Dendrite-like process formation and cytoskeletal remodeling regulated by δ-catenin expression

Kwonseop Kim, Anna Sirota, Yan Hua Chen, Shiloh B. Jones, Ronald Dudek, George W. Lanford, Chittam Thakore, Qun Lu

Research output: Contribution to journalArticlepeer-review

73 Scopus citations

Abstract

Actin- and microtubule-mediated changes in cell shape are essential for many cellular activities. However, the molecular mechanisms underlying the interplay between the two are complex and remain obscure. Here we show that the expression of δ-catenin (or NPRAP/Neurojungin), a member of p120ctn subfamily of armadillo proteins can induce the branching of dendrite-like processes in 3T3 cells and enhance dendritic morphogenesis in primary hippocampal neurons. This induction of branching phenotype involves initially the disruption of filamentous actin, and requires the growth of microtubules. The carboxyl-terminal truncation mutant of δ-catenin can cluster and redistribute the full-length protein, and dominantly inhibit its branching effect. δ-Catenin forms protein complexes and can bind directly to actin in vitro. The carboxyl-terminal truncation of δ-catenin does not interfere with its actin-binding capability; therefore the actin interaction alone is not sufficient for the induction of dendrite-like processes. When δ-catenin-transformed cells establish elaborate dendrite-like branches, the main cellular processes become stabilized and resist the disruption of both actin filaments and microtubules, as determined by fluorescent light microscopy and time-lapse recording analyses. We suggest that δ-catenin can effect a biphasic cytoskeletal remodeling event which differentially regulates actin and microtubules and promotes cellular morphogenesis.

Original languageEnglish (US)
Pages (from-to)171-184
Number of pages14
JournalExperimental Cell Research
Volume275
Issue number2
DOIs
StatePublished - 2002
Externally publishedYes

Keywords

  • Actin filament
  • Cellular morphogenesis
  • Cytoskeletal remodeling
  • Electron microscopy
  • Fluorescent microscopy
  • Microtubule stabilization
  • Time-lapse recording

ASJC Scopus subject areas

  • Cell Biology

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