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Preprint: Local synchronization of cilia and tissue-scale cilia alignment are sufficient for global metachronal waves

  • Motile cilia are hair-like cell extensions present in multiple organs of the body. How cilia coordinate their regular beat in multiciliated epithelia to move fluids remains insufficiently understood, particularly due to lack of rigorous quantification. We combine here experiments, novel analysis tools, and theory to address this knowledge gap. We investigate collective dynamics of cilia in the zebrafish nose, due to its conserved properties with other ciliated tissues and its superior accessibility for non-invasive imaging. We revealed that cilia are synchronized only locally and that the size of local synchronization domains increases with the viscosity of the surrounding medium. Despite the fact that synchronization is local only, we observed global patterns of traveling metachronal waves across the multiciliated epithelium. Intriguingly, these global wave direction patterns are conserved across individual fish, but different for left and right nose, unveiling a chiral asymmetry of metachronal coordination. To understand the implications of synchronization for fluid pumping, we used a computational model of a regular array of cilia. We found that local metachronal synchronization prevents steric collisions and improves fluid pumping in dense cilia carpets, but hardly affects the direction of fluid flow. In conclusion, we show that local synchronization together with tissue-scale cilia alignment are sufficient to generate metachronal wave patterns in multiciliated epithelia, which enhance their physiological function of fluid pumping.

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Metadaten
Author:Christa Ringers, Stephan BialonskiORCiD, Anton Solovev, Jan N. Hansen, Mert Ege, Benjamin M. Friedrich, Nathalie Jurisch-Yaksi
DOI:https://doi.org/10.1101/2021.11.23.469646
Parent Title (English):bioRxiv
Document Type:Preprint
Language:English
Year of Completion:2021
Date of the Publication (Server):2024/01/17
Length:19 Seiten
Note:
Veröffentlicht in eLife 12:e77701 (https://doi.org/10.7554/eLife.77701).
Link:https://www.biorxiv.org/content/10.1101/2021.11.23.469646v3 (Preprint)
Link:https://doi.org/10.7554/eLife.77701 (Veröffentlichte Version)
Zugriffsart:weltweit
Institutes:FH Aachen / Fachbereich Medizintechnik und Technomathematik
Licence (German):License LogoCreative Commons - Namensnennung-Nicht kommerziell-Keine Bearbeitung