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Main Authors: Zorrilla, Luc, Allard, Antoine, Desai, Krish, Polin, Marco
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2504.02680
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author Zorrilla, Luc
Allard, Antoine
Desai, Krish
Polin, Marco
author_facet Zorrilla, Luc
Allard, Antoine
Desai, Krish
Polin, Marco
contents While hydrodynamic coupling has long been considered essential for synchronisation of eukaryotic flagella, recent experiments on the unicellular biflagellate model organism {\it Chlamydomonas} demonstrate that -- at the single cell level -- intracellular mechanical coupling is necessary for coordination. It is therefore unclear what role, if any, hydrodynamic forces actually play in the synchronisation of multiple flagella within individual cells, arguably the building block of large scale coordination. Here we address this question experimentally by transiently blocking hydrodynamic coupling between the two flagella of single {\it Chlamydomonas}. Our results reveal that in wild type cells intracellularly-mediated forces are necessary and sufficient for flagellar synchronisation, with hydrodynamic coupling causing minimal changes in flagellar dynamics. However, fluid-mediated ciliary coupling is responsible for the extended periods of anti-phase synchronisation observed in a mutant with weaker intracellular coupling. At the single-cell level, therefore, flagellar coordination depends on a subtle balance between intracellular and extracellular forces.
format Preprint
id arxiv_https___arxiv_org_abs_2504_02680
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The role of hydrodynamics in the synchronisation of {\it Chlamydomonas} flagella
Zorrilla, Luc
Allard, Antoine
Desai, Krish
Polin, Marco
Biological Physics
Cell Behavior
While hydrodynamic coupling has long been considered essential for synchronisation of eukaryotic flagella, recent experiments on the unicellular biflagellate model organism {\it Chlamydomonas} demonstrate that -- at the single cell level -- intracellular mechanical coupling is necessary for coordination. It is therefore unclear what role, if any, hydrodynamic forces actually play in the synchronisation of multiple flagella within individual cells, arguably the building block of large scale coordination. Here we address this question experimentally by transiently blocking hydrodynamic coupling between the two flagella of single {\it Chlamydomonas}. Our results reveal that in wild type cells intracellularly-mediated forces are necessary and sufficient for flagellar synchronisation, with hydrodynamic coupling causing minimal changes in flagellar dynamics. However, fluid-mediated ciliary coupling is responsible for the extended periods of anti-phase synchronisation observed in a mutant with weaker intracellular coupling. At the single-cell level, therefore, flagellar coordination depends on a subtle balance between intracellular and extracellular forces.
title The role of hydrodynamics in the synchronisation of {\it Chlamydomonas} flagella
topic Biological Physics
Cell Behavior
url https://arxiv.org/abs/2504.02680