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Competitive Dynamics during Resource-Driven Neurite Outgrowth

Neurons form networks by growing out neurites that synaptically connect to other neurons. During this process, neurites develop complex branched trees. Interestingly, the outgrowth of neurite branches is often accompanied by the simultaneous withdrawal of other branches belonging to the same tree. T...

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Autores principales: Hjorth, J. J. Johannes, van Pelt, Jaap, Mansvelder, Huibert D., van Ooyen, Arjen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3911915/
https://www.ncbi.nlm.nih.gov/pubmed/24498280
http://dx.doi.org/10.1371/journal.pone.0086741
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author Hjorth, J. J. Johannes
van Pelt, Jaap
Mansvelder, Huibert D.
van Ooyen, Arjen
author_facet Hjorth, J. J. Johannes
van Pelt, Jaap
Mansvelder, Huibert D.
van Ooyen, Arjen
author_sort Hjorth, J. J. Johannes
collection PubMed
description Neurons form networks by growing out neurites that synaptically connect to other neurons. During this process, neurites develop complex branched trees. Interestingly, the outgrowth of neurite branches is often accompanied by the simultaneous withdrawal of other branches belonging to the same tree. This apparent competitive outgrowth between branches of the same neuron is relevant for the formation of synaptic connectivity, but the underlying mechanisms are unknown. An essential component of neurites is the cytoskeleton of microtubules, long polymers of tubulin dimers running throughout the entire neurite. To investigate whether competition between neurites can emerge from the dynamics of a resource such as tubulin, we developed a multi-compartmental model of neurite growth. In the model, tubulin is produced in the soma and transported by diffusion and active transport to the growth cones at the tip of the neurites, where it is assembled into microtubules to elongate the neurite. Just as in experimental studies, we find that the outgrowth of a neurite branch can lead to the simultaneous retraction of its neighboring branches. We show that these competitive interactions occur in simple neurite morphologies as well as in complex neurite arborizations and that in developing neurons competition for a growth resource such as tubulin can account for the differential outgrowth of neurite branches. The model predicts that competition between neurite branches decreases with path distance between growth cones, increases with path distance from growth cone to soma, and decreases with a higher rate of active transport. Together, our results suggest that competition between outgrowing neurites can already emerge from relatively simple and basic dynamics of a growth resource. Our findings point to the need to test the model predictions and to determine, by monitoring tubulin concentrations in outgrowing neurons, whether tubulin is the resource for which neurites compete.
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spelling pubmed-39119152014-02-04 Competitive Dynamics during Resource-Driven Neurite Outgrowth Hjorth, J. J. Johannes van Pelt, Jaap Mansvelder, Huibert D. van Ooyen, Arjen PLoS One Research Article Neurons form networks by growing out neurites that synaptically connect to other neurons. During this process, neurites develop complex branched trees. Interestingly, the outgrowth of neurite branches is often accompanied by the simultaneous withdrawal of other branches belonging to the same tree. This apparent competitive outgrowth between branches of the same neuron is relevant for the formation of synaptic connectivity, but the underlying mechanisms are unknown. An essential component of neurites is the cytoskeleton of microtubules, long polymers of tubulin dimers running throughout the entire neurite. To investigate whether competition between neurites can emerge from the dynamics of a resource such as tubulin, we developed a multi-compartmental model of neurite growth. In the model, tubulin is produced in the soma and transported by diffusion and active transport to the growth cones at the tip of the neurites, where it is assembled into microtubules to elongate the neurite. Just as in experimental studies, we find that the outgrowth of a neurite branch can lead to the simultaneous retraction of its neighboring branches. We show that these competitive interactions occur in simple neurite morphologies as well as in complex neurite arborizations and that in developing neurons competition for a growth resource such as tubulin can account for the differential outgrowth of neurite branches. The model predicts that competition between neurite branches decreases with path distance between growth cones, increases with path distance from growth cone to soma, and decreases with a higher rate of active transport. Together, our results suggest that competition between outgrowing neurites can already emerge from relatively simple and basic dynamics of a growth resource. Our findings point to the need to test the model predictions and to determine, by monitoring tubulin concentrations in outgrowing neurons, whether tubulin is the resource for which neurites compete. Public Library of Science 2014-02-03 /pmc/articles/PMC3911915/ /pubmed/24498280 http://dx.doi.org/10.1371/journal.pone.0086741 Text en © 2014 Hjorth 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
Hjorth, J. J. Johannes
van Pelt, Jaap
Mansvelder, Huibert D.
van Ooyen, Arjen
Competitive Dynamics during Resource-Driven Neurite Outgrowth
title Competitive Dynamics during Resource-Driven Neurite Outgrowth
title_full Competitive Dynamics during Resource-Driven Neurite Outgrowth
title_fullStr Competitive Dynamics during Resource-Driven Neurite Outgrowth
title_full_unstemmed Competitive Dynamics during Resource-Driven Neurite Outgrowth
title_short Competitive Dynamics during Resource-Driven Neurite Outgrowth
title_sort competitive dynamics during resource-driven neurite outgrowth
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3911915/
https://www.ncbi.nlm.nih.gov/pubmed/24498280
http://dx.doi.org/10.1371/journal.pone.0086741
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