Literature DB >> 22899847

Centrosome movements in vivo correlate with specific neurite formation downstream of LIM homeodomain transcription factor activity.

Erica F Andersen1, Mary C Halloran.   

Abstract

Neurons must develop complex structure to form proper connections in the nervous system. The initiation of axons in defined locations on the cell body and their extension to synaptic targets are critical steps in neuronal morphogenesis, yet the mechanisms controlling axon formation in vivo are poorly understood. The centrosome has been implicated in multiple aspects of neuronal morphogenesis; however, its function in axon development is under debate. Conflicting results from studies of centrosome function in axonogenesis suggest that its role is context dependent and underscore the importance of studying centrosome function as neurons develop in their natural environment. Using live imaging of zebrafish Rohon-Beard (RB) sensory neurons in vivo, we discovered a spatiotemporal relationship between centrosome position and the formation of RB peripheral, but not central, axons. We tested centrosome function by laser ablation and found that centrosome disruption inhibited peripheral axon outgrowth. In addition, we show that centrosome position and motility are regulated by LIM homeodomain transcription factor activity, which is specifically required for the development of RB peripheral axons. Furthermore, we show a correlation between centrosome mislocalization and ectopic axon formation in bashful (laminin alpha 1) mutants. Thus, both intrinsic transcription factor activity and extracellular cues can influence centrosome position and axon formation in vivo. This study presents the first positive association between the centrosome and axon formation in vivo and suggests that the centrosome is important for differential neurite formation in neurons with complex axonal morphologies.

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Year:  2012        PMID: 22899847      PMCID: PMC3436112          DOI: 10.1242/dev.081513

Source DB:  PubMed          Journal:  Development        ISSN: 0950-1991            Impact factor:   6.868


  59 in total

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Authors:  S Doxsey
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Authors:  H Segawa; T Miyashita; Y Hirate; S Higashijima; N Chino; K Uyemura; Y Kikuchi; H Okamoto
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7.  Sensory physiology, anatomy and immunohistochemistry of Rohon-Beard neurones in embryos of Xenopus laevis.

Authors:  J D Clarke; B P Hayes; S P Hunt; A Roberts
Journal:  J Physiol       Date:  1984-03       Impact factor: 5.182

8.  Multiple functions of LIM domain-binding CLIM/NLI/Ldb cofactors during zebrafish development.

Authors:  Thomas Becker; Heather P Ostendorff; Michael Bossenz; Anne Schlüter; Catherina G Becker; Reto I Peirano; Ingolf Bach
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  7 in total

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6.  Basal Protrusions Mediate Spatiotemporal Patterns of Spinal Neuron Differentiation.

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7.  Microtubules Modulate F-actin Dynamics during Neuronal Polarization.

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  7 in total

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