Morphogenesis of bacterial colonies in liquid crystalline environments

Fuente: arXiv
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Main Authors: La Corte, Sebastian Gonzalez, Chandler, Thomas G. J., Spagnolie, Saverio E., Wingreen, Ned S., Datta, Sujit S.
Format: Preprint
Published: 2025
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author La Corte, Sebastian Gonzalez
Chandler, Thomas G. J.
Spagnolie, Saverio E.
Wingreen, Ned S.
Datta, Sujit S.
author_facet La Corte, Sebastian Gonzalez
Chandler, Thomas G. J.
Spagnolie, Saverio E.
Wingreen, Ned S.
Datta, Sujit S.
contents Natural bacterial habitats are often complex fluids with viscoelastic and anisotropic responses to stress; for example, they can take the form of liquid crystals (LCs), with elongated microscopic constituents that collectively align while still retaining the ability to flow. However, laboratory studies typically focus on cells in simple liquids or complex fluids with randomly-oriented constituents. Here, we show how interactions with LCs shape bacterial proliferation in multicellular colonies. Using experiments, we find that in a nematic LC, cells generically form aligned single-cell-wide "chains" as they reproduce. As these chains lengthen, they eventually buckle in a highly localized manner. By combining our measurements with a continuum mechanical theory, we demonstrate that this distinctive morphogenetic program emerges because cells are kept in alignment due to the LC's elasticity; as each chain lengthens, growth-induced viscous stresses along its contour eventually overcome the elasticity of the surrounding nematic, leading to buckling. Our work thus reveals and provides mechanistic insight into the previously-overlooked role of LCs in sculpting bacterial life in complex environments.
format Preprint
id arxiv_https___arxiv_org_abs_2512_12406
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Morphogenesis of bacterial colonies in liquid crystalline environments
La Corte, Sebastian Gonzalez
Chandler, Thomas G. J.
Spagnolie, Saverio E.
Wingreen, Ned S.
Datta, Sujit S.
Soft Condensed Matter
Materials Science
Biological Physics
Fluid Dynamics
Cell Behavior
Natural bacterial habitats are often complex fluids with viscoelastic and anisotropic responses to stress; for example, they can take the form of liquid crystals (LCs), with elongated microscopic constituents that collectively align while still retaining the ability to flow. However, laboratory studies typically focus on cells in simple liquids or complex fluids with randomly-oriented constituents. Here, we show how interactions with LCs shape bacterial proliferation in multicellular colonies. Using experiments, we find that in a nematic LC, cells generically form aligned single-cell-wide "chains" as they reproduce. As these chains lengthen, they eventually buckle in a highly localized manner. By combining our measurements with a continuum mechanical theory, we demonstrate that this distinctive morphogenetic program emerges because cells are kept in alignment due to the LC's elasticity; as each chain lengthens, growth-induced viscous stresses along its contour eventually overcome the elasticity of the surrounding nematic, leading to buckling. Our work thus reveals and provides mechanistic insight into the previously-overlooked role of LCs in sculpting bacterial life in complex environments.
title Morphogenesis of bacterial colonies in liquid crystalline environments
topic Soft Condensed Matter
Materials Science
Biological Physics
Fluid Dynamics
Cell Behavior
url https://arxiv.org/abs/2512.12406