Heterodimerization of mouse orexin type 2 receptor variants and the effects on signal transduction

Insights

Mouse orexin receptors mOX2alphaR and mOX2betaR form functional heterodimers. This interaction enhances ERK signaling, leading to increased cell proliferation and impacting feeding homeostasis.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Cell Signaling

Background:

  • Orexins regulate physiological processes via Orexin1R and Orexin2R.
  • Two splice variants of mouse Orexin 2 receptor, mOX2alphaR and mOX2betaR, have been identified.

Purpose of the Study:

  • To investigate the heterodimerization of mOX2alphaR and mOX2betaR.
  • To explore novel signal transduction pathways activated by orexin receptor heterodimers.

Main Methods:

  • BRET and co-immunoprecipitation assays to confirm dimerization.
  • HEK293 cells used for co-expression and stimulation studies.
  • Analysis of ERK1/2 activation, intracellular Ca2+ levels, and reporter gene activity.

Main Results:

  • mOX2alphaR and mOX2betaR form functional heterodimers.
  • Heterodimerization potentiates ERK1/2 activation and intracellular Ca2+ elevation.
  • Orexin stimulation of heterodimers increases cell proliferation and alters reporter gene activities.

Conclusions:

  • mOX2alphaR and mOX2betaR form functional heterodimers, modulating downstream signaling.
  • This heterodimerization impacts Protein Kinase C and Protein Kinase A activity.
  • The findings have implications for orexin's role in physiological regulation, including feeding homeostasis.