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Updated: May 29, 2026

An Adipocyte Cell Culture Model to Study the Impact of Protein and Micro-RNA Modulation on Adipocyte Function
Published on: May 4, 2021
MicroRNA-30c promotes human adipocyte differentiation and co-represses PAI-1 and ALK2
Michael Karbiener1, Claudia Neuhold, Peter Opriessnig
1Institute for Genomics and Bioinformatics, Graz University of Technology, Graz, Austria.
Abstract:
Obesity is characterized by excessive adipose tissue mass and associated with type 2 diabetes and cardiovascular diseases. To fight obesity and its sequels, elucidating molecular events that govern adipocyte differentiation and function is of key importance. MicroRNAs (miRNAs) are a novel class of non-coding, regulatory RNAs that have been shown to regulate crucial cellular processes, including differentiation. Several studies have already assigned miRNAs to distinct functions in murine adipocyte differentiation but only a few studies did so for humans. Here, we investigated the function of miR-30c in human adipogenesis. miR-30c expression was increased during adipogenesis of human multipotent adipose-derived stem (hMADS) cells, and miR-30c overexpression enforced adipocyte marker gene induction and triglyceride accumulation. miRNA target prediction revealed two putative direct targets of miR-30c, PAI-1 (SERPINE1) and ALK2 (ACVR1, ACTRI), both inversely regulated to miR-30c during adipogenesis and responsive to miR-30c overexpression. Luciferase reporter assays confirmed PAI-1 and ALK2 as direct miR-30c targets. Moreover, reciprocal expression between miR-30c and PAI-1 could also be demonstrated in white adipose tissue of obesity mouse models, suggesting a potential physiological role of miR-30c for PAI-1 regulation in the obese state. Validating PAI-1 and ALK-2 as miR-30c mediators in adipogenesis revealed that not single silencing of PAI-1 or ALK2, but only co-silencing of both phenocopied the pro-adipogenic miR-30c effect. Thus, miR-30c can target two, so far not interconnected genes in distinct pathways, supporting the idea that miRNAs might coordinate larger regulatory networks than previously anticipated.
Insights
MicroRNAs (miRNAs) regulate human fat cell development. This study shows miR-30c promotes adipogenesis by targeting PAI-1 and ALK2, highlighting miRNAs in obesity research.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Obesity, linked to type 2 diabetes and cardiovascular diseases, necessitates understanding adipocyte differentiation.
- MicroRNAs (miRNAs) are key regulators of cellular processes, including differentiation, with limited human studies.
- Investigating specific miRNAs in human adipogenesis is crucial for developing anti-obesity strategies.
Purpose of the Study:
- To elucidate the function of miR-30c in human adipogenesis.
- To identify and validate direct targets of miR-30c involved in fat cell differentiation.
- To explore the role of miR-30c and its targets in obesity models.
Main Methods:
- Human multipotent adipose-derived stem (hMADS) cell culture and differentiation.
- miRNA expression analysis and overexpression studies.
- miRNA target prediction, luciferase reporter assays, and gene silencing experiments.
Main Results:
- miR-30c expression increased during human adipogenesis.
- Overexpression of miR-30c promoted adipocyte differentiation and triglyceride accumulation.
- PAI-1 (SERPINE1) and ALK2 (ACVR1) were confirmed as direct miR-30c targets, inversely regulated during adipogenesis.
- Co-silencing of PAI-1 and ALK2 mimicked the pro-adipogenic effect of miR-30c.
- Reciprocal expression of miR-30c and PAI-1 was observed in obese mouse adipose tissue.
Conclusions:
- miR-30c is a pro-adipogenic miRNA in humans, targeting PAI-1 and ALK2.
- miR-30c coordinates regulatory networks by targeting multiple genes in distinct pathways.
- These findings offer insights into miRNA-mediated regulation of adipogenesis and potential therapeutic targets for obesity.
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