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Updated: Jun 15, 2025

An Adipocyte Cell Culture Model to Study the Impact of Protein and Micro-RNA Modulation on Adipocyte Function
Published on: May 4, 2021
Picalm, a novel regulator of GLUT4-trafficking in adipose tissue
Jasmin Gaugel1, Neele Haacke1, Ratika Sehgal1
1Research Group Nutrigenomics of Obesity and Department of Experimental Diabetology, German Institute of Human Nutrition Potsdam-Rehbruecke, Nuthetal, Germany; German Center for Diabetes Research (DZD e.V.), München, Neuherberg, Germany.
Objective:
Picalm (phosphatidylinositol-binding clathrin assembly protein), a ubiquitously expressed clathrin-adapter protein, is a well-known susceptibility gene for Alzheimer's disease, but its role in white adipose tissue (WAT) function has not yet been studied. Transcriptome analysis revealed differential expression of Picalm in WAT of diabetes-prone and diabetes-resistant mice, hence we aimed to investigate the potential link between Picalm expression and glucose homeostasis, obesity-related metabolic phenotypes, and its specific role in insulin-regulated GLUT4 trafficking in adipocytes.
Methods:
Picalm expression and epigenetic regulation by microRNAs (miRNAs) and DNA methylation were analyzed in WAT of diabetes-resistant (DR) and diabetes-prone (DP) female New Zealand Obese (NZO) mice and in male NZO after time-restricted feeding (TRF) and alternate-day fasting (ADF). PICALM expression in human WAT was evaluated in a cross-sectional cohort and assessed before and after weight loss induced by bariatric surgery. siRNA-mediated knockdown of Picalm in 3T3-L1-cells was performed to elucidate functional outcomes on GLUT4-translocation as well as insulin signaling and adipogenesis.
Results:
Picalm expression in WAT was significantly lower in DR compared to DP female mice, as well as in insulin-sensitive vs. resistant NZO males, and was also reduced in NZO males following TRF and ADF. Four miRNAs (let-7c, miR-30c, miR-335, miR-344) were identified as potential mediators of diabetes susceptibility-related differences in Picalm expression, while 11 miRNAs (including miR-23a, miR-29b, and miR-101a) were implicated in TRF and ADF effects. Human PICALM expression in adipose tissue was lower in individuals without obesity vs. with obesity and associated with weight-loss outcomes post-bariatric surgery. siRNA-mediated knockdown of Picalm in mature 3T3-L1-adipocytes resulted in amplified insulin-stimulated translocation of the endogenous glucose transporter GLUT4 to the plasma membrane and increased phosphorylation of Akt and Tbc1d4. Moreover, depleting Picalm before and during 3T3-L1 differentiation significantly suppressed adipogenesis, suggesting that Picalm may have distinct roles in the biology of pre- and mature adipocytes.
Conclusions:
Picalm is a novel regulator of GLUT4-translocation in WAT, with its expression modulated by both genetic predisposition to diabetes and dietary interventions. These findings suggest a potential role for Picalm in improving glucose homeostasis and highlight its relevance as a therapeutic target for metabolic disorders.
Insights
Picalm protein regulates glucose transporter GLUT4 in white adipose tissue, impacting glucose homeostasis. Lower Picalm levels are linked to diabetes susceptibility and obesity, suggesting therapeutic potential for metabolic disorders.
Area of Science:
- Metabolic research
- Adipose tissue biology
- Molecular endocrinology
Background:
- Picalm (phosphatidylinositol-binding clathrin assembly protein) is a known Alzheimer's disease susceptibility gene.
- Its function in white adipose tissue (WAT) and metabolic regulation remains unstudied.
- Transcriptome analysis indicated differential Picalm expression in diabetes-prone vs. resistant mice WAT.
Purpose of the Study:
- To investigate the link between Picalm expression and glucose homeostasis.
- To explore Picalm's role in obesity-related metabolic phenotypes.
- To determine Picalm's specific function in insulin-regulated GLUT4 trafficking in adipocytes.
Main Methods:
- Analyzed Picalm expression and epigenetic regulation (miRNAs, DNA methylation) in mouse models (NZO mice) under different dietary conditions (TRF, ADF).
- Assessed human PICALM expression in adipose tissue from a cross-sectional cohort and post-bariatric surgery.
- Utilized siRNA-mediated knockdown of Picalm in 3T3-L1 adipocytes to study GLUT4 translocation, insulin signaling, and adipogenesis.
Main Results:
- Lower Picalm expression observed in diabetes-resistant vs. diabetes-prone mice and in insulin-sensitive vs. resistant males.
- Picalm levels decreased in mice following time-restricted feeding and alternate-day fasting.
- Human PICALM expression was lower in non-obese individuals and correlated with weight loss post-bariatric surgery.
- Picalm knockdown amplified insulin-stimulated GLUT4 translocation and increased Akt/Tbc1d4 phosphorylation.
- Picalm depletion suppressed adipogenesis in differentiating 3T3-L1 cells.
Conclusions:
- Picalm is a novel regulator of GLUT4 translocation in white adipose tissue.
- Picalm expression is modulated by genetic predisposition to diabetes and dietary interventions.
- Picalm may serve as a therapeutic target for improving glucose homeostasis and metabolic disorders.
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