With eight flagella of four different lengths, the parasitic protist is an ideal model to evaluate flagellar assembly and length regulation. To determine how four different flagellar lengths are maintained, we used live-cell quantitative imaging and mathematical modeling of conserved components of intraflagellar transport (IFT)-mediated assembly and kinesin-13-mediated disassembly in different flagellar pairs. Each axoneme has a long cytoplasmic region extending from the basal body, and transitions to a canonical membrane-bound flagellum at the 'flagellar pore'. We determined that each flagellar pore is the site of IFT accumulation and injection, defining a diffusion barrier functionally analogous to the transition zone. IFT-mediated assembly is length-independent, as train size, speed, and injection frequencies are similar for all flagella. We demonstrate that kinesin-13 localization to the flagellar tips is inversely correlated to flagellar length. Therefore, we propose a model where a length-dependent disassembly mechanism controls multiple flagellar lengths within the same cell.
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http://dx.doi.org/10.7554/eLife.48694 | DOI Listing |
J Fluid Mech
November 2024
Department of Mathematics, University of North Carolina, Chapel Hill, NC, USA.
Microorganism motility often takes place within complex, viscoelastic fluid environments, e.g., sperm in cervicovaginal mucus and bacteria in biofilms.
View Article and Find Full Text PDFProc Natl Acad Sci U S A
October 2024
Department of Microbiology, University of Texas Southwestern Medical Center, Dallas, TX 75390-9048.
bioRxiv
September 2024
Department of Molecular and Cellular Biology, University of California Davis, Davis, CA 95616, USA.
The cilium is a microtubule-based organelle critical for many cellular functions. Its assembly initiates at a basal body and continues as an axoneme that projects out of the cell to form a functional cilium. This assembly process is tightly regulated.
View Article and Find Full Text PDFSoft Matter
September 2024
Department of Physics, Ulsan National Institute of Science and Technology, Ulsan, Republic of Korea.
In nature, bacteria often swim in complex fluids, but our understanding of the interactions between bacteria and complex surroundings is still evolving. In this work, rod-like swims in a quasi-2D environment with aqueous liquid-liquid interfaces, , the isotropic-nematic coexistence phase of an aqueous chromonic liquid crystal. Focusing on the bacteria motion near and at the liquid-liquid interfaces, we collect and quantify bacterial trajectories ranging across the isotropic to the nematic phase.
View Article and Find Full Text PDFHarmful Algae
September 2024
Graduate School of Agricultural and Life Sciences, The University of Tokyo, Yayoi, Bunkyo, Tokyo, 113-8657, Japan. Electronic address:
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