Literature DB >> 29669897

Axon growth regulation by a bistable molecular switch.

Pranesh Padmanabhan1, Geoffrey J Goodhill2,3.   

Abstract

For the brain to function properly, its neurons must make the right connections during neural development. A key aspect of this process is the tight regulation of axon growth as axons navigate towards their targets. Neuronal growth cones at the tips of developing axons switch between growth and paused states during axonal pathfinding, and this switching behaviour determines the heterogeneous axon growth rates observed during brain development. The mechanisms controlling this switching behaviour, however, remain largely unknown. Here, using mathematical modelling, we predict that the molecular interaction network involved in axon growth can exhibit bistability, with one state representing a fast-growing growth cone state and the other a paused growth cone state. Owing to stochastic effects, even in an unchanging environment, model growth cones reversibly switch between growth and paused states. Our model further predicts that environmental signals could regulate axon growth rate by controlling the rates of switching between the two states. Our study presents a new conceptual understanding of growth cone switching behaviour, and suggests that axon guidance may be controlled by both cell-extrinsic factors and cell-intrinsic growth regulatory mechanisms.
© 2018 The Author(s).

Keywords:  axon guidance; bistability; growth cone; signal-transduction; stochastic switches

Mesh:

Year:  2018        PMID: 29669897      PMCID: PMC5936722          DOI: 10.1098/rspb.2017.2618

Source DB:  PubMed          Journal:  Proc Biol Sci        ISSN: 0962-8452            Impact factor:   5.349


  72 in total

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Review 8.  Cell adhesion and invasion mechanisms that guide developing axons.

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Authors:  David E Koser; Amelia J Thompson; Sarah K Foster; Asha Dwivedy; Eva K Pillai; Graham K Sheridan; Hanno Svoboda; Matheus Viana; Luciano da F Costa; Jochen Guck; Christine E Holt; Kristian Franze
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Review 3.  With the Permission of Microtubules: An Updated Overview on Microtubule Function During Axon Pathfinding.

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  5 in total

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