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Actin Dynamics and Competition for Myosin Monomer Govern the Sequential Amplification of Myosin Filaments

Cellular mechanisms governing non-muscle myosin 2 (NM2) filament assembly are largely unknown. Using EGFP-NM2A knock-in fibroblasts and multiple super-resolution imaging modalities, we characterized and quantified the sequential amplification of NM2 filaments within lamella, wherein filaments emanat...

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Autores principales: Beach, Jordan R., Bruun, Kyle S., Shao, Lin, Li, Dong, Swider, Zac, Remmert, Kirsten, Zhang, Yingfan, Conti, Mary A., Adelstein, Robert S., Rusan, Nasser M., Betzig, Eric, Hammer, John A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5308804/
https://www.ncbi.nlm.nih.gov/pubmed/28114272
http://dx.doi.org/10.1038/ncb3463
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author Beach, Jordan R.
Bruun, Kyle S.
Shao, Lin
Li, Dong
Swider, Zac
Remmert, Kirsten
Zhang, Yingfan
Conti, Mary A.
Adelstein, Robert S.
Rusan, Nasser M.
Betzig, Eric
Hammer, John A.
author_facet Beach, Jordan R.
Bruun, Kyle S.
Shao, Lin
Li, Dong
Swider, Zac
Remmert, Kirsten
Zhang, Yingfan
Conti, Mary A.
Adelstein, Robert S.
Rusan, Nasser M.
Betzig, Eric
Hammer, John A.
author_sort Beach, Jordan R.
collection PubMed
description Cellular mechanisms governing non-muscle myosin 2 (NM2) filament assembly are largely unknown. Using EGFP-NM2A knock-in fibroblasts and multiple super-resolution imaging modalities, we characterized and quantified the sequential amplification of NM2 filaments within lamella, wherein filaments emanating from single nucleation events continuously partition, forming filament clusters that populate large-scale actomyosin structures deeper in the cell. Individual partitioning events coincide spatially and temporally with the movements of diverging actin fibers, suppression of which inhibits partitioning. These and other data indicate that NM2A filaments are partitioned by the dynamic movements of actin fibers to which they are bound. Finally, we showed that partition frequency and filament growth rate in the lamella depend on MLCK, and that MLCK is competing with centrally-active ROCK for a limiting pool of monomer with which to drive lamellar filament assembly. Together, our results provide new insights into the mechanism and spatio-temporal regulation of NM2 filament assembly in cells.
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spelling pubmed-53088042017-07-23 Actin Dynamics and Competition for Myosin Monomer Govern the Sequential Amplification of Myosin Filaments Beach, Jordan R. Bruun, Kyle S. Shao, Lin Li, Dong Swider, Zac Remmert, Kirsten Zhang, Yingfan Conti, Mary A. Adelstein, Robert S. Rusan, Nasser M. Betzig, Eric Hammer, John A. Nat Cell Biol Article Cellular mechanisms governing non-muscle myosin 2 (NM2) filament assembly are largely unknown. Using EGFP-NM2A knock-in fibroblasts and multiple super-resolution imaging modalities, we characterized and quantified the sequential amplification of NM2 filaments within lamella, wherein filaments emanating from single nucleation events continuously partition, forming filament clusters that populate large-scale actomyosin structures deeper in the cell. Individual partitioning events coincide spatially and temporally with the movements of diverging actin fibers, suppression of which inhibits partitioning. These and other data indicate that NM2A filaments are partitioned by the dynamic movements of actin fibers to which they are bound. Finally, we showed that partition frequency and filament growth rate in the lamella depend on MLCK, and that MLCK is competing with centrally-active ROCK for a limiting pool of monomer with which to drive lamellar filament assembly. Together, our results provide new insights into the mechanism and spatio-temporal regulation of NM2 filament assembly in cells. 2017-01-23 2017-02 /pmc/articles/PMC5308804/ /pubmed/28114272 http://dx.doi.org/10.1038/ncb3463 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Beach, Jordan R.
Bruun, Kyle S.
Shao, Lin
Li, Dong
Swider, Zac
Remmert, Kirsten
Zhang, Yingfan
Conti, Mary A.
Adelstein, Robert S.
Rusan, Nasser M.
Betzig, Eric
Hammer, John A.
Actin Dynamics and Competition for Myosin Monomer Govern the Sequential Amplification of Myosin Filaments
title Actin Dynamics and Competition for Myosin Monomer Govern the Sequential Amplification of Myosin Filaments
title_full Actin Dynamics and Competition for Myosin Monomer Govern the Sequential Amplification of Myosin Filaments
title_fullStr Actin Dynamics and Competition for Myosin Monomer Govern the Sequential Amplification of Myosin Filaments
title_full_unstemmed Actin Dynamics and Competition for Myosin Monomer Govern the Sequential Amplification of Myosin Filaments
title_short Actin Dynamics and Competition for Myosin Monomer Govern the Sequential Amplification of Myosin Filaments
title_sort actin dynamics and competition for myosin monomer govern the sequential amplification of myosin filaments
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5308804/
https://www.ncbi.nlm.nih.gov/pubmed/28114272
http://dx.doi.org/10.1038/ncb3463
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