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Updated: Aug 9, 2026

Mechanism of Regulation of Adipocyte Numbers in Adult Organisms Through Differentiation and Apoptosis Homeostasis
Published on: June 3, 2016
[The mechanisms by which PPARgamma and adiponectin regulate glucose and lipid metabolism]
Junji Kamon1, Toshimasa Yamauchi, Yasuo Terauchi
1Department of Metabolic Diseases, Graduate School of Medicine, University of Tokyo, Japan.
Abstract:
Obesity, a state of increased adipose tissue mass, is a major cause for type 2 diabetes, hyperlipidemia, and hypertension, resulting in clustering of risk factors for atherosclerosis. Heterozygous PPARgamma knockout mice and KKA(y) mice administered with a PPARgamma antagonist were protected from high-fat diet-induced adipocyte hypertrophy and insulin resistance. Moderate reduction of PPARgamma activity prevented adipocyte hypertrophy, thereby diminution of TNFalpha, resistin, and FFA and upregulation of adiponectin and leptin. These alterations led to reduction of tissue TG content in muscle/liver, thereby ameliorating insulin resistance. Insulin resistance in the lipoatrophic mice and KKA(y) mice were ameliorated by replenishment of adiponectin. Moreover, adiponectin transgenic mice ameliorated insulin resistance and diabetes, but not the obesity of ob/ob mice. Furthermore, targeted disruption of the adiponectin gene caused moderate insulin resistance and glucose intolerance. In muscle, adiponectin activated AMP kinase and PPARgamma pathways, thereby increasing beta-oxidation of lipids, leading to decreased TG content, which ameliorated muscle insulin resistance. In the liver, adiponectin also activated AMPK, thereby downregulating PEPCK and G6Pase, leading to decreased glucose output from the liver. In conclusion, PPARgamma plays a central role in the regulation of adipocyte hypertrophy and insulin sensitivity. The upregulation of the adiponectin pathway by PPARgamma may play a role in the increased insulin sensitivity of heterozygous PPARgamma knockout mice, and activation of adiponectin pathway may provide novel therapeutic strategies for obesity-linked disorders such as type 2 diabetes and metabolic syndrome.
Insights
PPARgamma plays a key role in regulating fat cell size and insulin sensitivity. Modulating its activity and enhancing adiponectin can help treat obesity-linked conditions like type 2 diabetes.
Area of Science:
- Metabolic research
- Endocrinology
- Molecular biology
Context:
- Obesity is a major risk factor for type 2 diabetes, hyperlipidemia, and hypertension.
- PPARgamma (Peroxisome proliferator-activated receptor gamma) is implicated in adipose tissue regulation.
- Adiponectin is a key hormone involved in glucose and lipid metabolism.
Purpose:
- To investigate the role of PPARgamma in obesity-induced insulin resistance.
- To explore the therapeutic potential of modulating PPARgamma activity and the adiponectin pathway.
Summary:
- Reducing PPARgamma activity prevented adipocyte hypertrophy and improved insulin sensitivity by altering inflammatory markers and adipokines.
- Adiponectin replenishment ameliorated insulin resistance in various mouse models.
- Adiponectin activates AMPK and PPARgamma pathways in muscle and liver, enhancing lipid oxidation and reducing glucose output.
Impact:
- PPARgamma is central to regulating adipocyte hypertrophy and insulin sensitivity.
- Upregulation of the adiponectin pathway by PPARgamma contributes to insulin sensitivity.
- Targeting the adiponectin pathway offers novel therapeutic strategies for obesity-related metabolic disorders like type 2 diabetes and metabolic syndrome.
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