Statements in which the resource exists as a subject.
PredicateObject
rdf:type
lifeskim:mentions
pubmed:issue
6
pubmed:dateCreated
2010-5-18
pubmed:abstractText
Mammalian forebrain development requires extensive migration, yet the mechanisms through which migrating neurons sense and respond to guidance cues are not well understood. Similar to the axon growth cone, the leading process and branches of neurons may guide migration, but the cytoskeletal events that regulate branching are unknown. We have previously shown that loss of microtubule-associated protein Lis1 reduces branching during migration compared with wild-type neurons. Using time-lapse imaging of Lis1(+/-) and Lis1(+/+) cells migrating from medial ganglionic eminence explant cultures, we show that the branching defect is not due to a failure to initiate branches but a defect in the stabilization of new branches. The leading processes of Lis1(+/-) neurons have reduced expression of stabilized, acetylated microtubules compared with Lis1(+/+) neurons. To determine whether Lis1 modulates branch stability through its role as the noncatalytic beta regulatory subunit of platelet-activating factor (PAF) acetylhydrolase 1b, exogenous PAF was applied to wild-type cells. Excess PAF added to wild-type neurons phenocopies the branch instability observed in Lis1(+/-) neurons, and a PAF antagonist rescues leading process branching in Lis1(+/-) neurons. These data highlight a role for Lis1, acting through the PAF pathway, in leading process branching and microtubule stabilization.
pubmed:grant
pubmed:commentsCorrections
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pubmed:language
eng
pubmed:journal
pubmed:citationSubset
IM
pubmed:chemical
pubmed:status
MEDLINE
pubmed:month
Jun
pubmed:issn
1460-2199
pubmed:author
pubmed:issnType
Electronic
pubmed:volume
20
pubmed:owner
NLM
pubmed:authorsComplete
Y
pubmed:pagination
1497-505
pubmed:dateRevised
2011-7-28
pubmed:meshHeading
pubmed-meshheading:19861636-1-Alkyl-2-acetylglycerophosphocholine Esterase, pubmed-meshheading:19861636-Animals, pubmed-meshheading:19861636-Axons, pubmed-meshheading:19861636-Cell Differentiation, pubmed-meshheading:19861636-Cell Movement, pubmed-meshheading:19861636-Cells, Cultured, pubmed-meshheading:19861636-Dendrites, pubmed-meshheading:19861636-Interneurons, pubmed-meshheading:19861636-Mice, pubmed-meshheading:19861636-Mice, Knockout, pubmed-meshheading:19861636-Mice, Transgenic, pubmed-meshheading:19861636-Microtubule-Associated Proteins, pubmed-meshheading:19861636-Microtubules, pubmed-meshheading:19861636-Neurites, pubmed-meshheading:19861636-Neurogenesis, pubmed-meshheading:19861636-Organ Culture Techniques, pubmed-meshheading:19861636-Prosencephalon, pubmed-meshheading:19861636-Protein Subunits, pubmed-meshheading:19861636-Signal Transduction
pubmed:year
2010
pubmed:articleTitle
Leading process branch instability in Lis1+/- nonradially migrating interneurons.
pubmed:affiliation
University of Pennsylvania School of Medicine, Philadelphia, PA 19104, USA.
pubmed:publicationType
Journal Article, Research Support, N.I.H., Extramural