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Updated: Jun 9, 2025

Author Spotlight: Advanced Single-Molecule Techniques for Investigating Telomeric Protein-DNA Interactions
Published on: August 30, 2024
α-Terpineol Induces Shelterin Components TRF1 and TRF2 to Mitigate Senescence and Telomere Integrity Loss via A
Marianna Kapetanou1,2, Sophia Athanasopoulou1,3, Andreas Goutas3
1Institute of Chemical Biology, National Hellenic Research Foundation, 11635 Athens, Greece.
Abstract:
Cellular senescence is a hallmark of aging characterized by irreversible growth arrest and functional decline. Progressive telomeric DNA shortening in dividing somatic cells, programmed during development, leads to critically short telomeres that trigger replicative senescence and thereby contribute to aging. Therefore, protecting telomeres from DNA damage is essential in order to avoid entry into senescence and organismal aging. In several organisms, including mammals, telomeres are protected by a protein complex named shelterin that prevents DNA damage at the chromosome ends through the specific function of its subunits. Here, we reveal that the nuclear protein levels of shelterin components TRF1 and TRF2 decline in fibroblasts reaching senescence. Notably, we identify α-terpineol as an activator that effectively enhances TRF1 and TRF2 levels in a telomerase-independent manner, counteracting the senescence-associated decline in these crucial proteins. Moreover, α-terpineol ameliorates the cells' response to oxidative DNA damage, particularly at the telomeric regions, thus preserving telomere length and delaying senescence. More importantly, our findings reveal the significance of the PI3K/AKT pathway in the regulation of shelterin components responsible for preserving telomere integrity. In conclusion, this study deepens our understanding of the molecular pathways involved in senescence-associated telomere dysfunction and highlights the potential of shelterin components to serve as targets of therapeutic interventions, aimed at promoting healthy aging and combating age-related diseases.
Insights
Protecting telomeres is key to healthy aging. This study found that α-terpineol enhances shelterin protein levels, counteracting age-related decline and preserving telomere length to delay cellular senescence.
Area of Science:
- Cellular and Molecular Biology
- Gerontology
- Genetics
Background:
- Cellular senescence, a state of irreversible growth arrest, is a key feature of aging.
- Telomere shortening in somatic cells triggers senescence, contributing to organismal aging.
- The shelterin complex protects telomeres from DNA damage, preventing premature senescence.
Purpose of the Study:
- To investigate the role of shelterin components in cellular senescence.
- To identify compounds that can counteract senescence-associated telomere dysfunction.
- To explore the therapeutic potential of targeting shelterin for healthy aging.
Main Methods:
- Assessed nuclear protein levels of shelterin components (TRF1, TRF2) in senescent fibroblasts.
- Investigated the effect of α-terpineol on shelterin levels and telomere integrity.
- Examined the involvement of the PI3K/AKT pathway in regulating shelterin function.
Main Results:
- Nuclear levels of TRF1 and TRF2 decline in senescent fibroblasts.
- α-terpineol enhances TRF1 and TRF2 levels independently of telomerase.
- α-terpineol protects telomeres from oxidative DNA damage and delays senescence.
- The PI3K/AKT pathway is crucial for maintaining telomere integrity via shelterin.
Conclusions:
- Shelterin components are critical for preventing senescence-associated telomere dysfunction.
- α-terpineol emerges as a potential therapeutic agent to promote healthy aging.
- Targeting shelterin offers a promising strategy for combating age-related diseases.
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