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Cellular stress responses, hormetic phytochemicals and vitagenes in aging and longevity
Vittorio Calabrese1, Carolin Cornelius, Albena T Dinkova-Kostova
1Department of Chemistry, University of Catania, Catania, Italy. calabres@unict.it
Abstract:
Modulation of endogenous cellular defense mechanisms represents an innovative approach to therapeutic intervention in diseases causing chronic tissue damage, such as in neurodegeneration. This paper introduces the emerging role of exogenous molecules in hormetic-based neuroprotection and the mitochondrial redox signaling concept of hormesis and its applications to the field of neuroprotection and longevity. Maintenance of optimal long-term health conditions is accomplished by a complex network of longevity assurance processes that are controlled by vitagenes, a group of genes involved in preserving cellular homeostasis during stressful conditions. Vitagenes encode for heat shock proteins (Hsp) Hsp32, Hsp70, the thioredoxin and the sirtuin protein systems. Dietary antioxidants, such as polyphenols and L-carnitine/acetyl-L-carnitine, have recently been demonstrated to be neuroprotective through the activation of hormetic pathways, including vitagenes. Hormesis provides the central underpinning of neuroprotective responses, providing a framework for explaining the common quantitative features of their dose response relationships, their mechanistic foundations, their relationship to the concept of biological plasticity as well as providing a key insight for improving the accuracy of the therapeutic dose of pharmaceutical agents within the highly heterogeneous human population. This paper describes in mechanistic detail how hormetic dose responses are mediated for endogenous cellular defense pathways including sirtuin, Nrfs and related pathways that integrate adaptive stress responses in the prevention of neurodegenerative diseases. This article is part of a Special Issue entitled: Antioxidants and Antioxidant Treatment in Disease.
Insights
Exogenous molecules activate hormetic pathways, enhancing cellular defenses for neuroprotection and longevity. This approach optimizes therapeutic dosing for neurodegenerative diseases by understanding hormesis and vitagenes.
Area of Science:
- Neuroscience
- Cellular Biology
- Pharmacology
Background:
- Chronic tissue damage, common in neurodegeneration, necessitates novel therapeutic strategies.
- Endogenous cellular defense mechanisms offer a promising avenue for intervention.
- Mitochondrial redox signaling and hormesis are emerging concepts in neuroprotection.
Purpose of the Study:
- To introduce the role of exogenous molecules in hormesis-based neuroprotection.
- To explore the concept of hormesis and its application to neuroprotection and longevity.
- To detail the mechanistic basis of hormetic dose responses in cellular defense pathways.
Main Methods:
- Review of literature on hormesis, vitagenes, and neuroprotection.
- Mechanistic analysis of endogenous cellular defense pathways (e.g., sirtuin, Nrf2).
- Discussion of dietary antioxidants (polyphenols, L-carnitine) and their hormetic activation.
Main Results:
- Exogenous molecules activate hormetic pathways, including vitagenes (e.g., Hsp32, Hsp70, thioredoxin, sirtuins).
- Hormesis provides a framework for understanding neuroprotective dose-response relationships and biological plasticity.
- Dietary antioxidants demonstrate neuroprotective effects via hormetic pathway activation.
Conclusions:
- Modulating endogenous defenses through hormesis is a key strategy for neuroprotection.
- Understanding hormesis aids in optimizing therapeutic doses for neurodegenerative diseases.
- Vitagenes and hormetic pathways are crucial for maintaining cellular homeostasis and promoting longevity.
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