The novel catenin p120cas binds classical cadherins and induces an unusual morphological phenotype in NIH3T3

A B Reynolds1, J M Daniel, Y Y Mo

  • 1Department of Tumor Cell Biology, St. Jude Children's Research Hospital, Memphis, Tennessee 38105, USA.

Insights

p120cas (CAS) binds multiple cadherin family members, including N-cadherin and P-cadherin, through its armadillo repeats. Overexpression of CAS induces distinct cell morphology changes, suggesting unique roles compared to beta-catenin in cadherin complexes.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • p120cas (CAS) is a tyrosine kinase substrate involved in cell signaling and transformation.
  • CAS associates with E-cadherin and other catenins, crucial for cell adhesion.
  • The interaction domains and functional similarities/differences between CAS and beta-catenin are not fully understood.

Purpose of the Study:

  • To investigate the binding capabilities of CAS with different cadherin family members.
  • To elucidate the role of CAS domains in cadherin interactions.
  • To characterize the cellular effects of CAS overexpression compared to beta-catenin.

Main Methods:

  • Transient transfection of CAS isoforms into epithelial cells (MDCK).
  • Co-localization studies of CAS and N-cadherin in NIH3T3 cells.
  • Analysis of CAS mutants to determine the structural requirements for cadherin binding and morphological changes.

Main Results:

  • Wild-type CAS binds to N-cadherin and P-cadherin in addition to E-cadherin.
  • CAS isoforms (CAS1 and CAS2) are equally capable of binding E-cadherin.
  • The interaction between CAS and N-cadherin requires an intact CAS armadillo repeat domain.
  • Overexpression of CAS in NIH3T3 cells induces a unique dendrite-like branching phenotype, unlike beta-catenin.

Conclusions:

  • CAS acts as a cofactor for multiple cadherin family members, with interactions mediated by conserved armadillo repeats.
  • Alternative splicing of CAS does not significantly influence cadherin binding.
  • CAS and beta-catenin exhibit distinct cellular functions, potentially playing opposing roles in cadherin complex regulation.

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