Engineered hyperphosphorylation of the β2-adrenoceptor prolongs arrestin-3 binding and induces arrestin

Diana Zindel1, Adrian J Butcher1, Suleiman Al-Sabah1

  • 1Institut für Pharmakologie und Klinische Pharmazie, Philipps-Universität Marburg, Marburg, Germany (D.Z., M.B., C.K.); MRC Toxicology Unit, University of Leicester, Leicester, United Kingdom (A.J.B., A.B.T.); Department of Pharmacology and Toxicology, Kuwait University, Kuwait (S.A.-S.); and University of Applied Sciences Upper Austria, Wels, Austria (P.L., J.W.).

Molecular Pharmacology
|November 27, 2014
PubMed

Insights

Engineering phosphorylation sites into G protein-coupled receptors alters arrestin binding. This modification prolonged arrestin-3 interaction, enhancing receptor internalization and endosomal trafficking.

Area of Science:

  • Pharmacology
  • Molecular Biology
  • Cell Biology

Background:

  • G protein-coupled receptor (GPCR) phosphorylation is crucial for desensitization and arrestin binding.
  • Distinct phosphorylation patterns' influence on arrestin interaction and receptor trafficking remains incompletely understood.

Purpose of the Study:

  • To investigate how engineered phosphorylation sites in the β2-adrenoceptor (β2AR) affect arrestin binding and trafficking.
  • To elucidate the role of specific phosphorylation patterns in modulating GPCR-arrestin dynamics.

Main Methods:

  • Engineering phosphorylation sites into the C-terminal tail of β2AR to create the β2AR(SSS) mutant.
  • Real-time measurement of arrestin-3 recruitment and complex stability using fluorescence resonance energy transfer (FRET) and fluorescence recovery after photobleaching (FRAP).
  • Analysis of arrestin-3 localization and receptor internalization/recycling.

Main Results:

  • The β2AR(SSS) mutant exhibited increased isoprenaline-stimulated phosphorylation compared to wild-type β2AR.
  • Arrestin-3 dissociation from β2AR(SSS) was 2- to 4-fold prolonged compared to wild-type β2AR.
  • Engineered phosphorylation sites led to prolonged arrestin-3 interaction, enhanced receptor internalization, and endosomal colocalization with arrestin.

Conclusions:

  • Minimal modification of GPCRs by engineering phosphorylation sites can significantly increase receptor-arrestin interaction affinity.
  • Modest increases in receptor-arrestin affinity are sufficient to alter arrestin trafficking dynamics, including internalization and endosomal localization.
  • Understanding these interactions provides insights into GPCR regulation and drug development strategies.

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