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Adipogenesis is tightly regulated by various factors, including genes and microRNAs. Excessive fat deposition is the key feature of obesity, which is a low-grade chronic inflammatory disease. Follistatin-like 1 (FSTL1) has been reported to be an important mediator involved in various inflammatory diseases. However, the underlying mechanism of FSTL1 in preadipocyte differentiation and inflammatory response is still unclear. The current study was designed to explore the biological function and potential mechanism of FSTL1 in mouse subcutaneous preadipocyte differentiation. We found that FSTL1 was highly expressed in the early stage of differentiation and subsequently decreased sharply, suggesting that FSTL1 played a possible role in adipogenesis. Meanwhile, the gain- and loss-of-function assays showed that FSTL1 was not only involved in the inflammatory response by inducing the expression of pro-inflammatory factors IL-1β and CCL2 but also significantly attenuated preadipocyte differentiation, as evidenced by the reduction of lipid accumulation and the levels of adipogenic genes, including PPARγ and FABP4. In addition, the target gene prediction and luciferase reporter assay validated that miR-125a-3p targeted the 3' UTR region of FSTL1. These results demonstrated that miR-125a-3p negatively regulated the expression of FSTL1 at the mRNA and protein levels. Furthermore, overexpressing miR-125a-3p in preadipocytes dramatically accelerated adipogenic differentiation and downregulated the levels of IL-1β and CCL2, which were in accordance with the knockdown of FSTL1. On the contrary, treatment with miR-125a-3p inhibitors attenuated adipogenesis but induced the expression of inflammatory genes. In summary, this study suggests a positive function of FSTL1 in adipocyte-induced inflammation and negatively regulates preadipocyte differentiation. Further studies demonstrated that miR-125a-3p could reverse the effect by targeting FSTL1, which might provide a better understanding of treating obesity-related inflammatory diseases.
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http://dx.doi.org/10.1096/fj.202300851R | DOI Listing |
Obesity (Silver Spring)
September 2025
College of Sport and Health, Guangxi Normal University, Guilin, People's Republic of China.
Objective: This study investigates the regulatory role of p53 on Lgals3 expression and its impact on preadipocyte differentiation, fatty acid synthesis, and oxidation in obesity.
Methods: Bioinformatics analysis of six obesity-related microarray datasets and single-cell RNA sequencing (scRNA-seq) data identified Lgals3 as a key obesity-associated gene. A high-fat diet (HF) mouse model was established to evaluate obesity-related phenotypes, including body weight, hepatic Lgals3 expression, adipose tissue pathology, blood lipid profiles, and glucose tolerance.
Mol Metab
August 2025
Montreal Diabetes Research Center - Centre de Recherche du Centre Hospitalier de l'Université de Montréal, and departments of Nutrition and Biochemistry, University of Montreal, Montreal, Canada. Electronic address:
Some individuals exhibit metabolically healthy obesity, characterized by the expansion of white adipose tissue (WAT) without associated complications. The monoacylglycerol (MAG) hydrolase α/β-hydrolase domain-containing 6 (ABHD6) has been implicated in energy metabolism, with its global deletion conferring protection against obesity. However, the immunometabolic roles of adipocyte ABHD6 in WAT remodeling in response to nutri-stress and obesity are not known.
View Article and Find Full Text PDFTissue Cell
August 2025
Major of Human Bio-convergence, Division of Smart Healthcare, Pukyong National University, Busan 48513, Republic of Korea. Electronic address:
Curcumin, a hydrophobic polyphenol derived from turmeric, exhibits diverse biological activities as a natural supplement. However, its low gastrointestinal absorption significantly limits its oral bioavailability. In this study, we investigated the effects of curcumin-loaded nanospheres (CN) on adipocyte differentiation in 3T3-L1 cells and obesity development in high-fat diet-induced obese mice.
View Article and Find Full Text PDFSTAR Protoc
August 2025
Division of Endocrinology and Metabolism, Department of Medicine, University of California, San Diego, San Diego, CA, USA; Department of Pharmacology, University of California, San Diego, San Diego, CA, USA. Electronic address:
Here, we present a protocol for differentiating 3T3-L1 preadipocytes and stromal vascular fraction (SVF)-derived preadipocytes from mice into mature adipocytes, followed by the isolation of crude mitochondrial fractions. This cost-effective and reproducible protocol is optimized for small-plate formats, compatible with standard reagents, and suitable for metabolic studies such as insulin resistance and mitochondrial function.
View Article and Find Full Text PDFPoult Sci
August 2025
College of Animal Science and Technology, Henan Agricultural University, Zhengzhou 450046, China; Henan Key Laboratory for Innovation and Utilization of Chicken Germplasm Resources, Zhengzhou 450046, China; International Joint Research Laboratory for Poultry Breeding of Henan, Zhengzhou 450046, Chin
Transmembrane protein 38 (TMEM38) gene family, including TMEM38A and TMEM38B, is responsible for facilitating trimeric intracellular cation transport across the membrane and regulating key cellular processes, such as muscle contraction and cell differentiation in mammals. However, a genome-wide analysis of the chicken TMEM38 gene family, as well as investigations into their biological roles and post-transcriptional expression regulation in fat deposition have not yet been conducted. In this study, we investigated the genome-wide characteristics of chicken TMEM38 gene family, elucidated the regulatory roles of the TMEM38B gene in both abdominal and intramuscular adipogenesis, and explored its miRNA-mediated expression regulatory mechanisms.
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