Insulin-induced serine 22 phosphorylation of retinoid X receptor alpha is dispensable for adipogenesis in brown adipocytes.
Jacob Ardenkjær-LarsenKaja RuparGoda SinkevičiūtėPatricia S S PetersenJulia VillarroelMorten LundhRomain BarrèsAtefeh RabieeBrice EmanuelliPublished in: Adipocyte (2021)
Insulin action initiates a series of phosphorylation events regulating cellular differentiation, growth and metabolism. We have previously discovered, in a mass spectrometry-based phosphoproteomic study, that insulin/IGF-1 signalling induces phosphorylation of retinoid x receptor alpha (RXRα) at S22 in mouse brown pre-adipocytes. Here, we show that insulin induces the phosphorylation of RXRα at S22 in both brown precursor and mature adipocytes through a pathway involving ERK, downstream of IRS-1 and -2. We also found that RXRα S22 phosphorylation is promoted by insulin and upon re-feeding in brown adipose tissue in vivo, and that insulin-stimulated S22 phosphorylation of RXRα is dampened by diet-induced obesity. We used Rxra knockout cells re-expressing wild type (WT) or S22A non-phosphorylatable forms of RXRα to further characterize the role of S22 in brown adipocytes. Knockout of Rxra in brown pre-adipocytes resulted in decreased lipid accumulation and adipogenic gene expression during differentiation, and re-expression of RxraWT alleviated these effects. However, we observed no significant difference in cells re-expressing the RxraS22A mutant as compared with the cells re-expressing RxraWT. Furthermore, comparison of gene expression during adipogenesis in the WT and S22A re-expressing cells by RNA sequencing revealed similar transcriptomic profiles. Thus, our data propose a dispensable role for RXRα S22 phosphorylation in adipogenesis and transcription in differentiating brown pre-adipocytes.
Keyphrases
- adipose tissue
- type diabetes
- induced apoptosis
- gene expression
- wild type
- high fat diet induced
- protein kinase
- cell cycle arrest
- insulin resistance
- glycemic control
- mass spectrometry
- signaling pathway
- single cell
- pi k akt
- cell death
- endoplasmic reticulum stress
- metabolic syndrome
- binding protein
- high fat diet
- high resolution
- computed tomography
- big data
- magnetic resonance
- weight gain
- ms ms
- contrast enhanced
- simultaneous determination
- long non coding rna
- high glucose
- capillary electrophoresis