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Computational Modeling Reveals Optimal Strategy for Kinase Transport by Microtubules to Nerve Terminals

Intracellular transport of proteins by motors along cytoskeletal filaments is crucial to the proper functioning of many eukaryotic cells. Since most proteins are synthesized at the cell body, mechanisms are required to deliver them to the growing periphery. In this article, we use computational mode...

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Autores principales: Koon, Yen Ling, Koh, Cheng Gee, Chiam, Keng-Hwee
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3972164/
https://www.ncbi.nlm.nih.gov/pubmed/24691408
http://dx.doi.org/10.1371/journal.pone.0092437
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author Koon, Yen Ling
Koh, Cheng Gee
Chiam, Keng-Hwee
author_facet Koon, Yen Ling
Koh, Cheng Gee
Chiam, Keng-Hwee
author_sort Koon, Yen Ling
collection PubMed
description Intracellular transport of proteins by motors along cytoskeletal filaments is crucial to the proper functioning of many eukaryotic cells. Since most proteins are synthesized at the cell body, mechanisms are required to deliver them to the growing periphery. In this article, we use computational modeling to study the strategies of protein transport in the context of JNK (c-JUN NH2-terminal kinase) transport along microtubules to the terminals of neuronal cells. One such strategy for protein transport is for the proteins of the JNK signaling cascade to bind to scaffolds, and to have the whole protein-scaffold cargo transported by kinesin motors along microtubules. We show how this strategy outperforms protein transport by diffusion alone, using metrics such as signaling rate and signal amplification. We find that there exists a range of scaffold concentrations for which JNK transport is optimal. Increase in scaffold concentration increases signaling rate and signal amplification but an excess of scaffolds results in the dilution of reactants. Similarly, there exists a range of kinesin motor speeds for which JNK transport is optimal. Signaling rate and signal amplification increases with kinesin motor speed until the speed of motor translocation becomes faster than kinase/scaffold-motor binding. Finally, we suggest experiments that can be performed to validate whether, in physiological conditions, neuronal cells do indeed adopt such an optimal strategy. Understanding cytoskeletal-assisted protein transport is crucial since axonal and cell body accumulation of organelles and proteins is a histological feature in many human neurodegenerative diseases. In this paper, we have shown that axonal transport performance changes with altered transport component concentrations and transport speeds wherein these aspects can be modulated to improve axonal efficiency and prevent or slowdown axonal deterioration.
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spelling pubmed-39721642014-04-04 Computational Modeling Reveals Optimal Strategy for Kinase Transport by Microtubules to Nerve Terminals Koon, Yen Ling Koh, Cheng Gee Chiam, Keng-Hwee PLoS One Research Article Intracellular transport of proteins by motors along cytoskeletal filaments is crucial to the proper functioning of many eukaryotic cells. Since most proteins are synthesized at the cell body, mechanisms are required to deliver them to the growing periphery. In this article, we use computational modeling to study the strategies of protein transport in the context of JNK (c-JUN NH2-terminal kinase) transport along microtubules to the terminals of neuronal cells. One such strategy for protein transport is for the proteins of the JNK signaling cascade to bind to scaffolds, and to have the whole protein-scaffold cargo transported by kinesin motors along microtubules. We show how this strategy outperforms protein transport by diffusion alone, using metrics such as signaling rate and signal amplification. We find that there exists a range of scaffold concentrations for which JNK transport is optimal. Increase in scaffold concentration increases signaling rate and signal amplification but an excess of scaffolds results in the dilution of reactants. Similarly, there exists a range of kinesin motor speeds for which JNK transport is optimal. Signaling rate and signal amplification increases with kinesin motor speed until the speed of motor translocation becomes faster than kinase/scaffold-motor binding. Finally, we suggest experiments that can be performed to validate whether, in physiological conditions, neuronal cells do indeed adopt such an optimal strategy. Understanding cytoskeletal-assisted protein transport is crucial since axonal and cell body accumulation of organelles and proteins is a histological feature in many human neurodegenerative diseases. In this paper, we have shown that axonal transport performance changes with altered transport component concentrations and transport speeds wherein these aspects can be modulated to improve axonal efficiency and prevent or slowdown axonal deterioration. Public Library of Science 2014-04-01 /pmc/articles/PMC3972164/ /pubmed/24691408 http://dx.doi.org/10.1371/journal.pone.0092437 Text en © 2014 Koon et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Koon, Yen Ling
Koh, Cheng Gee
Chiam, Keng-Hwee
Computational Modeling Reveals Optimal Strategy for Kinase Transport by Microtubules to Nerve Terminals
title Computational Modeling Reveals Optimal Strategy for Kinase Transport by Microtubules to Nerve Terminals
title_full Computational Modeling Reveals Optimal Strategy for Kinase Transport by Microtubules to Nerve Terminals
title_fullStr Computational Modeling Reveals Optimal Strategy for Kinase Transport by Microtubules to Nerve Terminals
title_full_unstemmed Computational Modeling Reveals Optimal Strategy for Kinase Transport by Microtubules to Nerve Terminals
title_short Computational Modeling Reveals Optimal Strategy for Kinase Transport by Microtubules to Nerve Terminals
title_sort computational modeling reveals optimal strategy for kinase transport by microtubules to nerve terminals
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3972164/
https://www.ncbi.nlm.nih.gov/pubmed/24691408
http://dx.doi.org/10.1371/journal.pone.0092437
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