Literature DB >> 24559984

Axonal transport: how high microtubule density can compensate for boundary effects in small-caliber axons.

Juliana C Wortman1, Uttam M Shrestha1, Devin M Barry2, Michael L Garcia3, Steven P Gross4, Clare C Yu5.   

Abstract

Long-distance intracellular axonal transport is predominantly microtubule-based, and its impairment is linked to neurodegeneration. In this study, we present theoretical arguments that suggest that near the axon boundaries (walls), the effective viscosity can become large enough to impede cargo transport in small (but not large) caliber axons. Our theoretical analysis suggests that this opposition to motion increases rapidly as the cargo approaches the wall. We find that having parallel microtubules close enough together to enable a cargo to simultaneously engage motors on more than one microtubule dramatically enhances motor activity, and thus minimizes the effects of any opposition to transport. Even if microtubules are randomly placed in axons, we find that the higher density of microtubules found in small-caliber axons increases the probability of having parallel microtubules close enough that they can be used simultaneously by motors on a cargo. The boundary effect is not a factor in transport in large-caliber axons where the microtubule density is lower.
Copyright © 2014 Biophysical Society. Published by Elsevier Inc. All rights reserved.

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Year:  2014        PMID: 24559984      PMCID: PMC3944719          DOI: 10.1016/j.bpj.2013.12.047

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  68 in total

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Authors:  Steven P Gross; Michael A Welte; Steven M Block; Eric F Wieschaus
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  15 in total

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8.  A Stochastic Multiscale Model That Explains the Segregation of Axonal Microtubules and Neurofilaments in Neurological Diseases.

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Review 10.  Axonal mRNA translation in neurological disorders.

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