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.

Molecular Metabolism
|April 30, 2023
PubMed
Abstract

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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