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Real-time Imaging of Myeloid Cells Dynamics in ApcMin/+ Intestinal Tumors by Spinning Disk Confocal Microscopy
Published on: October 6, 2014
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.
Abstract:
Nonsense mutations that result in the expression of truncated, N-terminal, fragments of the adenomatous polyposis coli (APC) tumour suppressor protein are found in most sporadic and some hereditary colorectal cancers. These mutations can cause tumorigenesis by eliminating β-catenin-binding sites from APC, which leads to upregulation of β-catenin and thereby results in the induction of oncogenes such as MYC. Here we show that, in three distinct experimental model systems, expression of an N-terminal fragment of APC (N-APC) results in loss of directionality, but not speed, of cell motility independently of changes in β-catenin regulation. We developed a system to culture and fluorescently label live pieces of gut tissue to record high-resolution three-dimensional time-lapse movies of cells in situ. This revealed an unexpected complexity of normal gut cell migration, a key process in gut epithelial maintenance, with cells moving with spatial and temporal discontinuity. Quantitative comparison of gut tissue from wild-type mice and APC heterozygotes (APC(Min/+); multiple intestinal neoplasia model) demonstrated that cells in precancerous epithelia lack directional preference when moving along the crypt-villus axis. This effect was reproduced in diverse experimental systems: in developing chicken embryos, mesoderm cells expressing N-APC failed to migrate normally; in amoeboid Dictyostelium, which lack endogenous APC, expressing an N-APC fragment maintained cell motility, but the cells failed to perform directional chemotaxis; and multicellular Dictyostelium slug aggregates similarly failed to perform phototaxis. We propose that N-terminal fragments of APC represent a gain-of-function mutation that causes cells within tissue to fail to migrate directionally in response to relevant guidance cues. Consistent with this idea, crypts in histologically normal tissues of APC(Min/+) intestines are overpopulated with cells, suggesting that a lack of migration might cause cell accumulation in a precancerous state.
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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