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Nano-Particles Carried by Multiple Dynein Motors Self-Regulate Their Number of Actively Participating Motors

Intra-cellular active transport by native cargos is ubiquitous. We investigate the motion of spherical nano-particles (NPs) grafted with flexible polymers that end with a nuclear localization signal peptide. This peptide allows the recruitment of several mammalian dynein motors from cytoplasmic extr...

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Autores principales: Halbi, Gal, Fayer, Itay, Aranovich, Dina, Gat, Shachar, Bar, Shay, Erukhimovitch, Vitaly, Granek, Rony, Bernheim-Groswasser, Anne
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8396316/
https://www.ncbi.nlm.nih.gov/pubmed/34445598
http://dx.doi.org/10.3390/ijms22168893
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author Halbi, Gal
Fayer, Itay
Aranovich, Dina
Gat, Shachar
Bar, Shay
Erukhimovitch, Vitaly
Granek, Rony
Bernheim-Groswasser, Anne
author_facet Halbi, Gal
Fayer, Itay
Aranovich, Dina
Gat, Shachar
Bar, Shay
Erukhimovitch, Vitaly
Granek, Rony
Bernheim-Groswasser, Anne
author_sort Halbi, Gal
collection PubMed
description Intra-cellular active transport by native cargos is ubiquitous. We investigate the motion of spherical nano-particles (NPs) grafted with flexible polymers that end with a nuclear localization signal peptide. This peptide allows the recruitment of several mammalian dynein motors from cytoplasmic extracts. To determine how motor–motor interactions influenced motility on the single microtubule level, we conducted bead-motility assays incorporating surface adsorbed microtubules and combined them with model simulations that were based on the properties of a single dynein. The experimental and simulation results revealed long time trajectories: when the number of NP-ligated motors N(m) increased, run-times and run-lengths were enhanced and mean velocities were somewhat decreased. Moreover, the dependence of the velocity on run-time followed a universal curve, regardless of the system composition. Model simulations also demonstrated left- and right-handed helical motion and revealed self-regulation of the number of microtubule-bound, actively transporting dynein motors. This number was stochastic along trajectories and was distributed mainly between one, two, and three motors, regardless of N(m). We propose that this self-regulation allows our synthetic NPs to achieve persistent motion that is associated with major helicity. Such a helical motion might affect obstacle bypassing, which can influence active transport efficiency when facing the crowded environment of the cell.
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spelling pubmed-83963162021-08-28 Nano-Particles Carried by Multiple Dynein Motors Self-Regulate Their Number of Actively Participating Motors Halbi, Gal Fayer, Itay Aranovich, Dina Gat, Shachar Bar, Shay Erukhimovitch, Vitaly Granek, Rony Bernheim-Groswasser, Anne Int J Mol Sci Article Intra-cellular active transport by native cargos is ubiquitous. We investigate the motion of spherical nano-particles (NPs) grafted with flexible polymers that end with a nuclear localization signal peptide. This peptide allows the recruitment of several mammalian dynein motors from cytoplasmic extracts. To determine how motor–motor interactions influenced motility on the single microtubule level, we conducted bead-motility assays incorporating surface adsorbed microtubules and combined them with model simulations that were based on the properties of a single dynein. The experimental and simulation results revealed long time trajectories: when the number of NP-ligated motors N(m) increased, run-times and run-lengths were enhanced and mean velocities were somewhat decreased. Moreover, the dependence of the velocity on run-time followed a universal curve, regardless of the system composition. Model simulations also demonstrated left- and right-handed helical motion and revealed self-regulation of the number of microtubule-bound, actively transporting dynein motors. This number was stochastic along trajectories and was distributed mainly between one, two, and three motors, regardless of N(m). We propose that this self-regulation allows our synthetic NPs to achieve persistent motion that is associated with major helicity. Such a helical motion might affect obstacle bypassing, which can influence active transport efficiency when facing the crowded environment of the cell. MDPI 2021-08-18 /pmc/articles/PMC8396316/ /pubmed/34445598 http://dx.doi.org/10.3390/ijms22168893 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Halbi, Gal
Fayer, Itay
Aranovich, Dina
Gat, Shachar
Bar, Shay
Erukhimovitch, Vitaly
Granek, Rony
Bernheim-Groswasser, Anne
Nano-Particles Carried by Multiple Dynein Motors Self-Regulate Their Number of Actively Participating Motors
title Nano-Particles Carried by Multiple Dynein Motors Self-Regulate Their Number of Actively Participating Motors
title_full Nano-Particles Carried by Multiple Dynein Motors Self-Regulate Their Number of Actively Participating Motors
title_fullStr Nano-Particles Carried by Multiple Dynein Motors Self-Regulate Their Number of Actively Participating Motors
title_full_unstemmed Nano-Particles Carried by Multiple Dynein Motors Self-Regulate Their Number of Actively Participating Motors
title_short Nano-Particles Carried by Multiple Dynein Motors Self-Regulate Their Number of Actively Participating Motors
title_sort nano-particles carried by multiple dynein motors self-regulate their number of actively participating motors
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8396316/
https://www.ncbi.nlm.nih.gov/pubmed/34445598
http://dx.doi.org/10.3390/ijms22168893
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