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bop5 mutations reveal new roles for the IC138 phosphoprotein in the regulation of flagellar motility and asymmetric waveforms

I1 dynein, or dynein f, is a highly conserved inner arm isoform that plays a key role in the regulation of flagellar motility. To understand how the IC138 IC/LC subcomplex modulates I1 activity, we characterized the molecular lesions and motility phenotypes of several bop5 alleles. bop5-3, bop5-4, a...

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Autores principales: VanderWaal, Kristyn E., Yamamoto, Ryosuke, Wakabayashi, Ken-ichi, Fox, Laura, Kamiya, Ritsu, Dutcher, Susan K., Bayly, Phillip V., Sale, Winfield S., Porter, Mary E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The American Society for Cell Biology 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3154882/
https://www.ncbi.nlm.nih.gov/pubmed/21697502
http://dx.doi.org/10.1091/mbc.E11-03-0270
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author VanderWaal, Kristyn E.
Yamamoto, Ryosuke
Wakabayashi, Ken-ichi
Fox, Laura
Kamiya, Ritsu
Dutcher, Susan K.
Bayly, Phillip V.
Sale, Winfield S.
Porter, Mary E.
author_facet VanderWaal, Kristyn E.
Yamamoto, Ryosuke
Wakabayashi, Ken-ichi
Fox, Laura
Kamiya, Ritsu
Dutcher, Susan K.
Bayly, Phillip V.
Sale, Winfield S.
Porter, Mary E.
author_sort VanderWaal, Kristyn E.
collection PubMed
description I1 dynein, or dynein f, is a highly conserved inner arm isoform that plays a key role in the regulation of flagellar motility. To understand how the IC138 IC/LC subcomplex modulates I1 activity, we characterized the molecular lesions and motility phenotypes of several bop5 alleles. bop5-3, bop5-4, and bop5-5 are null alleles, whereas bop5-6 is an intron mutation that reduces IC138 expression. I1 dynein assembles into the axoneme, but the IC138 IC/LC subcomplex is missing. bop5 strains, like other I1 mutants, swim forward with reduced swimming velocities and display an impaired reversal response during photoshock. Unlike mutants lacking the entire I1 dynein, however, bop5 strains exhibit normal phototaxis. bop5 defects are rescued by transformation with the wild-type IC138 gene. Analysis of flagellar waveforms reveals that loss of the IC138 subcomplex reduces shear amplitude, sliding velocities, and the speed of bend propagation in vivo, consistent with the reduction in microtubule sliding velocities observed in vitro. The results indicate that the IC138 IC/LC subcomplex is necessary to generate an efficient waveform for optimal motility, but it is not essential for phototaxis. These findings have significant implications for the mechanisms by which IC/LC complexes regulate dynein motor activity independent of effects on cargo binding or complex stability.
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spelling pubmed-31548822011-10-30 bop5 mutations reveal new roles for the IC138 phosphoprotein in the regulation of flagellar motility and asymmetric waveforms VanderWaal, Kristyn E. Yamamoto, Ryosuke Wakabayashi, Ken-ichi Fox, Laura Kamiya, Ritsu Dutcher, Susan K. Bayly, Phillip V. Sale, Winfield S. Porter, Mary E. Mol Biol Cell Articles I1 dynein, or dynein f, is a highly conserved inner arm isoform that plays a key role in the regulation of flagellar motility. To understand how the IC138 IC/LC subcomplex modulates I1 activity, we characterized the molecular lesions and motility phenotypes of several bop5 alleles. bop5-3, bop5-4, and bop5-5 are null alleles, whereas bop5-6 is an intron mutation that reduces IC138 expression. I1 dynein assembles into the axoneme, but the IC138 IC/LC subcomplex is missing. bop5 strains, like other I1 mutants, swim forward with reduced swimming velocities and display an impaired reversal response during photoshock. Unlike mutants lacking the entire I1 dynein, however, bop5 strains exhibit normal phototaxis. bop5 defects are rescued by transformation with the wild-type IC138 gene. Analysis of flagellar waveforms reveals that loss of the IC138 subcomplex reduces shear amplitude, sliding velocities, and the speed of bend propagation in vivo, consistent with the reduction in microtubule sliding velocities observed in vitro. The results indicate that the IC138 IC/LC subcomplex is necessary to generate an efficient waveform for optimal motility, but it is not essential for phototaxis. These findings have significant implications for the mechanisms by which IC/LC complexes regulate dynein motor activity independent of effects on cargo binding or complex stability. The American Society for Cell Biology 2011-08-15 /pmc/articles/PMC3154882/ /pubmed/21697502 http://dx.doi.org/10.1091/mbc.E11-03-0270 Text en © 2011 VanderWaal et al. This article is distributed by The American Society for Cell Biology under license from the author(s). Two months after publication it is available to the public under an Attribution–Noncommercial–Share Alike 3.0 Unported Creative Commons License (http://creativecommons.org/licenses/by-nc-sa/3.0). “ASCB®,” “The American Society for Cell Biology®,” and “Molecular Biology of the Cell®” are registered trademarks of The American Society of Cell Biology.
spellingShingle Articles
VanderWaal, Kristyn E.
Yamamoto, Ryosuke
Wakabayashi, Ken-ichi
Fox, Laura
Kamiya, Ritsu
Dutcher, Susan K.
Bayly, Phillip V.
Sale, Winfield S.
Porter, Mary E.
bop5 mutations reveal new roles for the IC138 phosphoprotein in the regulation of flagellar motility and asymmetric waveforms
title bop5 mutations reveal new roles for the IC138 phosphoprotein in the regulation of flagellar motility and asymmetric waveforms
title_full bop5 mutations reveal new roles for the IC138 phosphoprotein in the regulation of flagellar motility and asymmetric waveforms
title_fullStr bop5 mutations reveal new roles for the IC138 phosphoprotein in the regulation of flagellar motility and asymmetric waveforms
title_full_unstemmed bop5 mutations reveal new roles for the IC138 phosphoprotein in the regulation of flagellar motility and asymmetric waveforms
title_short bop5 mutations reveal new roles for the IC138 phosphoprotein in the regulation of flagellar motility and asymmetric waveforms
title_sort bop5 mutations reveal new roles for the ic138 phosphoprotein in the regulation of flagellar motility and asymmetric waveforms
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3154882/
https://www.ncbi.nlm.nih.gov/pubmed/21697502
http://dx.doi.org/10.1091/mbc.E11-03-0270
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