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Updated: Mar 24, 2026

Techniques to Induce and Quantify Cellular Senescence
Published on: May 1, 2017
Metformin-mediated increase in DICER1 regulates microRNA expression and cellular senescence
Nicole Noren Hooten1, Alejandro Martin-Montalvo2,3, Douglas F Dluzen1
1Laboratory of Epidemiology and Population Sciences, National Institute on Aging, National Institutes of Health, 251 Bayview Boulevard, Baltimore, MD, 21224, USA.
Abstract:
Metformin, an oral hypoglycemic agent, has been used for decades to treat type 2 diabetes mellitus. Recent studies indicate that mice treated with metformin live longer and have fewer manifestations of age-related chronic disease. However, the molecular mechanisms underlying this phenotype are unknown. Here, we show that metformin treatment increases the levels of the microRNA-processing protein DICER1 in mice and in humans with diabetes mellitus. Our results indicate that metformin upregulates DICER1 through a post-transcriptional mechanism involving the RNA-binding protein AUF1. Treatment with metformin altered the subcellular localization of AUF1, disrupting its interaction with DICER1 mRNA and rendering DICER1 mRNA stable, allowing DICER1 to accumulate. Consistent with the role of DICER1 in the biogenesis of microRNAs, we found differential patterns of microRNA expression in mice treated with metformin or caloric restriction, two proven life-extending interventions. Interestingly, several microRNAs previously associated with senescence and aging, including miR-20a, miR-34a, miR-130a, miR-106b, miR-125, and let-7c, were found elevated. In agreement with these findings, treatment with metformin decreased cellular senescence in several senescence models in a DICER1-dependent manner. Metformin lowered p16 and p21 protein levels and the abundance of inflammatory cytokines and oncogenes that are hallmarks of the senescence-associated secretory phenotype (SASP). These data lead us to hypothesize that changes in DICER1 levels may be important for organismal aging and to propose that interventions that upregulate DICER1 expression (e.g., metformin) may offer new pharmacotherapeutic approaches for age-related disease.
Insights
Metformin increases the microRNA-processing protein DICER1, reducing cellular senescence and age-related disease markers. This discovery suggests metformin as a potential therapy for aging and chronic diseases.
Area of Science:
- Molecular Biology
- Aging Research
- Pharmacology
Background:
- Metformin is a widely used type 2 diabetes drug.
- Metformin extends lifespan and reduces age-related diseases in mice.
- The molecular basis for metformin's anti-aging effects is unknown.
Purpose of the Study:
- To investigate the molecular mechanisms behind metformin's life-extending and anti-aging properties.
- To explore the role of DICER1 in metformin's effects.
- To identify potential therapeutic targets for age-related diseases.
Main Methods:
- Assessed DICER1 protein levels in mice and human diabetic patients treated with metformin.
- Investigated the post-transcriptional regulation of DICER1 by AUF1.
- Analyzed microRNA expression patterns in response to metformin and caloric restriction.
- Evaluated the impact of metformin on cellular senescence markers.
Main Results:
- Metformin treatment upregulated DICER1 protein levels via AUF1-mediated stabilization of DICER1 mRNA.
- Metformin induced differential microRNA expression, including upregulation of senescence-associated microRNAs.
- Metformin reduced cellular senescence, p16/p21 levels, and SASP factors in a DICER1-dependent manner.
Conclusions:
- Metformin upregulates DICER1, impacting microRNA biogenesis and reducing cellular senescence.
- DICER1 modulation may be a key mechanism in metformin's anti-aging effects.
- Interventions targeting DICER1, like metformin, show promise for treating age-related diseases.
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Oral Hypoglycemic Agents: Biguanides and Glitazones
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