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Trends in Biochemical Sciences|October 20, 2009
A G protein-coupled receptor at work: the rhodopsin modelKlaus Peter Hofmann, Patrick Scheerer, Peter W Hildebrand, et al.Nature Communications|January 10, 2018
Mechanistic insights into the role of prenyl-binding protein PrBP/δ in membrane dissociation of phosphodiesterase 6Bilal M Qureshi, Andrea Schmidt, Elmar Behrmann, et al.Molecular and Cellular Biology|March 9, 2002
Calcium-dependent assembly of centrin-G-protein complex in photoreceptor cellsAlexander Pulvermüller, Andreas Giessl, Martin Heck, et al.Plos One|February 6, 2009
A ligand channel through the G protein coupled receptor opsinPeter W Hildebrand, Patrick Scheerer, Jung Hee Park, et al.Proceedings of the National Academy of Sciences of the United States of America|June 23, 2009
Structural and kinetic modeling of an activating helix switch in the rhodopsin-transducin interfacePatrick Scheerer, Martin Heck, Andrean Goede, et al.Journal of the American Chemical Society|April 22, 2011
Conserved Tyr223(5.58) plays different roles in the activation and G-protein interaction of rhodopsinMatthias Elgeti, Roman Kazmin, Martin Heck, et al.Biochemistry|October 20, 2009
Helix formation in arrestin accompanies recognition of photoactivated rhodopsinSophie E Feuerstein, Alexander Pulvermüller, Rudolf Hartmann, et al.Nature Communications|September 11, 2014
Crystal structure of a common GPCR-binding interface for G protein and arrestinMichal Szczepek, Florent Beyrière, Klaus Peter Hofmann, et al.Open Biology|August 3, 2018
It takes two transducins to activate the cGMP-phosphodiesterase 6 in retinal rodsBilal M Qureshi, Elmar Behrmann, Johannes Schöneberg, et al.The Journal of Biological Chemistry|August 15, 2002
Biochemical and physiological properties of rhodopsin regenerated with 11-cis-6-ring- and 7-ring-retinalsVladimir Kuksa, Franz Bartl, Tadao Maeda, et al.Pageof 4