Unbound MEDLINE

PKM zeta restricts dendritic arbor growth by filopodial and branch stabilization within the intact and awake developing brain. The Journal of neuroscience : the official journal of the Society for Neuroscience [J Neurosci] Journal article

 
TitlePKM zeta restricts dendritic arbor growth by filopodial and branch stabilization within the intact and awake developing brain.
Author(s)Liu XF, Tari PK, Haas K 
InstitutionDepartment of Cellular and Physiological Sciences, University of British Columbia, Graduate Program in Neuroscience, Brain Research Centre, Vancouver, British Columbia V6T 2B5, Canada.
SourceJ Neurosci 2009 Sep 30; 29(39):12229-35.
MeSHAmino Acid Sequence
Animals
Brain
Dendrites
Mice
Molecular Sequence Data
Neurogenesis
Neuronal Plasticity
Protein Kinase C
Pseudopodia
Superior Colliculi
Wakefulness
Xenopus Proteins
Xenopus laevis
AbstractThe molecular mechanisms underlying activity-dependent neural circuit growth and plasticity during early brain development remain poorly understood. Protein kinase Mzeta (PKMz), an endogenous constitutively active kinase associated with late-phase long-term synaptic potentiation and memory in the mature brain, is expressed in the embryonic Xenopus retinotectal system with heightened levels during peak periods of dendrite growth and synaptogenesis. In vivo rapid time-lapse imaging of actively growing tectal neurons and comprehensive three-dimensional tracking of dynamic dendritic growth behavior finds that altered PKMz activity affects morphologic stabilization. Exogenous expression of PKMz within single neurons stabilizes dendritic filopodia by increasing dendritic filopodial lifetimes and decreasing filopodial additions, eliminations, and motility, whereas long-term in vivo imaging demonstrates restricted expansion of the dendritic arbor. Alternatively, blocking endogenous PKMz activity in individual growing tectal neurons with an inhibitory peptide (zeta-inhibitory peptide) destabilizes dendritic filopodia and over long periods promotes excessive arbor expansion. Furthermore, inhibiting endogenous PKMz throughout the tectum decreases colocalization of immunostained presynaptic and postsynaptic markers, SNAP-25 and PSD-95, respectively, suggesting impaired synapse maintenance. Together, these results implicate PKMz activity in restricting dendritic arborization during embryonic brain circuit development through synaptotropic stabilization of dynamic processes.
Languageeng
Pub Type(s)Comparative Study
Journal Article
Research Support, Non-U.S. Gov't
PubMed ID19793981
  
Advertise on this site.