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.

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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