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arXiv · 2609.32945

Active matter within flexible boundaries: a novel experimental approach with T. aceti nematodes

Abstract

We experimentally explore the collective behavior of the nematode T. Aceti inside flexible boundaries showing the emergence of previously unreported states. These nematodes have been previously shown to be able to synchronize their body oscillations in a favorable condition of confined space. In this collective state, they are able to exert a strong pushing force which we exploit to study how their collective motion could deform a pliable boundary. Using a novel experimental technique, we were able to simulate a non-rigid border at a liquid-liquid-gas triple point. We discovered a state with periodic boundary deformations which are due to the synchronized oscillations of the nematodes. More interestingly, we found a novel state where the nematodes are able to form multiple protrusions in the border which oscillate, rotate, merge, and split. We propose a numerical model that is able to reproduce some of the observed parameters of this state as well as offer an analytical insight into protrusions dynamics. Our research opens a pathway for exploring the interaction between active matter and flexible interfaces with a new kinds of active matter agents forming dynamic non-chaotic border deformations.

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Christina M. Ceballos, Matthew S. Mizuhara, Mykhailo Potomkin, Anton Peshkov. 2026-09-26. Active matter within flexible boundaries: a novel experimental approach with T. aceti nematodes. https://arxiv.org/abs/2609.32945

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