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The N-DRC forms a conserved biochemical complex that maintains outer doublet alignment and limits microtubule sliding in motile axonemes

The nexin–dynein regulatory complex (N-DRC) is proposed to coordinate dynein arm activity and interconnect doublet microtubules. Here we identify a conserved region in DRC4 critical for assembly of the N-DRC into the axoneme. At least 10 subunits associate with DRC4 to form a discrete complex distin...

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Autores principales: Bower, Raqual, Tritschler, Douglas, VanderWaal, Kristyn, Perrone, Catherine A., Mueller, Joshua, Fox, Laura, Sale, Winfield S., Porter, M. E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The American Society for Cell Biology 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3623635/
https://www.ncbi.nlm.nih.gov/pubmed/23427265
http://dx.doi.org/10.1091/mbc.E12-11-0801
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author Bower, Raqual
Tritschler, Douglas
VanderWaal, Kristyn
Perrone, Catherine A.
Mueller, Joshua
Fox, Laura
Sale, Winfield S.
Porter, M. E.
author_facet Bower, Raqual
Tritschler, Douglas
VanderWaal, Kristyn
Perrone, Catherine A.
Mueller, Joshua
Fox, Laura
Sale, Winfield S.
Porter, M. E.
author_sort Bower, Raqual
collection PubMed
description The nexin–dynein regulatory complex (N-DRC) is proposed to coordinate dynein arm activity and interconnect doublet microtubules. Here we identify a conserved region in DRC4 critical for assembly of the N-DRC into the axoneme. At least 10 subunits associate with DRC4 to form a discrete complex distinct from other axonemal substructures. Transformation of drc4 mutants with epitope-tagged DRC4 rescues the motility defects and restores assembly of missing DRC subunits and associated inner-arm dyneins. Four new DRC subunits contain calcium-signaling motifs and/or AAA domains and are nearly ubiquitous in species with motile cilia. However, drc mutants are motile and maintain the 9 + 2 organization of the axoneme. To evaluate the function of the N-DRC, we analyzed ATP-induced reactivation of isolated axonemes. Rather than the reactivated bending observed with wild-type axonemes, ATP addition to drc-mutant axonemes resulted in splaying of doublets in the distal region, followed by oscillatory bending between pairs of doublets. Thus the N-DRC provides some but not all of the resistance to microtubule sliding and helps to maintain optimal alignment of doublets for productive flagellar motility. These findings provide new insights into the mechanisms that regulate motility and further highlight the importance of the proximal region of the axoneme in generating flagellar bending.
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spelling pubmed-36236352013-06-30 The N-DRC forms a conserved biochemical complex that maintains outer doublet alignment and limits microtubule sliding in motile axonemes Bower, Raqual Tritschler, Douglas VanderWaal, Kristyn Perrone, Catherine A. Mueller, Joshua Fox, Laura Sale, Winfield S. Porter, M. E. Mol Biol Cell Articles The nexin–dynein regulatory complex (N-DRC) is proposed to coordinate dynein arm activity and interconnect doublet microtubules. Here we identify a conserved region in DRC4 critical for assembly of the N-DRC into the axoneme. At least 10 subunits associate with DRC4 to form a discrete complex distinct from other axonemal substructures. Transformation of drc4 mutants with epitope-tagged DRC4 rescues the motility defects and restores assembly of missing DRC subunits and associated inner-arm dyneins. Four new DRC subunits contain calcium-signaling motifs and/or AAA domains and are nearly ubiquitous in species with motile cilia. However, drc mutants are motile and maintain the 9 + 2 organization of the axoneme. To evaluate the function of the N-DRC, we analyzed ATP-induced reactivation of isolated axonemes. Rather than the reactivated bending observed with wild-type axonemes, ATP addition to drc-mutant axonemes resulted in splaying of doublets in the distal region, followed by oscillatory bending between pairs of doublets. Thus the N-DRC provides some but not all of the resistance to microtubule sliding and helps to maintain optimal alignment of doublets for productive flagellar motility. These findings provide new insights into the mechanisms that regulate motility and further highlight the importance of the proximal region of the axoneme in generating flagellar bending. The American Society for Cell Biology 2013-04-15 /pmc/articles/PMC3623635/ /pubmed/23427265 http://dx.doi.org/10.1091/mbc.E12-11-0801 Text en © 2013 Bower 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 BD; are registered trademarks of The American Society of Cell Biology.
spellingShingle Articles
Bower, Raqual
Tritschler, Douglas
VanderWaal, Kristyn
Perrone, Catherine A.
Mueller, Joshua
Fox, Laura
Sale, Winfield S.
Porter, M. E.
The N-DRC forms a conserved biochemical complex that maintains outer doublet alignment and limits microtubule sliding in motile axonemes
title The N-DRC forms a conserved biochemical complex that maintains outer doublet alignment and limits microtubule sliding in motile axonemes
title_full The N-DRC forms a conserved biochemical complex that maintains outer doublet alignment and limits microtubule sliding in motile axonemes
title_fullStr The N-DRC forms a conserved biochemical complex that maintains outer doublet alignment and limits microtubule sliding in motile axonemes
title_full_unstemmed The N-DRC forms a conserved biochemical complex that maintains outer doublet alignment and limits microtubule sliding in motile axonemes
title_short The N-DRC forms a conserved biochemical complex that maintains outer doublet alignment and limits microtubule sliding in motile axonemes
title_sort n-drc forms a conserved biochemical complex that maintains outer doublet alignment and limits microtubule sliding in motile axonemes
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3623635/
https://www.ncbi.nlm.nih.gov/pubmed/23427265
http://dx.doi.org/10.1091/mbc.E12-11-0801
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