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Updated: Aug 5, 2025

Techniques to Induce and Quantify Cellular Senescence
Published on: May 1, 2017
microRNA-449a reduces growth hormone-stimulated senescent cell burden through PI3K-mTOR signaling
Sarah Noureddine1, Jia Nie2, Augusto Schneider3
1Burnett School of Biomedical Sciences, College of Medicine, University of Central Florida, Orlando, FL 32827.
Abstract:
Cellular senescence, a hallmark of aging, has been implicated in the pathogenesis of many major age-related disorders, including neurodegeneration, atherosclerosis, and metabolic disease. Therefore, investigating novel methods to reduce or delay the accumulation of senescent cells during aging may attenuate age-related pathologies. microRNA-449a-5p (miR-449a) is a small, noncoding RNA down-regulated with age in normal mice but maintained in long-living growth hormone (GH)-deficient Ames Dwarf (df/df) mice. We found increased fibroadipogenic precursor cells, adipose-derived stem cells, and miR-449a levels in visceral adipose tissue of long-living df/df mice. Gene target analysis and our functional study with miR-449a-5p have revealed its potential as a serotherapeutic. Here, we test the hypothesis that miR-449a reduces cellular senescence by targeting senescence-associated genes induced in response to strong mitogenic signals and other damaging stimuli. We demonstrated that GH downregulates miR-449a expression and accelerates senescence while miR-449a upregulation using mimetics reduces senescence, primarily through targeted reduction of p16Ink4a, p21Cip1, and the PI3K-mTOR signaling pathway. Our results demonstrate that miR-449a is important in modulating key signaling pathways that control cellular senescence and the progression of age-related pathologies.
Insights
microRNA-449a-5p (miR-449a) may reduce cellular senescence, a key aging process. Upregulating miR-449a targets senescence genes and pathways, potentially delaying age-related diseases.
Area of Science:
- Molecular Biology
- Aging Research
- Genetics
Background:
- Cellular senescence is a hallmark of aging, contributing to age-related diseases like neurodegeneration and metabolic disorders.
- microRNA-449a-5p (miR-449a) levels decrease with age in normal mice but are maintained in long-living Ames Dwarf mice.
- Growth hormone (GH) downregulates miR-449a and accelerates senescence.
Purpose of the Study:
- To investigate the role of miR-449a in cellular senescence.
- To determine if miR-449a can be used as a serotherapeutic to reduce senescence.
- To test the hypothesis that miR-449a targets senescence-associated genes.
Main Methods:
- Analysis of miR-449a levels in visceral adipose tissue of Ames Dwarf mice.
- Functional studies using miR-449a mimetics.
- Gene target analysis and investigation of signaling pathways (PI3K-mTOR).
Main Results:
- Long-living Ames Dwarf mice showed increased miR-449a levels.
- Upregulation of miR-449a using mimetics reduced cellular senescence.
- miR-449a targeted key senescence genes like p16Ink4a and p21Cip1, and the PI3K-mTOR pathway.
Conclusions:
- miR-449a plays a crucial role in modulating cellular senescence.
- miR-449a has potential as a serotherapeutic agent to combat age-related pathologies.
- Targeting miR-449a may offer a novel strategy to delay aging and associated diseases.
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