A covalent resveratrol-nitroxide conjugate protects against oxidative stress-induced cellular senescence
Adrian Konopko1, Katarzyna Sęktas2, Alicja Targońska3
1Faculty of Chemistry, University of Warsaw, 1 Pasteur St., Warsaw 02-093, Poland; Nencki Institute of Experimental Biology, Polish Academy of Sciences, 3 Pasteur St., Warsaw 02-093, Poland.
Abstract:
Cellular senescence, frequently driven by excess reactive oxygen species (ROS), is a major contributor to organismal aging. Anti-aging strategies that reduce ROS often show limited efficacy due to poor bioavailability of therapeutics, and the development of more effective anti-senescent agents remains an important research objective. In this study, we sought to integrate the activity of resveratrol (RSV), a polyphenolic antioxidant with documented anti-senescence properties, with the (2,2,6,6-tetramethylpiperidin-1-yl)oxyl radical (TEMPO), a superoxide dismutase mimetic. While RSV and TEMPO display synergistic radical-scavenging activity in chemical model systems, this effect is not reproduced in cellular environments, likely due to their divergent subcellular localization. To overcome this limitation, a hybrid molecule, termed H3, was synthesized by covalently linking RSV with TEMPO to integrate the properties of both components within a single molecular framework. H3 exhibited potent radical-trapping antioxidant activity in all chemical assays employed. In human dermal fibroblasts, H3 was non-cytotoxic and significantly attenuated multiple hallmarks of senescence, maintaining DNA replication competence and reducing the proportion of senescent cells. H3 surpassed the efficacy of RSV, TEMPO, and their equimolar mixture in preserving cellular proliferation. Under oxidative stress, H3 maintained the expression of central antioxidant enzymes, including SOD1, CAT, and HO-1. In fibroblasts induced to senescence, H3 upregulated lamin B1, PARP, SirT1, and SirT6-proteins essential for chromatin organization, genome stability, and DNA repair. As a result, H3 is an anti-senescent agent, combining direct radical-trapping activity with the ability to influence the expression of antioxidant defense and DNA repair proteins.
Insights
A novel hybrid molecule, H3, combines resveratrol and TEMPO to combat cellular senescence by reducing reactive oxygen species (ROS). H3 effectively reduces aging hallmarks and enhances cellular proliferation, offering a promising anti-aging therapeutic strategy.
Area of Science:
- Biochemistry
- Cell Biology
- Gerontology
Background:
- Cellular senescence, driven by reactive oxygen species (ROS), is a key aging factor.
- Current anti-aging therapies targeting ROS have limited efficacy due to poor bioavailability.
- Developing novel anti-senescent agents is crucial for combating aging.
Purpose of the Study:
- To synthesize a hybrid molecule (H3) integrating resveratrol (RSV) and TEMPO for enhanced anti-senescence activity.
- To evaluate H3's efficacy in mitigating cellular senescence hallmarks and improving cellular functions.
- To investigate H3's impact on antioxidant enzyme expression and DNA repair proteins.
Main Methods:
- Synthesis of a hybrid molecule H3 by covalently linking RSV and TEMPO.
- Assessment of H3's radical-trapping antioxidant activity in chemical assays.
- Evaluation of H3's non-cytotoxicity and anti-senescence effects in human dermal fibroblasts.
- Analysis of H3's influence on antioxidant enzyme and DNA repair protein expression.
Main Results:
- H3 demonstrated potent radical-trapping antioxidant activity.
- H3 significantly attenuated senescence hallmarks, maintained DNA replication, and reduced senescent cell proportion.
- H3 outperformed RSV, TEMPO, and their mixture in preserving cellular proliferation.
- H3 modulated the expression of key antioxidant and DNA repair proteins.
Conclusions:
- The hybrid molecule H3 effectively combines the radical-scavenging properties of RSV and TEMPO.
- H3 represents a potent anti-senescent agent with improved efficacy over its individual components.
- H3 shows promise as a therapeutic strategy for age-related decline by targeting cellular senescence.
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