Cell-body rocking is a dominant mechanism for flagellar synchronization in a swimming alga.
basic_science · Level V
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- Record sourced from PubMed, PMID 24145440.
- Also identified by DOI 10.1073/pnas.1300895110 and PMC identifier 3831503.
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Abstract
The unicellular green alga Chlamydomonas swims with two flagella that can synchronize their beat. Synchronized beating is required to swim both fast and straight. A long-standing hypothesis proposes that synchronization of flagella results from hydrodynamic coupling, but the details are not understood. Here, we present realistic hydrodynamic computations and high-speed tracking experiments of swimming cells that show how a perturbation from the synchronized state causes rotational motion of the cell body. This rotation feeds back on the flagellar dynamics via hydrodynamic friction forces and rapidly restores the synchronized state in our theory. We calculate that this "cell-body rocking" provides the dominant contribution to synchronization in swimming cells, whereas direct hydrodynamic interactions between the flagella contribute negligibly. We experimentally confirmed the two-way coupling between flagellar beating and cell-body rocking predicted by our theory.
Medical subject headings
- Chlamydomonas
- Flagella
- Locomotion
- Models, Biological