Related Experiment Video
Updated: May 16, 2026

Utilizing Murine Inducible Telomerase Alleles in the Studies of Tissue Degeneration/Regeneration and Cancer
Published on: April 13, 2015
Stem cell expansion during carcinogenesis in stem cell-depleted conditional telomeric repeat factor 2 null mutant
Abstract:
To examine the role of telomeric repeat-binding factor 2 (TRF2) in epithelial tumorigenesis, we characterized conditional loss of TRF2 expression in the basal layer of mouse epidermis. These mice exhibit some characteristics of dyskeratosis congenita, a human stem cell depletion syndrome caused by telomere dysfunction. The epidermis in conditional TRF2 null mice exhibited DNA damage response and apoptosis, which correlated with stem cell depletion. The stem cell population in conditional TRF2 null epidermis exhibited shorter telomeres than those in control mice. Squamous cell carcinomas induced in conditional TRF2 null mice developed with increased latency and slower growth due to reduced numbers of proliferating cells as the result of increased apoptosis. TRF2 null epidermal stem cells were found in both primary and metastatic tumors. Despite the low-grade phenotype of the conditional TRF2 null primary tumors, the number of metastatic lesions was similar to control cancers. Basal cells from TRF2 null tumors demonstrated extreme telomere shortening and dramatically increased numbers of telomeric signals by fluorescence in situ hybridization due to increased genomic instability and aneuploidy in these cancers. DNA damage response signals were detected at telomeres in TRF2 null tumor cells from these mice. The increased genomic instability in these tumors correlated with eightfold expansion of the transformed stem cell population compared with that in control cancers. We concluded that genomic instability resulting from loss of TRF2 expression provides biological advantages to the cancer stem cell population.
Insights
Loss of telomeric repeat-binding factor 2 (TRF2) in epidermal stem cells causes DNA damage and telomere shortening, promoting genomic instability and cancer stem cell expansion in epithelial tumors.
Area of Science:
- Oncology
- Genetics
- Stem Cell Biology
Background:
- Telomeric repeat-binding factor 2 (TRF2) is crucial for telomere maintenance and genomic stability.
- Dyskeratosis congenita, a stem cell depletion syndrome, is linked to telomere dysfunction.
- The role of TRF2 in epithelial tumorigenesis remains incompletely understood.
Purpose of the Study:
- To investigate the function of TRF2 in epithelial tumorigenesis.
- To characterize the consequences of conditional TRF2 loss in mouse epidermis.
- To elucidate the impact of TRF2 deficiency on cancer stem cells and tumor progression.
Main Methods:
- Conditional knockout of TRF2 in the basal layer of mouse epidermis.
- Analysis of DNA damage response, apoptosis, and stem cell populations.
- Assessment of telomere length, genomic instability, and aneuploidy using fluorescence in situ hybridization (FISH).
- Evaluation of tumor latency, growth, and metastatic potential.
Main Results:
- Conditional TRF2 loss induced DNA damage, apoptosis, and stem cell depletion with shorter telomeres.
- TRF2-deficient squamous cell carcinomas exhibited increased latency and slower growth but similar metastatic potential.
- TRF2 null tumors showed extreme telomere shortening, genomic instability, aneuploidy, and expanded cancer stem cell populations.
- DNA damage signals were detected at telomeres in TRF2 null tumor cells.
Conclusions:
- Loss of TRF2 expression in epidermal stem cells leads to genomic instability.
- Genomic instability provides a biological advantage to the cancer stem cell population.
- TRF2 plays a critical role in preventing epithelial tumorigenesis and maintaining stem cell function.
Related Concept Videos
Replicative Cell Senescence
Cancer Stem Cells and Tumor Maintenance
Cancer stem cells are thought to originate from tissue-specific normal stem cells or progenitor cells. The normal stem cells usually reside in...

