Telomere damage induced by the G-quadruplex ligand RHPS4 has an antitumor effect

Erica Salvati1, Carlo Leonetti, Angela Rizzo

  • 1Experimental Chemotherapy Laboratory, Regina Elena Cancer Institute, Rome, Italy.

Insights

The G-quadruplex ligand RHPS4 induces DNA damage at telomeres, inhibiting cancer cell growth. This telomere-targeting strategy shows promise as an effective antitumor therapy in mice.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Functional telomeres are crucial for cancer cell replication.
  • Telomeric DNA can form G-quadruplex (G4) structures, which regulate telomere function.
  • Stabilizing G4 structures can limit cancer cell proliferation.

Purpose of the Study:

  • To investigate the antitumor potential of the G4 ligand RHPS4.
  • To determine if RHPS4 induces DNA damage at telomeres.
  • To explore the mechanism of RHPS4's antitumor activity and identify resistance factors.

Main Methods:

  • Treatment of human transformed fibroblasts and melanoma cells with RHPS4.
  • Analysis of DNA damage response factors (gamma-H2AX, RAD17, 53BP1) at telomeres.
  • Assessment of RHPS4 efficacy in mouse xenograft models.
  • Investigation of POT1 and TRF2 roles in RHPS4 response.

Main Results:

  • RHPS4 rapidly induced a potent DNA damage response at telomeres, dependent on ATR.
  • RHPS4 treatment led to POT1 delocalization and was antagonized by POT1/TRF2 overexpression.
  • RHPS4 demonstrated antitumor effects in mice via telomere injury and apoptosis, with resistance observed in POT1/TRF2 overexpressing tumors.

Conclusions:

  • RHPS4 acts as a telomere damage inducer, selectively targeting cancer cells.
  • Telomere disruption by RHPS4 leads to a high therapeutic index in preclinical models.
  • Telomere-protective factors POT1 and TRF2 play a key role in the response to anti-telomere strategies.

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