How do biofilms feel their environment?
Asp, M.; Tri Ho Thanh, M.; Gopinath, A.; Patteson, A. E.
Show abstract
The ability of bacteria to colonize and grow on different surfaces is an essential process for biofilm development and depends on complex biomechanical interactions between the biofilm and the underlying substrate. Changes in the physical properties of the underlying substrate are known to alter biofilm expansion, but the mechanisms by which biofilms sense and respond to physical features of their environment are still poorly understood. Here, we report the use of synthetic polyacrylamide hydrogels with tunable stiffness and controllable pore size to assess physical effects of the substrate on biofilm development. Using time lapse microscopy to track the growth of expanding Serratia marcescens colonies, we find that biofilm colony growth can increase with increasing substrate stiffness on purely elastic substrates, unlike what is found on traditional agar substrates. Using traction force microscopy, we find that biofilms exert transient stresses correlated over length scales much larger than a single bacterium. Our results are consistent with a model of biofilm development in which the interplay between osmotic pressure arising from the biofilm and the poroelastic response of the underlying substrate controls biofilm growth and morphology.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Adhesive interactions within microbial consortia can be differentiated at the single-cell level through expansion microscopy 94%
- The structural role of bacterial eDNA in the formation of biofilm streamers 94%
- Monocytes use protrusive forces to generate migration paths in viscoelastic collagen-based extracellular matrices 94%
Similar papers in this journal
- The giant staphylococcal protein Embp facilitates colonization of surfaces through Velcro-like attachment to fibrillated fibronectin 93%
- Substrate stiffness impacts early biofilm formation by modulating Pseudomonas aeruginosa twitching motility 93%
- Self-organized canals enable long range directed material transport in bacterial communities 92%
Similar papers in this journal
- Mycobacterium abscessus biofilms have viscoelastic properties which may contribute to their recalcitrance in chronic pulmonary infections. 94%
- Long-term label-free assessments of individual bacteria using three-dimensional quantitative phase imaging and hydrogel-based immobilization 92%
- Bidirectional alterations in antibiotics susceptibility in Staphylococcus aureus - Pseudomonas aeruginosa dual-species biofilm 92%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.