Explosive dispersal of non-motile microbes through metabolic buoyancy

Fuente: arXiv
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Main Authors: David, Jimreeves, Thutupalli, Shashi
Format: Preprint
Published: 2025
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author David, Jimreeves
Thutupalli, Shashi
author_facet David, Jimreeves
Thutupalli, Shashi
contents For non-motile microorganisms, spatial expansion in quiescent fluids is presumed to be limited by diffusion. We report that microbial colonies can explosively circumvent this constraint through a self-amplifying physical process. As non-motile yeast and bacteria metabolize dense nutrients into lighter waste within their fluid environment, they generate buoyancy-driven Rayleigh-Bénard convection, an ubiquitous fluid-dynamical phenomenon that organizes material on scales from chemical reactors to planetary atmospheres. This robust, self-generated flow fragments and disperses cellular aggregates, which seed new growth sites, enhancing total metabolic activity and further strengthening the convective flow in an autocatalytic cycle. The resulting expansion follows accelerating power-law kinetics, quantitatively captured by a physical theory linking metabolic flux to flow velocity, and produces fractal patterns through a flow-focusing instability we term Circulation-Driven Aggregation, the hydrodynamic analogue of Diffusion-Limited Aggregation. This `metabolic fireworks' mechanism establishes a canonical instance of proliferating active matter, where cellular metabolic activity self-organizes a physical transport engine--a living Rayleigh-Bénard convection--providing a fundamental, physics-based dispersal strategy.
format Preprint
id arxiv_https___arxiv_org_abs_2512_16288
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Explosive dispersal of non-motile microbes through metabolic buoyancy
David, Jimreeves
Thutupalli, Shashi
Soft Condensed Matter
Adaptation and Self-Organizing Systems
Pattern Formation and Solitons
Biological Physics
Fluid Dynamics
For non-motile microorganisms, spatial expansion in quiescent fluids is presumed to be limited by diffusion. We report that microbial colonies can explosively circumvent this constraint through a self-amplifying physical process. As non-motile yeast and bacteria metabolize dense nutrients into lighter waste within their fluid environment, they generate buoyancy-driven Rayleigh-Bénard convection, an ubiquitous fluid-dynamical phenomenon that organizes material on scales from chemical reactors to planetary atmospheres. This robust, self-generated flow fragments and disperses cellular aggregates, which seed new growth sites, enhancing total metabolic activity and further strengthening the convective flow in an autocatalytic cycle. The resulting expansion follows accelerating power-law kinetics, quantitatively captured by a physical theory linking metabolic flux to flow velocity, and produces fractal patterns through a flow-focusing instability we term Circulation-Driven Aggregation, the hydrodynamic analogue of Diffusion-Limited Aggregation. This `metabolic fireworks' mechanism establishes a canonical instance of proliferating active matter, where cellular metabolic activity self-organizes a physical transport engine--a living Rayleigh-Bénard convection--providing a fundamental, physics-based dispersal strategy.
title Explosive dispersal of non-motile microbes through metabolic buoyancy
topic Soft Condensed Matter
Adaptation and Self-Organizing Systems
Pattern Formation and Solitons
Biological Physics
Fluid Dynamics
url https://arxiv.org/abs/2512.16288