Telomere DNA damage signaling regulates cancer stem cell evolution, epithelial mesenchymal transition, and metastasis

Angelica M Lagunas1, Jianchun Wu1, David L Crowe1

  • 1University of Illinois Cancer Center, Chicago, IL, USA.

Oncotarget
|November 9, 2017
PubMed

Insights

Loss of TRF2 and telomerase in mice caused DNA damage and depleted cancer stem cells. However, new metastatic clones emerged with genomic instability, suggesting early evolution of cancer spread.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Telomeres protect chromosome ends, preventing DNA damage. Critically short telomeres activate DNA damage responses, leading to senescence or apoptosis.
  • Telomere maintenance involves telomerase or alternative lengthening of telomeres (ALT). TRF2 protein protects telomeres.
  • Stem cell expansion, linked to epithelial-mesenchymal transition (EMT), is crucial in cancer progression and metastasis.

Purpose of the Study:

  • To investigate if telomerase inhibition can prevent the expansion of metastatic clones caused by TRF2 loss.
  • To characterize skin carcinogenesis in a conditional TRF2/Terc double null mutant mouse model.

Main Methods:

  • Generated and analyzed a conditional TRF2/Terc double null mutant mouse model for skin carcinogenesis.
  • Assessed telomere DNA damage, cancer stem cell populations (CD34+, Lgr6+), and differentiation.
  • Characterized evolved cancer stem cell populations for genomic instability, ALT, and EMT.

Main Results:

  • Loss of TRF2 and Terc induced telomere DNA damage and depleted cancer stem cells, promoting terminal differentiation.
  • A novel cancer stem cell population emerged, exhibiting genomic instability, ALT, and EMT.
  • Metastatic clones were found to evolve before the histopathologic onset of primary tumors.

Conclusions:

  • Telomere maintenance mechanisms and TRF2 play critical roles in regulating cancer stem cell populations and metastasis.
  • The early evolution of metastatic clones has significant implications for cancer treatment strategies.
  • Targeting telomere maintenance pathways could be a therapeutic approach for preventing metastasis.

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