Tumorigenic fragments of APC cause dominant defects in directional cell migration in multiple model systems

Scott A Nelson1, Zhouyu Li, Ian P Newton

  • 1Division of Cell and Developmental Biology, College of Life Science, University of Dundee, Dundee, DD1 5EH, Scotland, UK.

Insights

Truncated adenomatous polyposis coli (APC) fragments disrupt directional cell migration, contributing to colorectal cancer development. This loss of directional movement, independent of β-catenin, suggests a gain-of-function mutation driving precancerous cell accumulation.

Area of Science:

  • Cell Biology
  • Cancer Research
  • Genetics

Background:

  • Nonsense mutations in the adenomatous polyposis coli (APC) gene produce truncated N-terminal fragments (N-APC).
  • These APC fragments are implicated in tumorigenesis, potentially by affecting β-catenin regulation and oncogene induction.
  • Cell migration is crucial for gut epithelial maintenance and homeostasis.

Purpose of the Study:

  • To investigate the impact of N-terminal APC fragments on cell motility directionality.
  • To determine if N-APC affects cell migration independently of β-catenin regulation.
  • To explore the role of N-APC in precancerous states and cell accumulation.

Main Methods:

  • Development of a 3D time-lapse imaging system for live gut tissue.
  • Analysis of cell migration in wild-type and APC heterozygote (APC(Min/+)) mouse models.
  • Experimental validation in chicken embryos and Dictyostelium models expressing N-APC fragments.

Main Results:

  • N-APC expression caused a loss of directionality in cell motility across multiple model systems.
  • This effect on migration directionality was independent of changes in β-catenin regulation.
  • Cells in precancerous APC(Min/+) epithelia exhibited random migration patterns along the crypt-villus axis.

Conclusions:

  • N-terminal APC fragments act as a gain-of-function mutation, impairing directional cell migration.
  • Failure of directional migration may lead to cell accumulation and contribute to a precancerous state.
  • N-APC's impact on cell motility directionality offers new insights into colorectal cancer pathogenesis.

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