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Small molecule activators of SIRT1 replicate signaling pathways triggered by calorie restriction in vivo
Jesse J Smith1, Renée Deehan Kenney, David J Gagne
1Sirtris, a GSK company, 200 Technology Square, Cambridge, MA 02139, USA. jessejersmith@gmail.com
Background:
Calorie restriction (CR) produces a number of health benefits and ameliorates diseases of aging such as type 2 diabetes. The components of the pathways downstream of CR may provide intervention points for developing therapeutics for treating diseases of aging. The NAD+-dependent protein deacetylase SIRT1 has been implicated as one of the key downstream regulators of CR in yeast, rodents, and humans. Small molecule activators of SIRT1 have been identified that exhibit efficacy in animal models of diseases typically associated with aging including type 2 diabetes. To identify molecular processes induced in the liver of mice treated with two structurally distinct SIRT1 activators, SIRT501 (formulated resveratrol) and SRT1720, for three days, we utilized a systems biology approach and applied Causal Network Modeling (CNM) on gene expression data to elucidate downstream effects of SIRT1 activation.
Results:
Here we demonstrate that SIRT1 activators recapitulate many of the molecular events downstream of CR in vivo, such as enhancing mitochondrial biogenesis, improving metabolic signaling pathways, and blunting pro-inflammatory pathways in mice fed a high fat, high calorie diet.
Conclusion:
CNM of gene expression data from mice treated with SRT501 or SRT1720 in combination with supporting in vitro and in vivo data demonstrates that SRT501 and SRT1720 produce a signaling profile that mirrors CR, improves glucose and insulin homeostasis, and acts via SIRT1 activation in vivo. Taken together these results are encouraging regarding the use of small molecule activators of SIRT1 for therapeutic intervention into type 2 diabetes, a strategy which is currently being investigated in multiple clinical trials.
Insights
Small molecule activators of SIRT1 mimic calorie restriction (CR) benefits, improving metabolic health and offering potential therapeutic strategies for type 2 diabetes by enhancing mitochondrial function and reducing inflammation.
Area of Science:
- Metabolic signaling
- Aging research
- Systems biology
Background:
- Calorie restriction (CR) confers health benefits and mitigates aging-related diseases like type 2 diabetes.
- SIRT1, an NAD+-dependent protein deacetylase, is a key regulator downstream of CR.
- Small molecule SIRT1 activators show promise in preclinical models of aging-related diseases.
Purpose of the Study:
- To identify molecular processes in the liver induced by SIRT1 activators.
- To elucidate downstream effects of SIRT1 activation using systems biology.
Main Methods:
- Utilized Causal Network Modeling (CNM) on gene expression data.
- Administered two distinct SIRT1 activators (SIRT501 and SRT1720) to mice for three days.
- Integrated in vitro and in vivo data for comprehensive analysis.
Main Results:
- SIRT1 activators recapitulated CR-induced molecular events in vivo.
- Observed enhanced mitochondrial biogenesis and improved metabolic signaling.
- Demonstrated blunting of pro-inflammatory pathways in mice on a high-fat, high-calorie diet.
Conclusions:
- SIRT1 activators (SRT501, SRT1720) mirror CR's signaling profile via SIRT1 activation.
- These compounds improve glucose and insulin homeostasis.
- Small molecule SIRT1 activation is a promising therapeutic strategy for type 2 diabetes, currently in clinical trials.
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