Rheology of Pseudomonas fluorescens biofilms: From experiments to predictive DPD mesoscopic modeling.


Journal

The Journal of chemical physics
ISSN: 1089-7690
Titre abrégé: J Chem Phys
Pays: United States
ID NLM: 0375360

Informations de publication

Date de publication:
21 Feb 2023
Historique:
entrez: 22 2 2023
pubmed: 23 2 2023
medline: 25 2 2023
Statut: ppublish

Résumé

Bacterial biofilms mechanically behave as viscoelastic media consisting of micron-sized bacteria cross-linked to a self-produced network of extracellular polymeric substances (EPSs) embedded in water. Structural principles for numerical modeling aim at describing mesoscopic viscoelasticity without losing details on the underlying interactions existing in wide regimes of deformation under hydrodynamic stress. Here, we approach the computational challenge to model bacterial biofilms for predictive mechanics in silico under variable stress conditions. Up-to-date models are not entirely satisfactory due to the plethora of parameters required to make them functioning under the effects of stress. As guided by the structural depiction gained in a previous work with Pseudomonas fluorescens [Jara et al., Front. Microbiol. 11, 588884 (2021)], we propose a mechanical modeling by means of Dissipative Particle Dynamics (DPD), which captures the essentials of topological and compositional interactions between bacterial particles and cross-linked EPS-embedding under imposed shear. The P. fluorescens biofilms have been modeled under mechanical stress mimicking shear stresses as undergone in vitro. The predictive capacity for mechanical features in DPD-simulated biofilms has been investigated by varying the externally imposed field of shear strain at variable amplitude and frequency. The parametric map of essential biofilm ingredients has been explored by making the rheological responses to emerge among conservative mesoscopic interactions and frictional dissipation in the underlying microscale. The proposed coarse grained DPD simulation qualitatively catches the rheology of the P. fluorescens biofilm over several decades of dynamic scaling.

Identifiants

pubmed: 36813707
doi: 10.1063/5.0131935
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

074902

Auteurs

José Martín-Roca (J)

Departamento de Estructrura de la Materia, Física Térmica y Electrónica, Universidad Complutense de Madrid, 28040 Madrid, Spain.

Valentino Bianco (V)

Departamento de Quimica Fisica, Universidad Complutense de Madrid, 28040 Madrid, Spain.

Francisco Alarcón (F)

Departamento de Ingeniería Física, División de Ciencias e Ingenierías, Universidad de Guanajuato, Loma del Bosque 103, 37150 León, Mexico.

Ajay K Monnappa (AK)

Instituto de Investigación Biomédica Hospital Doce de Octubre (imas12), 28041 Madrid, Spain.

Paolo Natale (P)

Departamento de Quimica Fisica, Universidad Complutense de Madrid, 28040 Madrid, Spain.

Francisco Monroy (F)

Translational Biophysics. Instituto de Investigación Sanitaria Hospital Doce de Octubre (imas12), 28041 Madrid, Spain.

Belen Orgaz (B)

Sección Departamental de Farmacia Galénica y Tecnología Alimentaria, Universidad Complutense de Madrid, Madrid, Spain.

Ivan López-Montero (I)

Departamento de Quimica Fisica, Universidad Complutense de Madrid, 28040 Madrid, Spain.

Chantal Valeriani (C)

Departamento de Estructrura de la Materia, Física Térmica y Electrónica, Universidad Complutense de Madrid, 28040 Madrid, Spain.

Articles similaires

Humans Meta-Analysis as Topic Sample Size Models, Statistical Computer Simulation
Biofilms Candida albicans Quorum Sensing Candida glabrata Menthol
Humans Algorithms Software Artificial Intelligence Computer Simulation
Humans Robotic Surgical Procedures Clinical Competence Male Female

Classifications MeSH