Icariin Improves Stress Resistance and Extends Lifespan in Caenorhabditis elegans through hsf-1 and daf-2 -Driven Hormesis.
Monika N TodorovaMartina S SavovaLiliya V MihaylovaMilen I GeorgievPublished in: International journal of molecular sciences (2023)
Aging presents an increasingly significant challenge globally, driven by the growing proportion of individuals aged 60 and older. Currently, there is substantial research interest in pro-longevity interventions that target pivotal signaling pathways, aiming not only to extend lifespan but also to enhance healthspan. One particularly promising approach involves inducing a hormetic response through the utilization of natural compounds defined as hormetins. Various studies have introduced the flavonoid icariin as beneficial for age-related diseases such as cardiovascular and neurodegenerative conditions. To validate its potential pro-longevity properties, we employed Caenorhabditis elegans as an experimental platform. The accumulated results suggest that icariin extends the lifespan of C. elegans through modulation of the DAF-2, corresponding to the insulin/IGF-1 signaling pathway in humans. Additionally, we identified increased resistance to heat and oxidative stress, modulation of lipid metabolism, improved late-life healthspan, and an extended lifespan upon icariin treatment. Consequently, a model mechanism of action was provided for icariin that involves the modulation of various players within the stress-response network. Collectively, the obtained data reveal that icariin is a potential hormetic agent with geroprotective properties that merits future developments.
Keyphrases
- signaling pathway
- oxidative stress
- pi k akt
- type diabetes
- induced apoptosis
- epithelial mesenchymal transition
- anti inflammatory
- gene expression
- high throughput
- genome wide
- dna damage
- cell proliferation
- community dwelling
- ischemia reperfusion injury
- electronic health record
- heat stress
- risk assessment
- machine learning
- binding protein
- adipose tissue
- insulin resistance
- deep learning
- stress induced