Université (FR), Polymères, Biopolymères, Surfaces (FR), Communication Bactérienne et Stratégie Anti-infectieuses, Université de Rouen Normandie (FR), Institut National des Sciences Appliquées Rouen Normandie (FR)
Association Vaincre la Mucoviscidose, Normandie Université, Région Normandie, European Regional Development Fund
Good health and well-being
Openalex Percentile: Top 19%
Bacterial biofilms and quorum sensing
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