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The Journal of Biological Chemistry|April 17, 1999
How does arrestin respond to the phosphorylated state of rhodopsin?S A Vishnivetskiy, C L Paz, C Schubert, et al.Nature Communications|November 12, 2017
Structural basis of arrestin-3 activation and signalingQiuyan Chen, Nicole A Perry, Sergey A Vishnivetskiy, et al.The Journal of Biological Chemistry|April 20, 2001
Real-time analysis of G protein-coupled receptor reconstitution in a solubilized systemT A Bennett, T A Key, V V Gurevich, et al.Plos One|December 17, 2011
The effect of arrestin conformation on the recruitment of c-Raf1, MEK1, and ERK1/2 activationSergio Coffa, Maya Breitman, Susan M Hanson, et al.Cellular Signalling|September 10, 2013
Rapid degeneration of rod photoreceptors expressing self-association-deficient arrestin-1 mutantXiufeng Song, Jungwon Seo, Faiza Baameur, et al.Parkinsonism & Related Disorders|May 12, 2005
Pathogenesis of levodopa-induced dyskinesia: focus on D1 and D3 dopamine receptorsC Guigoni, I Aubert, Q Li, et al.The Journal of Biological Chemistry|November 18, 2017
Heterologous phosphorylation-induced formation of a stability lock permits regulation of inactive receptors by β-arrestinsAndrás D Tóth, Susanne Prokop, Pál Gyombolai, et al.The Journal of Biological Chemistry|July 24, 2004
Direct binding of visual arrestin to microtubules determines the differential subcellular localization of its splice variants in rod photoreceptorsK Saidas Nair, Susan M Hanson, Matthew J Kennedy, et al.Traffic (Copenhagen, Denmark)|January 7, 2005
Inhibition of chemoattractant N-formyl peptide receptor trafficking by active arrestinsT Alexander Key, Charlotte M Vines, Brant M Wagener, et al.The Journal of Biological Chemistry|September 20, 1997
Internalization of the m2 muscarinic acetylcholine receptor. Arrestin-independent and -dependent pathwaysR Pals-Rylaarsdam, V V Gurevich, K B Lee, et al.Pageof 38