A phosphorylation-deficient mutant of retinoid X receptor α at Thr 167 alters fasting response and energy metabolism in mice

Lab Invest. 2019 Oct;99(10):1470-1483. doi: 10.1038/s41374-019-0266-1. Epub 2019 May 31.

Abstract

Retinoid X receptor α (RXRα) has a conserved phosphorylation motif at threonine 162 (humans) and threonine 167 (mice) within the DNA-binding domain. Here we have generated RXRα knock-in mice (RxrαT167A) bearing a single mutation of Thr 167 to alanine and examined the roles of Thr 167 in the regulation of energy metabolism within adipose, muscle, and liver tissues. RxrαT167A mice exhibited down-regulation of metabolic pathways converting glucose to fatty acids, such as acetyl-CoA carboxylase in the white adipose tissue (WAT) and ATP citrate lyase in the muscle. They also reduced gene expression for genes related to fatty acid catabolism and triglyceride synthesis in WAT and controlled heat factors such as adrenergic receptor β1 in muscles. In contrast, hepatic gluconeogenic pathways and synthetic pathways related to fatty acids remained unaffected by this mutation. Expression of multiple genes that were affected by the Thr 167 mutation in adipose tissue exhibited clear response to LG100268, a synthetic RXR agonist. Thus, the altered gene expression in mutant mice adipose appeared to be a direct effect of RXRα Thr 167 mutation and by some secondary effect of the mutation. Blood glucose levels remained normal in RxrαT167A during feeding, as observed with RXRα wild-type mice. However, RxrαT167A mice exhibited an attenuated decrease of blood glucose levels that occurred after fasting. This attenuation correlated with a concomitant down-regulation of lipid metabolism in WAT and was associated with RXRα phosphorylation at Thr 167. Thus, Thr 167 enabled RXRα to coordinate these three organs for regulation of energy metabolism and maintenance of glucose homeostasis.

Publication types

  • Research Support, N.I.H., Intramural

MeSH terms

  • Animals
  • Blood Glucose / genetics
  • COS Cells
  • Cell Line, Tumor
  • Chlorocebus aethiops
  • DNA / metabolism
  • Energy Metabolism / genetics*
  • Food Deprivation / physiology*
  • Gene Knock-In Techniques
  • Humans
  • Male
  • Mice
  • Phosphorylation
  • Retinoid X Receptor alpha / genetics*
  • Retinoid X Receptor alpha / metabolism

Substances

  • Blood Glucose
  • Retinoid X Receptor alpha
  • DNA