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Updated: Jul 10, 2026

In Vitro Evaluation of Oncogenic Transformation in Human Mammary Epithelial Cells
Published on: September 24, 2020
Oncogenic transformation and experimental models of human cancer
Anna C Schinzel1, William C Hahn
1Department of Medical Oncology, Dana-Farber Cancer Institute, 44 Binney Street, Boston, MA 02115, USA.
Abstract:
Tumorigenesis occurs when cells undergo a series of genetic and epigenetic events that upset the balance of cell death, proliferation and differentiation. In a few cases, alterations in key regulatory steps have been identified, facilitating the design of rational cancer therapies. However, the karyotypic complexity exhibited by most solid tumors makes it challenging to identify the lesions underlying specific tumor phenotypes in most cancers. Work from many laboratories indicates that the acquisition of the tumorigenic phenotype requires several cooperating events and that a finite set of genetic alterations suffices to transform cells derived from numerous different lineages. Experimental models derived from the manipulation of oncogenes, tumor suppressor genes and telomerase provide useful platforms to delineate pathways involved in cell transformation, to connect specific cancer-associated mutations with particular cancer phenotypes and to discover and validate new targets for therapeutic development. Here we review the development of such experimental models and recent work combining such model systems with increasingly powerful genetic and chemical tools to identify and validate genes involved in malignant transformation.
Insights
Understanding cancer development requires studying genetic and epigenetic changes. Experimental models help identify key cancer-causing genes and potential therapeutic targets.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Tumorigenesis involves genetic and epigenetic alterations disrupting cellular balance.
- Identifying specific cancer-causing lesions is challenging due to tumor karyotypic complexity.
- Multiple cooperating genetic events are necessary for malignant transformation.
Purpose of the Study:
- To review the development of experimental models for studying cancer.
- To connect specific mutations with cancer phenotypes.
- To discover and validate new therapeutic targets.
Main Methods:
- Utilizing experimental models involving oncogenes, tumor suppressor genes, and telomerase.
- Employing genetic and chemical tools to investigate malignant transformation.
- Analyzing pathways involved in cell transformation and cancer development.
Main Results:
- Experimental models facilitate the delineation of cell transformation pathways.
- These models connect specific mutations to distinct cancer phenotypes.
- They aid in discovering and validating novel therapeutic targets.
Conclusions:
- Experimental models are crucial for understanding tumorigenesis.
- Combining models with genetic/chemical tools enhances target identification and validation.
- This approach advances rational cancer therapy design.
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