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PMID: 21471193 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Few residues within an extensive binding interface drive receptor interaction and determine the specificity of arrestin proteins.

The Journal of biological chemistry ·Vol. 286 ·No. 27 ·2011-07-08 ·Pages 24288-99

Vishnivetskiy SA, Gimenez LE, Francis DJ, Hanson SM, Hubbell WL, Klug CS, Gurevich VV

Abstract

Arrestins bind active phosphorylated forms of G protein-coupled receptors, terminating G protein activation, orchestrating receptor trafficking, and redirecting signaling to alternative pathways. Visual arrestin-1 preferentially binds rhodopsin, whereas the two non-visual arrestins interact with hundreds of G protein-coupled receptor subtypes. Here we show that an extensive surface on the concave side of both arrestin-2 domains is involved in receptor binding. We also identified a small number of residues on the receptor binding surface of the N- and C-domains that largely determine the receptor specificity of arrestins. We show that alanine substitution of these residues blocks the binding of arrestin-1 to rhodopsin in vitro and of arrestin-2 and -3 to β2-adrenergic, M2 muscarinic cholinergic, and D2 dopamine receptors in intact cells, suggesting that these elements critically contribute to the energy of the interaction. Thus, in contrast to arrestin-1, where direct phosphate binding is crucial, the interaction of non-visual arrestins with their cognate receptors depends to a lesser extent on phosphate binding and more on the binding to non-phosphorylated receptor elements.

MeSH Terms
Amino Acid Substitution Animals Arrestin/chemistry,genetics,metabolism Binding Sites/physiology Cattle Humans Mutation, Missense Peptide Mapping Protein Structure, Tertiary Receptors, G-Protein-Coupled/chemistry,genetics,metabolism
Chemicals
Arrestin Receptors, G-Protein-Coupled
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Vishnivetskiy Sergey A
Department of Pharmacology, Vanderbilt University, Nashville, Tennessee 37232, USA.
Gimenez Luis E
Francis Derek J
Hanson Susan M
Hubbell Wayne L
Klug Candice S
Gurevich Vsevolod V
References (92)
92 references, click to expand
  1. Enhanced arrestin facilitates recovery and protects rods lacking rhodopsin phosphorylation.
    Curr Biol. 2009 Apr 28;19(8):700-5 PMID: 19361994
  2. Binding of wild type and chimeric arrestins to the m2 muscarinic cholinergic receptor.
    J Biol Chem. 1993 Aug 15;268(23):16879-82 PMID: 8349577
  3. Arrestin-1 expression level in rods: balancing functional performance and photoreceptor health.
    Neuroscience. 2011 Feb 3;174:37-49 PMID: 21075174
  4. Receptor-specific desensitization with purified proteins. Kinase dependence and receptor specificity of beta-arrestin and arrestin in the beta 2-adrenergic receptor and rhodopsin systems.
    J Biol Chem. 1992 Apr 25;267(12):8558-64 PMID: 1349018
  5. Rapid and reproducible deactivation of rhodopsin requires multiple phosphorylation sites.
    Neuron. 2000 Oct;28(1):153-64 PMID: 11086991
  6. beta-arrestin-dependent desensitization of luteinizing hormone/choriogonadotropin receptor is prevented by a synthetic peptide corresponding to the third intracellular loop of the receptor.
    J Biol Chem. 1999 May 7;274(19):12984-9 PMID: 10224047
  7. Robust self-association is a common feature of mammalian visual arrestin-1.
    Biochemistry. 2011 Mar 29;50(12):2235-42 PMID: 21288033
  8. Internalization of the m2 muscarinic acetylcholine receptor. Arrestin-independent and -dependent pathways.
    J Biol Chem. 1997 Sep 19;272(38):23682-9 PMID: 9295310
  9. Visual arrestin activity may be regulated by self-association.
    J Biol Chem. 1999 Jul 23;274(30):21186-90 PMID: 10409673
  10. Targeted construction of phosphorylation-independent beta-arrestin mutants with constitutive activity in cells.
    J Biol Chem. 1999 Mar 12;274(11):6831-4 PMID: 10066734
  11. Polypeptide variants of beta-arrestin and arrestin3.
    J Biol Chem. 1993 Jul 25;268(21):15640-8 PMID: 8340388
  12. Arrestin binding to calmodulin: a direct interaction between two ubiquitous signaling proteins.
    J Mol Biol. 2006 Dec 15;364(5):955-63 PMID: 17054984
  13. Structure and function of the visual arrestin oligomer.
    EMBO J. 2007 Mar 21;26(6):1726-36 PMID: 17332750
  14. Arrestin2 expression selectively increases during neural differentiation.
    J Neurochem. 2004 Dec;91(6):1404-16 PMID: 15584917
  15. The differential engagement of arrestin surface charges by the various functional forms of the receptor.
    J Biol Chem. 2006 Feb 10;281(6):3458-62 PMID: 16339758
  16. Crystal structure of cone arrestin at 2.3A: evolution of receptor specificity.
    J Mol Biol. 2005 Dec 16;354(5):1069-80 PMID: 16289201
  17. beta-Arrestin 1 and 2 differentially regulate heptahelical receptor signaling and trafficking.
    Proc Natl Acad Sci U S A. 2001 Feb 13;98(4):1601-6 PMID: 11171997
  18. Use of bacteriophage RNA polymerase in RNA synthesis.
    Methods Enzymol. 1996;275:382-97 PMID: 9026651
  19. The beta2-adrenergic receptor/betaarrestin complex recruits the clathrin adaptor AP-2 during endocytosis.
    Proc Natl Acad Sci U S A. 1999 Mar 30;96(7):3712-7 PMID: 10097102
  20. Topographic study of arrestin using differential chemical modifications and hydrogen/deuterium exchange.
    Protein Sci. 1994 Dec;3(12):2428-34 PMID: 7756996
  21. Beta-arrestin acts as a clathrin adaptor in endocytosis of the beta2-adrenergic receptor.
    Nature. 1996 Oct 3;383(6599):447-50 PMID: 8837779
  22. Each rhodopsin molecule binds its own arrestin.
    Proc Natl Acad Sci U S A. 2007 Feb 27;104(9):3125-8 PMID: 17360618
  23. Arrestins: ubiquitous regulators of cellular signaling pathways.
    Genome Biol. 2006;7(9):236 PMID: 17020596
  24. Mechanism of phosphorylation-recognition by visual arrestin and the transition of arrestin into a high affinity binding state.
    Mol Pharmacol. 1997 Jan;51(1):161-9 PMID: 9016359
  25. G protein-coupled receptor kinase-mediated phosphorylation regulates post-endocytic trafficking of the D2 dopamine receptor.
    J Biol Chem. 2009 May 29;284(22):15038-51 PMID: 19332542
  26. The role of arrestin alpha-helix I in receptor binding.
    J Mol Biol. 2010 Jan 8;395(1):42-54 PMID: 19883657
  27. Custom-designed proteins as novel therapeutic tools? The case of arrestins.
    Expert Rev Mol Med. 2010 Apr 23;12:e13 PMID: 20412604
  28. Mapping the arrestin-receptor interface. Structural elements responsible for receptor specificity of arrestin proteins.
    J Biol Chem. 2004 Jan 9;279(2):1262-8 PMID: 14530255
  29. Interactions of metarhodopsin II. Arrestin peptides compete with arrestin and transducin.
    J Biol Chem. 2000 Dec 1;275(48):37679-85 PMID: 10969086
  30. Mouse cones require an arrestin for normal inactivation of phototransduction.
    Neuron. 2008 Aug 14;59(3):462-74 PMID: 18701071
  31. How does arrestin respond to the phosphorylated state of rhodopsin?
    J Biol Chem. 1999 Apr 23;274(17):11451-4 PMID: 10206946
  32. Beta-arrestin2, a novel member of the arrestin/beta-arrestin gene family.
    J Biol Chem. 1992 Sep 5;267(25):17882-90 PMID: 1517224
  33. Visual and both non-visual arrestins in their "inactive" conformation bind JNK3 and Mdm2 and relocalize them from the nucleus to the cytoplasm.
    J Biol Chem. 2006 Jul 28;281(30):21491-21499 PMID: 16737965
  34. Concentration-dependent tetramerization of bovine visual arrestin.
    Biophys J. 2003 Aug;85(2):1186-95 PMID: 12885662
  35. Aspartic acid 564 in the third cytoplasmic loop of the luteinizing hormone/choriogonadotropin receptor is crucial for phosphorylation-independent interaction with arrestin2.
    J Biol Chem. 2002 May 17;277(20):17916-27 PMID: 11867621
  36. Visual arrestin interaction with rhodopsin. Sequential multisite binding ensures strict selectivity toward light-activated phosphorylated rhodopsin.
    J Biol Chem. 1993 Jun 5;268(16):11628-38 PMID: 8505295
  37. Conservation of the phosphate-sensitive elements in the arrestin family of proteins.
    J Biol Chem. 2002 Mar 15;277(11):9043-8 PMID: 11782458
  38. A new spin on protein dynamics.
    Trends Biochem Sci. 2002 Jun;27(6):288-95 PMID: 12069788
  39. Elucidation of inositol hexaphosphate and heparin interaction sites and conformational changes in arrestin-1 by solution nuclear magnetic resonance.
    Biochemistry. 2010 Dec 14;49(49):10473-85 PMID: 21050017
  40. Crystal structure of beta-arrestin at 1.9 A: possible mechanism of receptor binding and membrane Translocation.
    Structure. 2001 Sep;9(9):869-80 PMID: 11566136
  41. Arrestin interactions with G protein-coupled receptors. Direct binding studies of wild type and mutant arrestins with rhodopsin, beta 2-adrenergic, and m2 muscarinic cholinergic receptors.
    J Biol Chem. 1995 Jan 13;270(2):720-31 PMID: 7822302
  42. Phosphodiesterase activation by photoexcited rhodopsin is quenched when rhodopsin is phosphorylated and binds the intrinsic 48-kDa protein of rod outer segments.
    Proc Natl Acad Sci U S A. 1986 Mar;83(5):1174-8 PMID: 3006038
  43. A variant of yellow fluorescent protein with fast and efficient maturation for cell-biological applications.
    Nat Biotechnol. 2002 Jan;20(1):87-90 PMID: 11753368
  44. The role of phosphorylation in D1 dopamine receptor desensitization: evidence for a novel mechanism of arrestin association.
    J Biol Chem. 2004 Feb 27;279(9):7999-8010 PMID: 14660631
  45. Rhodopsin phosphorylation sites and their role in arrestin binding.
    J Biol Chem. 1997 Jun 6;272(23):14762-8 PMID: 9169442
  46. The nature of the arrestin x receptor complex determines the ultimate fate of the internalized receptor.
    J Biol Chem. 2003 Mar 28;278(13):11623-32 PMID: 12525498
  47. The structural basis of arrestin-mediated regulation of G-protein-coupled receptors.
    Pharmacol Ther. 2006 Jun;110(3):465-502 PMID: 16460808
  48. Visual arrestin binding to microtubules involves a distinct conformational change.
    J Biol Chem. 2006 Apr 7;281(14):9765-72 PMID: 16461350
  49. G protein-coupled receptor kinase-2 constitutively regulates D2 dopamine receptor expression and signaling independently of receptor phosphorylation.
    J Biol Chem. 2009 Dec 4;284(49):34103-15 PMID: 19815545
  50. Arrestin binding to the M(2) muscarinic acetylcholine receptor is precluded by an inhibitory element in the third intracellular loop of the receptor.
    J Biol Chem. 2000 Mar 31;275(13):9284-9 PMID: 10734068
  51. Transition of arrestin into the active receptor-binding state requires an extended interdomain hinge.
    J Biol Chem. 2002 Nov 15;277(46):43961-7 PMID: 12215448
  52. Recruitment of beta-arrestin2 to the dopamine D2 receptor: insights into anti-psychotic and anti-parkinsonian drug receptor signaling.
    Neuropharmacology. 2008 Jun;54(8):1215-22 PMID: 18455202
  53. Functional differences in the interaction of arrestin and its splice variant, p44, with rhodopsin.
    Biochemistry. 1997 Jul 29;36(30):9253-60 PMID: 9230059
  54. Insertional mutagenesis and immunochemical analysis of visual arrestin interaction with rhodopsin.
    J Biol Chem. 2002 Apr 5;277(14):11703-8 PMID: 11809770
  55. Identification of a short linear sequence present in the C-terminal tail of the rat follitropin receptor that modulates arrestin-3 binding in a phosphorylation-independent fashion.
    J Biol Chem. 2002 Jun 14;277(24):21939-46 PMID: 11934883
  56. Kinetics, binding constant, and activation energy of the 48-kDa protein-rhodopsin complex by extra-metarhodopsin II.
    Biochemistry. 1989 Feb 21;28(4):1770-5 PMID: 2719933
  57. Consensus guided mutagenesis of Renilla luciferase yields enhanced stability and light output.
    Protein Eng Des Sel. 2006 Sep;19(9):391-400 PMID: 16857694
  58. Structure of an arrestin2-clathrin complex reveals a novel clathrin binding domain that modulates receptor trafficking.
    J Biol Chem. 2009 Oct 23;284(43):29860-72 PMID: 19710023
  59. Monomeric rhodopsin is the minimal functional unit required for arrestin binding.
    J Mol Biol. 2010 Jun 11;399(3):501-11 PMID: 20417217
  60. Arrestin: mutagenesis, expression, purification, and functional characterization.
    Methods Enzymol. 2000;315:422-37 PMID: 10736718
  61. The selectivity of visual arrestin for light-activated phosphorhodopsin is controlled by multiple nonredundant mechanisms.
    J Biol Chem. 1998 Jun 19;273(25):15501-6 PMID: 9624137
  62. Third-party bioluminescence resonance energy transfer indicates constitutive association of membrane proteins: application to class a g-protein-coupled receptors and g-proteins.
    Biophys J. 2010 May 19;98(10):2391-9 PMID: 20483349
  63. The molecular acrobatics of arrestin activation.
    Trends Pharmacol Sci. 2004 Feb;25(2):105-11 PMID: 15102497
  64. The 2.8 A crystal structure of visual arrestin: a model for arrestin's regulation.
    Cell. 1999 Apr 16;97(2):257-69 PMID: 10219246
  65. Structure of the rhodopsin dimer: a working model for G-protein-coupled receptors.
    Curr Opin Struct Biol. 2006 Apr;16(2):252-9 PMID: 16567090
  66. Scaffolding functions of arrestin-2 revealed by crystal structure and mutagenesis.
    Biochemistry. 2002 Mar 12;41(10):3321-8 PMID: 11876640
  67. Cone arrestin binding to JNK3 and Mdm2: conformational preference and localization of interaction sites.
    J Neurochem. 2007 Nov;103(3):1053-62 PMID: 17680991
  68. Crystal structure of arrestin-3 reveals the basis of the difference in receptor binding between two non-visual subtypes.
    J Mol Biol. 2011 Feb 25;406(3):467-78 PMID: 21215759
  69. Beta-arrestins and cell signaling.
    Annu Rev Physiol. 2007;69:483-510 PMID: 17305471
  70. Arrestin mobilizes signaling proteins to the cytoskeleton and redirects their activity.
    J Mol Biol. 2007 Apr 27;368(2):375-87 PMID: 17359998
  71. Arrestin2 and arrestin3 are differentially expressed in the rat brain during postnatal development.
    Neuroscience. 2002;109(3):421-36 PMID: 11823056
  72. Ligand-induced internalization and recycling of the human neuropeptide Y2 receptor is regulated by its carboxyl-terminal tail.
    J Biol Chem. 2010 Dec 31;285(53):41578-90 PMID: 20959467
  73. Regulation of arrestin binding by rhodopsin phosphorylation level.
    J Biol Chem. 2007 Nov 2;282(44):32075-83 PMID: 17848565
  74. Mechanism of quenching of phototransduction. Binding competition between arrestin and transducin for phosphorhodopsin.
    J Biol Chem. 1997 Jul 18;272(29):18125-31 PMID: 9218446
  75. Mutant G-protein-coupled receptors as a cause of human diseases.
    Pharmacol Ther. 2004 Dec;104(3):173-206 PMID: 15556674
  76. Differential roles of arrestin-2 interaction with clathrin and adaptor protein 2 in G protein-coupled receptor trafficking.
    J Biol Chem. 2002 Aug 23;277(34):30760-8 PMID: 12070169
  77. Cloning and functional characterization of salamander rod and cone arrestins.
    Invest Ophthalmol Vis Sci. 2000 Aug;41(9):2445-55 PMID: 10937552
  78. A phosphorylation-regulated brake mechanism controls the initial endocytosis of opioid receptors but is not required for post-endocytic sorting to lysosomes.
    J Biol Chem. 2001 Sep 7;276(36):34331-8 PMID: 11443128
  79. Primary and secondary structure of bovine retinal S antigen (48-kDa protein).
    Proc Natl Acad Sci U S A. 1987 Oct;84(20):6975-9 PMID: 3478675
  80. Agonist-receptor-arrestin, an alternative ternary complex with high agonist affinity.
    J Biol Chem. 1997 Nov 14;272(46):28849-52 PMID: 9360951
  81. Recent advances in site-directed spin labeling of proteins.
    Curr Opin Struct Biol. 1998 Oct;8(5):649-56 PMID: 9818271
  82. Opposing effects of inositol hexakisphosphate on rod arrestin and arrestin2 self-association.
    Biochemistry. 2008 Jan 22;47(3):1070-5 PMID: 18161994
  83. Differential interaction of spin-labeled arrestin with inactive and active phosphorhodopsin.
    Proc Natl Acad Sci U S A. 2006 Mar 28;103(13):4900-5 PMID: 16547131
  84. Mapping of the docking of SecA onto the chaperone SecB by site-directed spin labeling: insight into the mechanism of ligand transfer during protein export.
    J Mol Biol. 2005 Oct 21;353(2):295-307 PMID: 16169560
  85. Monomeric rhodopsin is sufficient for normal rhodopsin kinase (GRK1) phosphorylation and arrestin-1 binding.
    J Biol Chem. 2011 Jan 14;286(2):1420-8 PMID: 20966068
  86. A beta-arrestin/green fluorescent protein biosensor for detecting G protein-coupled receptor activation.
    J Biol Chem. 1997 Oct 31;272(44):27497-500 PMID: 9346876
  87. Cell-free expression of visual arrestin. Truncation mutagenesis identifies multiple domains involved in rhodopsin interaction.
    J Biol Chem. 1992 Oct 25;267(30):21919-23 PMID: 1400502
  88. Conformational states and dynamics of rhodopsin in micelles and bilayers.
    Biochemistry. 2006 May 2;45(17):5538-50 PMID: 16634635
  89. A model for the solution structure of the rod arrestin tetramer.
    Structure. 2008 Jun;16(6):924-34 PMID: 18547524
  90. Visual arrestin binding to rhodopsin. Diverse functional roles of positively charged residues within the phosphorylation-recognition region of arrestin.
    J Biol Chem. 1995 Mar 17;270(11):6010-6 PMID: 7890732
  91. Arrestin translocation is stoichiometric to rhodopsin isomerization and accelerated by phototransduction in Drosophila photoreceptors.
    Neuron. 2010 Sep 23;67(6):997-1008 PMID: 20869596
  92. An additional phosphate-binding element in arrestin molecule. Implications for the mechanism of arrestin activation.
    J Biol Chem. 2000 Dec 29;275(52):41049-57 PMID: 11024026
Article Info
Journal
The Journal of biological chemistry
Abbr.
J Biol Chem
ISSN
1083-351X
Published
2011-07-08
Epub
2011-00-06
Pages
24288-99
Language
English
Region
United States
NLM ID
2985121R
PMCID
PMC3129209
Subset
IM
Grants
NIGMS NIH HHS · R01 GM077561 · United States
NIGMS NIH HHS · R01 GM081756 · United States
NEI NIH HHS · P30 EY000331 · United States
NEI NIH HHS · R01 EY005216 · United States
NIGMS NIH HHS · GM070642 · United States
NIGMS NIH HHS · GM077561 · United States
NEI NIH HHS · EY005216 · United States
NEI NIH HHS · R37 EY005216 · United States
NIGMS NIH HHS · GM081756 · United States
NIGMS NIH HHS · R56 GM070642 · United States
NEI NIH HHS · EY011500 · United States
NIGMS NIH HHS · R01 GM070642 · United States
NEI NIH HHS · R01 EY011500 · United States
NEI NIH HHS · P30 EY000331-45 · United States
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