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N-terminal acetylation and arginylation of actin determines the architecture and assembly rate of linear and branched actin networks

The great diversity in actin network architectures and dynamics is exploited by cells to drive fundamental biological processes, including cell migration, endocytosis, and cell division. While it is known that this versatility is the result of the many actin-remodeling activities of actin-binding pr...

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Autores principales: Chin, Samantha M., Hatano, Tomoyuki, Sivashanmugam, Lavanya, Suchenko, Andrejus, Kashina, Anna S., Balasubramanian, Mohan K., Jansen, Silvia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9597890/
https://www.ncbi.nlm.nih.gov/pubmed/36152749
http://dx.doi.org/10.1016/j.jbc.2022.102518
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author Chin, Samantha M.
Hatano, Tomoyuki
Sivashanmugam, Lavanya
Suchenko, Andrejus
Kashina, Anna S.
Balasubramanian, Mohan K.
Jansen, Silvia
author_facet Chin, Samantha M.
Hatano, Tomoyuki
Sivashanmugam, Lavanya
Suchenko, Andrejus
Kashina, Anna S.
Balasubramanian, Mohan K.
Jansen, Silvia
author_sort Chin, Samantha M.
collection PubMed
description The great diversity in actin network architectures and dynamics is exploited by cells to drive fundamental biological processes, including cell migration, endocytosis, and cell division. While it is known that this versatility is the result of the many actin-remodeling activities of actin-binding proteins, such as Arp2/3 and cofilin, recent work also implicates posttranslational acetylation or arginylation of the actin N terminus itself as an equally important regulatory mechanism. However, the molecular mechanisms by which acetylation and arginylation alter the properties of actin are not well understood. Here, we directly compare how processing and modification of the N terminus of actin affects its intrinsic polymerization dynamics and its remodeling by actin-binding proteins that are essential for cell migration. We find that in comparison to acetylated actin, arginylated actin reduces intrinsic as well as formin-mediated elongation and Arp2/3-mediated nucleation. By contrast, there are no significant differences in cofilin-mediated severing. Taken together, these results suggest that cells can employ these differently modified actins to regulate actin dynamics. In addition, unprocessed actin with an N-terminal methionine residue shows very different effects on formin-mediated elongation, Arp2/3-mediated nucleation, and severing by cofilin. Altogether, this study shows that the nature of the N terminus of actin can promote distinct actin network dynamics, which can be differentially used by cells to locally finetune actin dynamics at distinct cellular locations, such as at the leading edge.
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spelling pubmed-95978902022-10-27 N-terminal acetylation and arginylation of actin determines the architecture and assembly rate of linear and branched actin networks Chin, Samantha M. Hatano, Tomoyuki Sivashanmugam, Lavanya Suchenko, Andrejus Kashina, Anna S. Balasubramanian, Mohan K. Jansen, Silvia J Biol Chem Research Article The great diversity in actin network architectures and dynamics is exploited by cells to drive fundamental biological processes, including cell migration, endocytosis, and cell division. While it is known that this versatility is the result of the many actin-remodeling activities of actin-binding proteins, such as Arp2/3 and cofilin, recent work also implicates posttranslational acetylation or arginylation of the actin N terminus itself as an equally important regulatory mechanism. However, the molecular mechanisms by which acetylation and arginylation alter the properties of actin are not well understood. Here, we directly compare how processing and modification of the N terminus of actin affects its intrinsic polymerization dynamics and its remodeling by actin-binding proteins that are essential for cell migration. We find that in comparison to acetylated actin, arginylated actin reduces intrinsic as well as formin-mediated elongation and Arp2/3-mediated nucleation. By contrast, there are no significant differences in cofilin-mediated severing. Taken together, these results suggest that cells can employ these differently modified actins to regulate actin dynamics. In addition, unprocessed actin with an N-terminal methionine residue shows very different effects on formin-mediated elongation, Arp2/3-mediated nucleation, and severing by cofilin. Altogether, this study shows that the nature of the N terminus of actin can promote distinct actin network dynamics, which can be differentially used by cells to locally finetune actin dynamics at distinct cellular locations, such as at the leading edge. American Society for Biochemistry and Molecular Biology 2022-09-22 /pmc/articles/PMC9597890/ /pubmed/36152749 http://dx.doi.org/10.1016/j.jbc.2022.102518 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Chin, Samantha M.
Hatano, Tomoyuki
Sivashanmugam, Lavanya
Suchenko, Andrejus
Kashina, Anna S.
Balasubramanian, Mohan K.
Jansen, Silvia
N-terminal acetylation and arginylation of actin determines the architecture and assembly rate of linear and branched actin networks
title N-terminal acetylation and arginylation of actin determines the architecture and assembly rate of linear and branched actin networks
title_full N-terminal acetylation and arginylation of actin determines the architecture and assembly rate of linear and branched actin networks
title_fullStr N-terminal acetylation and arginylation of actin determines the architecture and assembly rate of linear and branched actin networks
title_full_unstemmed N-terminal acetylation and arginylation of actin determines the architecture and assembly rate of linear and branched actin networks
title_short N-terminal acetylation and arginylation of actin determines the architecture and assembly rate of linear and branched actin networks
title_sort n-terminal acetylation and arginylation of actin determines the architecture and assembly rate of linear and branched actin networks
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9597890/
https://www.ncbi.nlm.nih.gov/pubmed/36152749
http://dx.doi.org/10.1016/j.jbc.2022.102518
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