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Published on: June 28, 2019
Cellular Senescence in Obesity and Associated Complications: a New Therapeutic Target
Akilavalli Narasimhan1, Rafael R Flores1, Christina D Camell1
1Institute On the Biology of Aging and Metabolism, Department of Biochemistry, Molecular Biology and Biophysics, University of Minnesota, 6-155 Jackson Hall, 321 Church Street, SE, Minneapolis, MN, 55455, USA.
Purpose Of Review:
Obesity has increased worldwide recently and represents a major global health challenge. This review focuses on the obesity-associated cellular senescence in various organs and the role of these senescent cells (SnCs) in driving complications associated with obesity. Also, the ability to target SnCs pharmacologically with drugs termed senotherapeutics as a therapy for these complications is discussed.
Recent Findings:
Several studies have shown a positive correlation between obesity and SnC burden in organs such as adipose tissue, liver, and pancreatic-β-cells. These SnCs produce several secretory factors which affect other cells and tissues in a paracrine manner resulting in organ dysfunction. The accumulation of SnCs in adipocytes affects their lipid storage and impairs adipogenesis. The inflammatory senescence-associated secretory phenotype (SASP) of SnCs downregulates the antioxidant capacity and mitochondrial function in tissues. Senescent hepatocytes cannot oxidize fatty acids, which leads to lipid deposition and senescence in β-cells decrease function. These and other adverse effects of SnCs contribute to insulin resistance and type-2 diabetes. The reduction in the SnC burden genetically or pharmacologically improves the complications associated with obesity. The accumulation of SnCs with age and disease accelerates aging. Obesity is a key driver of SnC accumulation, and the complications associated with obesity can be controlled by reducing the SnC burden. Thus, senotherapeutic drugs have the potential to be an effective therapeutic option.
Insights
Obesity increases cellular senescence (SnCs) in organs, driving complications like insulin resistance. Targeting these senescent cells with senotherapeutics offers a promising therapeutic strategy for obesity-related diseases.
Area of Science:
- Cellular biology
- Metabolic disorders
- Aging research
Background:
- Obesity is a growing global health concern.
- Cellular senescence, a state of irreversible cell cycle arrest, is increasingly implicated in age-related diseases.
- Senescent cells (SnCs) accumulate in various tissues during obesity, contributing to organ dysfunction.
Purpose of the Study:
- To review the role of obesity-associated cellular senescence in driving obesity complications.
- To discuss the potential of senotherapeutics in treating these complications.
Main Methods:
- Literature review focusing on studies correlating obesity with SnC burden.
- Analysis of the impact of SnCs and their secretory phenotype (SASP) on organ function.
- Examination of senotherapeutic strategies targeting SnCs.
Main Results:
- Positive correlation found between obesity and increased SnC burden in adipose tissue, liver, and pancreatic beta-cells.
- SnCs and their SASP contribute to inflammation, impaired lipid metabolism, reduced antioxidant capacity, and mitochondrial dysfunction.
- Reduced SnC burden, through genetic or pharmacological means, ameliorates obesity-associated complications, including insulin resistance and type-2 diabetes.
Conclusions:
- Obesity accelerates aging by driving SnC accumulation.
- Senescent cells are key mediators of obesity-related organ dysfunction and metabolic diseases.
- Senotherapeutics represent a potential therapeutic avenue for managing obesity complications by reducing SnC burden.
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