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Activating ligands of Uncoupling protein 1 identified by rapid membrane protein thermostability shift analysis
Stockholm University, Faculty of Science, Department of Molecular Biosciences, The Wenner-Gren Institute.
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Number of Authors: 82022 (English)In: Molecular Metabolism, ISSN 2212-8778, Vol. 62, article id 101526Article in journal (Refereed) Published
Abstract [en]

Objective: Uncoupling protein 1 (UCP1) catalyses mitochondrial proton leak in brown adipose tissue to facilitate nutrient oxidation for heat production, and may combat metabolic disease if activated in humans. During the adrenergic stimulation of brown adipocytes, free fatty acids generated from lipolysis activate UCP1 via an unclear interaction. Here, we set out to characterise activator binding to purified UCP1 to clarify the activation process, discern novel activators and the potential to target UCP1.

Methods: We assessed ligand binding to purified UCP1 by protein thermostability shift analysis, which unlike many conventional approaches can inform on the binding of hydrophobic ligands to membrane proteins. A detailed activator interaction analysis and screening approach was carried out, supported by investigations of UCP1 activity in liposomes, isolated brown fat mitochondria and UCP1 expression-controlled cell lines.

Results: We reveal that fatty acids and other activators influence UCP1 through a specific destabilising interaction, behaving as transport substrates that shift the protein to a less stable conformation of a transport cycle. Through the detection of specific stability shifts in screens, we identify novel activators, including the over-the-counter drug ibuprofen, where ligand analysis indicates that UCP1 has a relatively wide structural specificity for interacting molecules. Ibuprofen successfully induced UCP1 activity in liposomes, isolated brown fat mitochondria and UCP1-expressing HEK293 cells but not in cultured brown adipocytes, suggesting drug delivery differs in each cell type.

Conclusions: These findings clarify the nature of the activator-UCP1 interaction and demonstrate that the targeting of UCP1 in cells by approved drugs is in principle achievable as a therapeutic avenue, but requires variants with more effective delivery in brown adipocytes.

Place, publisher, year, edition, pages
2022. Vol. 62, article id 101526
Keywords [en]
Ligand binding, Thermal stability assay, Differential scanning fluorimetry, Brown adipose tissue, Proton transport, Energy expenditure, Mitochondrial carrier
National Category
Cell and Molecular Biology
Identifiers
URN: urn:nbn:se:su:diva-210301DOI: 10.1016/j.molmet.2022.101526ISI: 000861054600004PubMedID: 35691529Scopus ID: 2-s2.0-85132531588OAI: oai:DiVA.org:su-210301DiVA, id: diva2:1702530
Available from: 2022-10-11 Created: 2022-10-11 Last updated: 2025-07-31Bibliographically approved
In thesis
1. Cellular mechanisms enhancing white fat metabolism and their impact on obesity
Open this publication in new window or tab >>Cellular mechanisms enhancing white fat metabolism and their impact on obesity
2025 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

The rate of obesity among adults and children is rising, which underlines the need for effective anti-obesity strategies. Multiple promising pharmacotherapies have recently been developed and approved for human use. These focus primarily on reducing energy intake by interfering with satiety and nutrient uptake. Strategies to simultaneously decrease energy intake and increase energy expenditure are an interesting focus for future research. 

Since the (re)discovery of brown adipose tissue (BAT) in adult humans, activation of its unique uncoupling protein 1 (UCP1) has been suggested to enhance energy dissipation to increase energy expenditure. However, the UCP1 knockout (KO) mouse model paradoxically remains lean on a high-fat diet (HFD) in mild cold. This suggests the presence of alternative thermogenic mechanisms, which are of high translational value, as obese individuals typically have little to no BAT and UCP1. It was previously suggested that fibroblast growth factor 21 (FGF21) plays a crucial role in the lean phenotype of UCP1 KO mice by remodeling and transforming the inguinal white adipose tissue (iWAT) towards a more beige phenotype. While BAT is studied intensively, the influence of beige fat on obesity remains unclear, particularly in the context of UCP1. Moreover, the underlying molecular mechanisms by which FGF21 regulates body weight are not yet fully understood.

In Chapter I, we investigate the ability of the over-the-counter drug Ibuprofen to activate UCP1 in UCP1-expressing human embryonic kidney 293 cells and isolated brown fat mitochondria. We show that Ibuprofen is a viable activator, but different variants are needed for improved delivery to activate brown adipocytes in vivo. In Chapter II, we show that overexpression of one key enzyme of the futile lipid cycle, glycerol kinase, did not induce major changes in adipocyte lipid metabolism. However, beta-adrenergic stimulation of these adipocytes may induce increased lipid cycling. Chapter III shows that FGF21 treatment results in immediate weight loss in UCP1 KO mice on HFD, whereas wildtype (WT) mice have a delayed response. We find that the iWAT has increased levels of FGF21-responsive genes only in UCP1 KO mice, which suggests that FGF21 sensitivity in iWAT underlies the body weight loss. In Chapter IV, we show that male UCP1 KO mice are susceptible to diet-induced obesity resistance, whereas female UCP1 KO mice have a similar weight to female WT mice, with a higher food intake. Interestingly, the levels of FGF21 and iWAT browning are similar between sexes. Overall, our results suggest that hyperphagia may counterbalance the beneficial effects of FGF21 on metabolism in female mice. 

Collectively, our results highlight new ways to activate the metabolic capacity of beige adipocytes within iWAT. Furthermore, we demonstrate the importance of iWAT in sustained FGF21 sensitivity and show sex-specific differences in response to high endogenous FGF21 levels.

 

Place, publisher, year, edition, pages
Stockholm: Department of Molecular Biosciences, The Wenner-Gren Institute, Stockholm University, 2025. p. 50
Keywords
Obesity, Adipose tissue, Energy metabolism, Uncoupling protein 1, Fibroblast growth factor 21, Glycerol kinase
National Category
Molecular Biology
Research subject
Molecular Bioscience
Identifiers
urn:nbn:se:su:diva-245168 (URN)978-91-8107-334-8 (ISBN)978-91-8107-335-5 (ISBN)
Public defence
2025-09-22, E306, Arrheniuslaboratorierna, hus E, Vån 3, Svante Arrhenius väg 20C, Stockholm, 13:00 (English)
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Available from: 2025-08-28 Created: 2025-07-31 Last updated: 2025-08-20Bibliographically approved

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Klein Hazebroek, MarlouJastroch, MartinKeipert, Susanne

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