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Semaphorin 4B is an ADAM17-cleaved adipokine that inhibits adipocyte differentiation and thermogenesis
Abdulbasit Amin1, Marina Badenes2, Johanna Tüshaus3
1Instituto Gulbenkian de Ciência (IGC), Oeiras, Portugal; Department of Physiology, Faculty of Basic Medical Sciences, University of Ilorin, Nigeria.
Objective:
The metalloprotease ADAM17 (also called TACE) plays fundamental roles in homeostasis by shedding key signaling molecules from the cell surface. Although its importance for the immune system and epithelial tissues is well-documented, little is known about the role of ADAM17 in metabolic homeostasis. The purpose of this study was to determine the impact of ADAM17 expression, specifically in adipose tissues, on metabolic homeostasis.
Methods:
We used histopathology, molecular, proteomic, transcriptomic, in vivo integrative physiological and ex vivo biochemical approaches to determine the impact of adipose tissue-specific deletion of ADAM17 upon adipocyte and whole organism metabolic physiology.
Results:
ADAM17adipoq-creΔ/Δ mice exhibited a hypermetabolic phenotype characterized by elevated energy consumption and increased levels of adipocyte thermogenic gene expression. On a high fat diet, these mice were more thermogenic, while exhibiting elevated expression levels of genes associated with lipid oxidation and lipolysis. This hypermetabolic phenotype protected mutant mice from obesogenic challenge, limiting weight gain, hepatosteatosis and insulin resistance. Activation of beta-adrenoceptors by the neurotransmitter norepinephrine, a key regulator of adipocyte physiology, triggered the shedding of ADAM17 substrates, and regulated ADAM17 expression at the mRNA and protein levels, hence identifying a functional connection between thermogenic licensing and the regulation of ADAM17. Proteomic studies identified Semaphorin 4B (SEMA4B), as a novel ADAM17-shed adipokine, whose expression is regulated by physiological thermogenic cues, that acts to inhibit adipocyte differentiation and dampen thermogenic responses in adipocytes. Transcriptomic data showed that cleaved SEMA4B acts in an autocrine manner in brown adipocytes to repress the expression of genes involved in adipogenesis, thermogenesis, and lipid uptake, storage and catabolism.
Conclusions:
Our findings identify a novel ADAM17-dependent axis, regulated by beta-adrenoceptors and mediated by the ADAM17-cleaved form of SEMA4B, that modulates energy balance in adipocytes by inhibiting adipocyte differentiation, thermogenesis and lipid catabolism.
Insights
Researchers found that removing ADAM17 from fat tissue created a hypermetabolic state, increasing energy use and protecting against obesity and insulin resistance. This involves a new pathway regulating fat cell function and energy balance.
Area of Science:
- Metabolic homeostasis
- Adipocyte biology
- Proteolysis
Background:
- ADAM17 (TACE) is crucial for homeostasis via cell surface molecule shedding.
- Its role in metabolic homeostasis, particularly in adipose tissue, is largely unknown.
- This study investigates ADAM17's impact on metabolic health.
Purpose of the Study:
- To determine the effect of ADAM17 expression in adipose tissue on metabolic homeostasis.
- To elucidate the mechanisms by which ADAM17 influences adipocyte and whole-body metabolism.
Main Methods:
- Utilized histopathology, molecular, proteomic, and transcriptomic analyses.
- Employed in vivo integrative physiology and ex vivo biochemical assays.
- Investigated adipose tissue-specific deletion of ADAM17 in mice.
Main Results:
- ADAM17-deficient mice showed a hypermetabolic phenotype with increased energy expenditure and thermogenic gene expression.
- These mice were protected from high-fat diet-induced obesity, hepatosteatosis, and insulin resistance.
- Identified Semaphorin 4B (SEMA4B) as a novel ADAM17-shed adipokine inhibiting adipocyte differentiation and thermogenesis.
Conclusions:
- Discovered a novel ADAM17-dependent pathway involving beta-adrenoceptors and SEMA4B.
- This axis modulates energy balance by regulating adipocyte differentiation, thermogenesis, and lipid metabolism.
- ADAM17 in adipose tissue plays a key role in maintaining metabolic homeostasis.
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