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Updated: Aug 19, 2025

Author Spotlight: Advanced Single-Molecule Techniques for Investigating Telomeric Protein-DNA Interactions
Published on: August 30, 2024
Teloxantron inhibits the processivity of telomerase with preferential DNA damage on telomeres
Natalia Maciejewska1, Mateusz Olszewski2, Jakub Jurasz2
1Department of Pharmaceutical Technology and Biochemistry, Gdansk University of Technology, Gdansk, Poland. natalia.maciejewska@pg.edu.pl.
Abstract:
Telomerase reactivation is one of the hallmarks of cancer, which plays an important role in cellular immortalization and the development and progression of the tumor. Chemical telomerase inhibitors have been shown to trigger replicative senescence and apoptotic cell death both in vitro and in vivo. Due to its upregulation in various cancers, telomerase is considered a potential target in cancer therapy. In this study, we identified potent, small-molecule telomerase inhibitors using a telomerase repeat amplification protocol assay. The results of the assay are the first evidence of telomerase inhibition by anthraquinone derivatives that do not exhibit G-quadruplex-stabilizing properties. The stability of telomerase in the presence of its inhibitor was evaluated under nearly physiological conditions using a cellular thermal shift assay. Our data showed that the compound induced aggregation of the catalytic subunit (hTERT) of human telomerase, and molecular studies confirmed the binding of the hit compound with the active site of the enzyme. The ability of new derivatives to activate DNA double-strand breaks (DSBs) was determined by high-resolution microscopy and flow cytometry in tumor cell lines differing in telomere elongation mechanism. The compounds triggered DSBs in TERT-positive A549 and H460 lung cancer cell lines, but not in TERT-negative NHBE normal human bronchial epithelial and ALT-positive U2OS osteosarcoma cell lines, which indicates that the induction of DSBs was dependent on telomerase inhibition. The observed DNA damage activated DNA damage response pathways involving ATM/Chk2 and ATR/Chk1 cascades. Additionally, the compounds induced apoptotic cell death through extrinsic and intrinsic pathways in lung cancer cells. Taken together, our study demonstrated that anthraquinone derivatives can be further developed into novel telomerase-related anticancer agents.
Insights
New anthraquinone derivatives show potential as anticancer agents by inhibiting telomerase, inducing DNA damage, and triggering apoptosis in cancer cells. These compounds offer a novel therapeutic strategy targeting telomerase reactivation in tumors.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Telomerase reactivation is a key hallmark of cancer, crucial for cellular immortalization and tumor progression.
- Telomerase is a validated target for cancer therapy due to its upregulation in various malignancies.
- Existing telomerase inhibitors often rely on G-quadruplex stabilization, limiting their scope.
Purpose of the Study:
- To identify novel, small-molecule telomerase inhibitors.
- To investigate the mechanism of action of anthraquinone derivatives as telomerase inhibitors.
- To evaluate the therapeutic potential of these compounds in cancer cell lines.
Main Methods:
- Telomerase repeat amplification protocol (TRAP) assay for inhibitor screening.
- Cellular thermal shift assay (CETSA) to assess enzyme stability and binding.
- High-resolution microscopy and flow cytometry to detect DNA double-strand breaks (DSBs).
- Analysis of DNA damage response pathways (ATM/Chk2, ATR/Chk1) and apoptosis induction.
Main Results:
- Identification of anthraquinone derivatives as potent telomerase inhibitors independent of G-quadruplex stabilization.
- Demonstrated binding of inhibitors to the active site of human telomerase catalytic subunit (hTERT), leading to enzyme aggregation.
- Compounds induced DSBs specifically in telomerase-positive (TERT-positive) lung cancer cells, activating DNA damage response pathways.
- Induction of both extrinsic and intrinsic apoptotic pathways in lung cancer cells.
Conclusions:
- Anthraquinone derivatives represent a novel class of telomerase inhibitors with a unique mechanism of action.
- These compounds effectively induce cancer cell death through DNA damage and apoptosis, independent of G-quadruplex interactions.
- The findings support the further development of these anthraquinone derivatives as potential anticancer agents targeting telomerase.
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