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Spontaneously Beating Biomimetic Structures.

Abstract

The propulsion of motile cells such as sperms and the transport of fluids on cell surfaces rely on oscillatory bending of cellular appendages that can perform periodic oscillations. These structures are flagella and cilia. Their beating is driven by the interaction between microtubules and motor proteins and the mechanism regulating this is still a puzzle. One approach to address this issue is the assembling of synthetic minimal systems by using natural building blocks, e.g., microtubules and kinesin motors, which undergo persistent oscillation in the presence of ATP. An example of an autonomous molecular system is reported in this chapter. It dynamically self-organizes through its elasticity and the interaction with the environment represented by the active forces exerted by motor proteins. The resulting motion resembles the beating of sperm flagella. Assembling such minimal systems able to mimic the behavior of complex biological structures might help to unveil basic mechanisms underlying the beating of natural cilia and flagella.
© 2022. The Author(s), under exclusive license to Springer Science+Business Media, LLC, part of Springer Nature.

Authors

Isabella Guido

Max Planck Institute for Dynamics and Self-Organization, Göttingen, Germany. isabella.guido@ds.mpg.de.

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36 products referenced in this paper

(A-6397) TRITC Polyclonal Antibody

an Antibody by Invitrogen Antibodies

(B3640) Anti-Biotin antibody produced in goat

an Antibody by SIGMA

(SCJ4600044) CF™ 640R succinimidyl ester

an Antibody by SIGMA

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Journal Methods in Molecular Biology (Clifton, N.J.)

Volume 2430

Pages 205-218

Publication Date 28 April 2022

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Publication metadata is provided by PubMed®, courtesy of the U.S. National Library of Medicine. Information for this publication was last updated on 2026-06-13 17:35:21 UTC.

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