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Updated: Jan 1, 2026

Isolation and Differentiation of Stromal Vascular Cells to Beige/Brite Cells
Published on: March 28, 2013
Apple polyphenols induce browning of white adipose tissue
Yuki Tamura1, Shigeto Tomiya2, Junya Takegaki3
1Faculty of Sport Science, Nippon Sport Science University, Tokyo, Japan; Graduate School of Health and Sport Science, Nippon Sport Science University, Tokyo, Japan; Research Institute for Sport Science, Nippon Sport Science University, Tokyo, Japan.
Abstract:
We and others have shown that apple polyphenols decrease adipose tissue mass. To better understand the underlying mechanisms and to expand clinical applicability, we herein examine whether apple polyphenols induce adipose thermogenic adaptations (browning) and prevent diet-induced obesity and related insulin resistance. In mice fed a standard diet, daily apple polyphenol consumption induced thermogenic adaptations in inguinal white adipose tissue (iWAT), based on increases in the expression of brown/beige adipocyte selective genes (Ucp1, Cidea, Tbx1, Cd137) and protein content of uncoupling protein 1 and mitochondrial oxidative phosphorylation enzymes. Among the upstream regulatory factors of browning, fibroblast growth factor 21 (FGF21) and peroxisome proliferator-activated receptor gamma coactivator 1 α (PGC-1α) levels were concomitantly up-regulated by apple polyphenols. In the primary cell culture experiment, the results did not support a direct action of apple polyphenols on beige adipogenesis. Instead, apple polyphenols increased tyrosine hydroxylase (a rate-limiting enzyme of catecholamine synthesis) in iWAT, which activates the adipocyte thermogenic program possibly via intratissue cellular communications. In high-fat fed mice, apple polyphenols induced beige adipocyte development in iWAT, reduced fat accumulation, and increased glucose disposal rates in the glucose and insulin tolerance tests. Taken together, dietary administration of apple polyphenols induced beige adipocyte development in iWAT possibly via activation/induction of the peripheral catecholamine synthesis-FGF21-PGC-1α cascade. Results from diet-induced obese mice indicate that apple polyphenols have therapeutic potential for obesity and related metabolic disorders.
Insights
Apple polyphenols promote beige adipocyte development in white adipose tissue, enhancing thermogenesis and preventing obesity. This suggests therapeutic potential for metabolic disorders.
Area of Science:
- Metabolic research
- Obesity studies
- Nutritional science
Background:
- Apple polyphenols are known to reduce adipose tissue mass.
- Understanding the mechanisms behind this effect is crucial for clinical applications.
Purpose of the Study:
- To investigate if apple polyphenols induce adipose thermogenic adaptations (browning).
- To determine if apple polyphenols can prevent diet-induced obesity and insulin resistance.
Main Methods:
- Administration of apple polyphenols to mice on standard and high-fat diets.
- Analysis of gene and protein expression in adipose tissue (iWAT).
- In vitro primary cell culture experiments and glucose/insulin tolerance tests.
Main Results:
- Apple polyphenols induced thermogenic adaptations in iWAT, up-regulating key browning genes and proteins.
- Fibroblast growth factor 21 (FGF21) and PGC-1α were upregulated.
- In diet-induced obese mice, apple polyphenols reduced fat accumulation and improved glucose metabolism.
Conclusions:
- Dietary apple polyphenols induce beige adipocyte development in iWAT, potentially via a catecholamine synthesis-FGF21-PGC-1α pathway.
- Apple polyphenols demonstrate therapeutic potential for obesity and associated metabolic disorders.
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