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Discovery of Metastatic Regulators using a Rapid and Quantitative Intravital Chick Chorioallantoic Membrane Model
Published on: February 3, 2021
Discovery of Metastatic Regulators using a Rapid and Quantitative Intravital Chick Chorioallantoic Membrane Model
Konstantin Stoletov1, Lian Willetts2, Perrin H Beatty1
1Department of Oncology, University of Alberta, Edmonton, Alberta, Canada.
Abstract:
Recent advances in cancer research has illustrated the highly complex nature of cancer metastasis. Multiple genes or genes networks have been found to be involved in differentially regulating cancer metastatic cascade genes and gene products dependent on the cancer type, tissue, and individual patient characteristics. These represent potentially important targets for genetic therapeutics and personalized medicine approaches. The development of rapid screening platforms is essential for the identification of these genetic targets. The chick chorioallantoic membrane (CAM) is a highly vascularized, collagen rich membrane located under the eggshell that allows for gas exchange in the developing embryo. Due to the location and vascularization of the CAM, we developed it as an intravital human cancer metastasis model that allows for robust human cancer cell xenografting and real-time imaging of cancer cell interactions with the collagen rich matrix and vasculature. Using this model, a quantitative screening platform was designed for the identification of novel drivers or suppressors of cancer metastasis. We transduced a pool of head and neck HEp3 cancer cells with a complete human genome shRNA gene library, then injected the cells, at low density, into the CAM vasculature. The cells proliferated and formed single-tumor cell colonies. Individual colonies that were unable to invade into the CAM tissue were visible as a compact colony phenotype and excised for identification of the transduced shRNA present in the cells. Images of individual colonies were evaluated for their invasiveness. Multiple rounds of selections were performed to decreases the rate of false positives. Individual, isolated cancer cell clones or newly engineered clones that express genes of interest were subjected to primary tumor formation assay or cancer cell vasculature co-option analysis. In summary we present a rapid screening platform that allows for anti-metastatic target identification and intravital analysis of a dynamic and complex cascade of events.
Insights
Researchers developed a novel chick chorioallantoic membrane (CAM) model for rapid screening of anti-metastatic targets. This intravital platform identifies genes that drive or suppress cancer metastasis, aiding personalized medicine.
Area of Science:
- Oncology
- Genetics
- Developmental Biology
Background:
- Cancer metastasis is complex, involving multiple genes and patient-specific factors.
- Identifying genetic targets for therapeutics and personalized medicine is crucial.
- Rapid screening platforms are needed to discover metastasis-related genes.
Purpose of the Study:
- To develop and validate a quantitative screening platform for identifying novel drivers or suppressors of cancer metastasis.
- To utilize the chick chorioallantoic membrane (CAM) as an intravital model for studying cancer cell invasion and metastasis.
- To enable real-time imaging of cancer cell interactions with the tumor microenvironment.
Main Methods:
- Developed a human cancer cell xenograft model using the chick chorioallantoic membrane (CAM).
- Employed a complete human genome shRNA library for screening in head and neck cancer cells (HEp3).
- Quantitatively assessed cancer cell invasiveness and performed multiple selection rounds to identify metastasis-associated genes.
Main Results:
- Established a rapid screening platform for anti-metastatic target identification.
- Successfully imaged and analyzed cancer cell interactions within the CAM vasculature and collagen-rich matrix.
- Identified genes influencing cancer cell invasion and metastasis in the intravital model.
Conclusions:
- The developed CAM model provides a powerful tool for intravital analysis of cancer metastasis.
- This platform facilitates the identification of novel therapeutic targets for anti-metastatic strategies.
- The study highlights the potential for personalized medicine approaches in cancer treatment.

