Living Capillary Bridges

Fuente: arXiv
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Main Authors: Kärki, Tytti, Luntama, Senna, Modabber, Yasamin, Pönkä, Saila, Erdemci-Tandogan, Gonca, Karttunen, Mikko, Beaune, Grégory, Timonen, Jaakko V. I.
Format: Preprint
Published: 2025
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author Kärki, Tytti
Luntama, Senna
Modabber, Yasamin
Pönkä, Saila
Erdemci-Tandogan, Gonca
Karttunen, Mikko
Beaune, Grégory
Timonen, Jaakko V. I.
author_facet Kärki, Tytti
Luntama, Senna
Modabber, Yasamin
Pönkä, Saila
Erdemci-Tandogan, Gonca
Karttunen, Mikko
Beaune, Grégory
Timonen, Jaakko V. I.
contents Biological tissues exhibit complex behaviors with their dynamics often resembling inert soft matter such as liquids, polymers, colloids, and liquid crystals. These analogies enable physics-based approaches for investigations of emergent behaviors in biological processes. A well-studied case is the spreading of cellular aggregates on solid surfaces, where they display dynamics similar to viscous droplets. \textit{In vivo}, however, cells and tissues are in a confined environment with varying geometries and mechanical properties to which they need to adapt. In this work, we compressed cellular aggregates between two solid surfaces and studied their dynamics using microscopy, and computer simulations. The confined cellular aggregates transitioned from compressed spheres into dynamic living capillary bridges exhibiting bridge thinning and a convex-to-concave meniscus curvature transition. We found that the stability of the bridge is determined by the interplay between cell growth and cell spreading on the confining surfaces. This interaction leads to bridge rupture at a critical length scale determined by the distance between the plates. The force distributions, formation and stability regimes of the living capillary bridges were characterized with full 3D computer simulations that included cell division, migration and growth dynamics, directly showing how mechanical principles govern the behavior of the living bridges; cellular aggregates display jamming and stiffening analogously to granular matter, and cell division along the long axis enhances thinning. Based on our results, we propose a new class of active soft matter behavior, where cellular aggregates exhibit liquid-like adaptation to confinement, but with self-organized rupturing driven by biological activity.
format Preprint
id arxiv_https___arxiv_org_abs_2510_14518
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Living Capillary Bridges
Kärki, Tytti
Luntama, Senna
Modabber, Yasamin
Pönkä, Saila
Erdemci-Tandogan, Gonca
Karttunen, Mikko
Beaune, Grégory
Timonen, Jaakko V. I.
Biological Physics
Soft Condensed Matter
Biological tissues exhibit complex behaviors with their dynamics often resembling inert soft matter such as liquids, polymers, colloids, and liquid crystals. These analogies enable physics-based approaches for investigations of emergent behaviors in biological processes. A well-studied case is the spreading of cellular aggregates on solid surfaces, where they display dynamics similar to viscous droplets. \textit{In vivo}, however, cells and tissues are in a confined environment with varying geometries and mechanical properties to which they need to adapt. In this work, we compressed cellular aggregates between two solid surfaces and studied their dynamics using microscopy, and computer simulations. The confined cellular aggregates transitioned from compressed spheres into dynamic living capillary bridges exhibiting bridge thinning and a convex-to-concave meniscus curvature transition. We found that the stability of the bridge is determined by the interplay between cell growth and cell spreading on the confining surfaces. This interaction leads to bridge rupture at a critical length scale determined by the distance between the plates. The force distributions, formation and stability regimes of the living capillary bridges were characterized with full 3D computer simulations that included cell division, migration and growth dynamics, directly showing how mechanical principles govern the behavior of the living bridges; cellular aggregates display jamming and stiffening analogously to granular matter, and cell division along the long axis enhances thinning. Based on our results, we propose a new class of active soft matter behavior, where cellular aggregates exhibit liquid-like adaptation to confinement, but with self-organized rupturing driven by biological activity.
title Living Capillary Bridges
topic Biological Physics
Soft Condensed Matter
url https://arxiv.org/abs/2510.14518