Molecular insights into atypical modes of β-arrestin interaction with seven transmembrane receptors

  • Science. 2024 Jan 5;383(6678):101-108. doi: 10.1126/science.adj3347.
Jagannath Maharana  #  1 Fumiya K Sano  #  2 Parishmita Sarma  #  1 Manish K Yadav  1 Longhan Duan  3 Tomasz M Stepniewski  4 Madhu Chaturvedi  1 Ashutosh Ranjan  1 Vinay Singh  1 Sayantan Saha  1 Gargi Mahajan  1 Mohamed Chami  5 Wataru Shihoya  2 Jana Selent  4 Ka Young Chung  3 Ramanuj Banerjee  1 Osamu Nureki  2 Arun K Shukla  1
Affiliations
  • 1. Department of Biological Sciences, Indian Institute of Technology Kanpur, Kanpur, India.
  • 2. Graduate School of Science, The University of Tokyo, Tokyo, Japan.
  • 3. School of Pharmacy, Sungkyunkwan University, Suwon, Republic of Korea.
  • 4. Research Program on Biomedical Informatics, Hospital del Mar Research Institute and Pompeu Fabra University, Barcelona, Spain.
  • 5. BioEM Lab, Biozentrum, University of Basel, Basel, Switzerland.
  • # Contributed equally.
Abstract

β-arrestins (βarrs) are multifunctional proteins involved in signaling and regulation of seven transmembrane receptors (7TMRs), and their interaction is driven primarily by agonist-induced receptor activation and phosphorylation. Here, we present seven cryo-electron microscopy structures of βarrs either in the basal state, activated by the muscarinic receptor subtype 2 (M2R) through its third intracellular loop, or activated by the βarr-biased decoy D6 receptor (D6R). Combined with biochemical, cellular, and biophysical experiments, these structural snapshots allow the visualization of atypical engagement of βarrs with 7TMRs and also reveal a structural transition in the carboxyl terminus of βarr2 from a β strand to an α helix upon activation by D6R. Our study provides previously unanticipated molecular insights into the structural and functional diversity encoded in 7TMR-βarr complexes with direct implications for exploring novel therapeutic avenues.