Rapamycin negatively impacts insulin signaling, glucose uptake and uncoupling protein-1 in brown adipocytes

Ester García-Casarrubios1, Carlos de Moura2, Ana I Arroba3

  • 1Institute of Biomedicine Alberto Sols (CSIC/UAM), E-28029 Madrid, Spain.

Insights

Rapamycin treatment impairs insulin signaling and mitochondrial function in brown adipose tissue (BAT). This suggests brown fat insulin resistance may contribute to new onset diabetes after transplantation (NODAT).

Area of Science:

  • Metabolic disorders
  • Immunosuppression therapy
  • Brown adipose tissue biology

Background:

  • New onset diabetes after transplantation (NODAT) affects 40% of patients on immunosuppressive agents (IAs).
  • IAs impair insulin action in peripheral tissues, but effects on brown adipose tissue (BAT) are unknown.
  • Rapamycin (sirolimus) is a common IA with potential metabolic side effects.

Purpose of the Study:

  • To investigate the impact of rapamycin on insulin sensitivity, thermogenesis, and mitochondrial function in BAT.
  • To determine if BAT is a target tissue for rapamycin's metabolic effects.

Main Methods:

  • In vitro studies on cultured brown adipocytes treated with rapamycin.
  • In vivo studies using rapamycin-treated rats.
  • Analysis of insulin signaling pathways (IRS1, Akt, JNK), glucose uptake, lipolysis, thermogenic gene expression (PGC-1α, UCP-1), and mitochondrial respiration.

Main Results:

  • Rapamycin decreased insulin receptor substrate 1 (IRS1) and Akt phosphorylation in brown adipocytes.
  • Insulin-induced glucose uptake and GLUT4 translocation were reduced by rapamycin.
  • Rapamycin inhibited norepinephrine-induced lipolysis and expression of PGC-1α and UCP-1.
  • Mitochondrial respiration (basal, proton leak, maximal capacity) was significantly impaired in rapamycin-treated brown adipocytes.
  • In vivo, rapamycin abolished insulin-mediated Akt phosphorylation in rat BAT.

Conclusions:

  • Brown adipocytes are identified as target cells for rapamycin.
  • Rapamycin disrupts insulin signaling and mitochondrial function in BAT.
  • Insulin resistance in BAT may contribute to the development of NODAT.

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