Home LiteratureArticle Details
PMID: 21818392 Published · ppublish English Journal Article Research Support, N.I.H., Extramural

Progressive reduction of its expression in rods reveals two pools of arrestin-1 in the outer segment with different roles in photoresponse recovery.

PloS one ·Vol. 6 ·No. 7 ·2011-00-00 ·Pages e22797

Cleghorn WM, Tsakem EL, Song X, Vishnivetskiy SA, Seo J, Chen J, Gurevich EV, Gurevich VV

Abstract

Light-induced rhodopsin signaling is turned off with sub-second kinetics by rhodopsin phosphorylation followed by arrestin-1 binding. To test the availability of the arrestin-1 pool in dark-adapted outer segment (OS) for rhodopsin shutoff, we measured photoresponse recovery rates of mice with arrestin-1 content in the OS of 2.5%, 5%, 60%, and 100% of wild type (WT) level by two-flash ERG with the first (desensitizing) flash at 160, 400, 1000, and 2500 photons/rod. The time of half recovery (t(half)) in WT retinas increases with the intensity of the initial flash, becoming ∼2.5-fold longer upon activation of 2500 than after 160 rhodopsins/rod. Mice with 60% and even 5% of WT arrestin-1 level recovered at WT rates. In contrast, the mice with 2.5% of WT arrestin-1 had a dramatically slower recovery than the other three lines, with the t(half) increasing ∼28 fold between 160 and 2500 rhodopsins/rod. Even after the dimmest flash, the rate of recovery of rods with 2.5% of normal arrestin-1 was two times slower than in other lines, indicating that arrestin-1 level in the OS between 100% and 5% of WT is sufficient for rapid recovery, whereas with lower arrestin-1 the rate of recovery dramatically decreases with increased light intensity. Thus, the OS has two distinct pools of arrestin-1: cytoplasmic and a separate pool comprising ∼2.5% that is not immediately available for rhodopsin quenching. The observed delay suggests that this pool is localized at the periphery, so that its diffusion across the OS rate-limits the recovery. The line with very low arrestin-1 expression is the first where rhodopsin inactivation was made rate-limiting by arrestin manipulation.

MeSH Terms
Animals Arrestin/metabolism Light Light Signal Transduction/radiation effects Mice Rod Cell Outer Segment/metabolism,radiation effects Time Factors
Chemicals
Arrestin
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Cleghorn Whitney M
Department of Pharmacology, Vanderbilt University, Nashville, Tennessee, United States of America.
Tsakem Elviche L
Song Xiufeng
Vishnivetskiy Sergey A
Seo Jungwon
Chen Jeannie
Gurevich Eugenia V
Gurevich Vsevolod V
References (67)
67 references, click to expand
  1. 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
  2. Arrestin-1 expression level in rods: balancing functional performance and photoreceptor health.
    Neuroscience. 2011 Feb 3;174:37-49 PMID: 21075174
  3. Photoresponses of human rods in vivo derived from paired-flash electroretinograms.
    Vis Neurosci. 1997 Jan-Feb;14(1):73-82 PMID: 9057270
  4. Rapid and reproducible deactivation of rhodopsin requires multiple phosphorylation sites.
    Neuron. 2000 Oct;28(1):153-64 PMID: 11086991
  5. Light-stimulated protein movement in rod photoreceptor cells of the rat retina.
    FEBS Lett. 1987 Dec 10;225(1-2):127-32 PMID: 2826235
  6. Background light produces a recoverin-dependent modulation of activated-rhodopsin lifetime in mouse rods.
    J Neurosci. 2010 Jan 27;30(4):1213-20 PMID: 20107049
  7. Response linearity and kinetics of the cat retina: the bipolar cell component of the dark-adapted electroretinogram.
    Vis Neurosci. 1995 Sep-Oct;12(5):837-50 PMID: 8924408
  8. Direct binding of visual arrestin to microtubules determines the differential subcellular localization of its splice variants in rod photoreceptors.
    J Biol Chem. 2004 Sep 24;279(39):41240-8 PMID: 15272005
  9. Arrestin competition influences the kinetics and variability of the single-photon responses of mammalian rod photoreceptors.
    J Neurosci. 2009 Sep 23;29(38):11867-79 PMID: 19776273
  10. Robust self-association is a common feature of mammalian visual arrestin-1.
    Biochemistry. 2011 Mar 29;50(12):2235-42 PMID: 21288033
  11. Visual arrestin activity may be regulated by self-association.
    J Biol Chem. 1999 Jul 23;274(30):21186-90 PMID: 10409673
  12. Enhanced arrestin facilitates recovery and protects rods lacking rhodopsin phosphorylation.
    Curr Biol. 2009 Apr 28;19(8):700-5 PMID: 19361994
  13. Visual Arrestin 1 acts as a modulator for N-ethylmaleimide-sensitive factor in the photoreceptor synapse.
    J Neurosci. 2010 Jul 14;30(28):9381-91 PMID: 20631167
  14. Arrestin binding to calmodulin: a direct interaction between two ubiquitous signaling proteins.
    J Mol Biol. 2006 Dec 15;364(5):955-63 PMID: 17054984
  15. Ultrastructural analysis of arrestin distribution in mouse photoreceptors during dark/light cycle.
    Exp Eye Res. 1993 Sep;57(3):307-18 PMID: 8224018
  16. Light-dependent delay in the falling phase of the retinal rod photoresponse.
    Vis Neurosci. 1992 Jan;8(1):9-18 PMID: 1739680
  17. Structure and function of the visual arrestin oligomer.
    EMBO J. 2007 Mar 21;26(6):1726-36 PMID: 17332750
  18. Functionally rodless mice: transgenic models for the investigation of cone function in retinal disease and therapy.
    Vision Res. 2002 Feb;42(4):401-15 PMID: 11853756
  19. Piecing together the timetable for visual transduction with transgenic animals.
    Curr Opin Neurobiol. 2003 Aug;13(4):404-12 PMID: 12965286
  20. Cytoskeleton participation in subcellular trafficking of signal transduction proteins in rod photoreceptor cells.
    J Neurosci Res. 2002 Feb 1;67(3):290-7 PMID: 11813233
  21. Sensitivity and kinetics of mouse rod flash responses determined in vivo from paired-flash electroretinograms.
    J Physiol. 1999 Apr 15;516 ( Pt 2):593-609 PMID: 10087356
  22. Few residues within an extensive binding interface drive receptor interaction and determine the specificity of arrestin proteins.
    J Biol Chem. 2011 Jul 8;286(27):24288-99 PMID: 21471193
  23. Each rhodopsin molecule binds its own arrestin.
    Proc Natl Acad Sci U S A. 2007 Feb 27;104(9):3125-8 PMID: 17360618
  24. The role of arrestin alpha-helix I in receptor binding.
    J Mol Biol. 2010 Jan 8;395(1):42-54 PMID: 19883657
  25. 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
  26. Mouse cones require an arrestin for normal inactivation of phototransduction.
    Neuron. 2008 Aug 14;59(3):462-74 PMID: 18701071
  27. 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
  28. Interaction of arrestin with enolase1 in photoreceptors.
    Invest Ophthalmol Vis Sci. 2011 Mar 29;52(3):1832-40 PMID: 21051714
  29. Concentration-dependent tetramerization of bovine visual arrestin.
    Biophys J. 2003 Aug;85(2):1186-95 PMID: 12885662
  30. Overexpression of rhodopsin alters the structure and photoresponse of rod photoreceptors.
    Biophys J. 2009 Feb;96(3):939-50 PMID: 19186132
  31. Kinetics of rhodopsin deactivation and its role in regulating recovery and reproducibility of rod photoresponse.
    PLoS Comput Biol. 2010 Dec 16;6(12):e1001031 PMID: 21200415
  32. 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
  33. Light-dependent translocation of arrestin in rod photoreceptors is signaled through a phospholipase C cascade and requires ATP.
    Cell Signal. 2010 Mar;22(3):447-56 PMID: 19887106
  34. Microtubules in a rod-specific cytoskeleton associated with outer segment incisures.
    Vis Neurosci. 2000 Sep-Oct;17(5):711-22 PMID: 11153651
  35. S-antigen in rods and cones of the primate retina: different labeling patterns are revealed with antibodies directed against specific domains in the molecule.
    J Histochem Cytochem. 1992 Mar;40(3):343-52 PMID: 1372630
  36. Membrane protein diffusion sets the speed of rod phototransduction.
    Nature. 2001 May 3;411(6833):90-4 PMID: 11333983
  37. How vision begins: an odyssey.
    Proc Natl Acad Sci U S A. 2008 Jul 22;105(29):9855-62 PMID: 18632568
  38. 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
  39. Light induced shift and binding of S-antigen in retinal rods.
    Curr Eye Res. 1985 May;4(5):613-8 PMID: 2410196
  40. Recovery phase of the murine rod photoresponse reconstructed from electroretinographic recordings.
    J Neurosci. 1996 Jan 15;16(2):563-71 PMID: 8551340
  41. Visual arrestin binding to microtubules involves a distinct conformational change.
    J Biol Chem. 2006 Apr 7;281(14):9765-72 PMID: 16461350
  42. Prolonged photoresponses in transgenic mouse rods lacking arrestin.
    Nature. 1997 Oct 2;389(6650):505-9 PMID: 9333241
  43. Abnormal activation and inactivation mechanisms of rod transduction in patients with autosomal dominant retinitis pigmentosa and the pro-23-his mutation.
    Invest Ophthalmol Vis Sci. 1995 Jul;36(8):1603-14 PMID: 7601641
  44. Duration and amplitude of the light-induced cGMP hydrolysis in vertebrate photoreceptors are regulated by multiple phosphorylation of rhodopsin and by arrestin binding.
    Biochemistry. 1995 Jan 31;34(4):1446-54 PMID: 7827093
  45. From candelas to photoisomerizations in the mouse eye by rhodopsin bleaching in situ and the light-rearing dependence of the major components of the mouse ERG.
    Vision Res. 2004 Dec;44(28):3235-51 PMID: 15535992
  46. Arrestin translocation is induced at a critical threshold of visual signaling and is superstoichiometric to bleached rhodopsin.
    J Neurosci. 2006 Jan 25;26(4):1146-53 PMID: 16436601
  47. Monomeric rhodopsin is the minimal functional unit required for arrestin binding.
    J Mol Biol. 2010 Jun 11;399(3):501-11 PMID: 20417217
  48. Photoreceptor and bipolar cell contributions to the cat electroretinogram: a kinetic model for the early part of the flash response.
    J Opt Soc Am A Opt Image Sci Vis. 1996 Mar;13(3):613-22 PMID: 8627418
  49. Quantification of the cytoplasmic spaces of living cells with EGFP reveals arrestin-EGFP to be in disequilibrium in dark adapted rod photoreceptors.
    J Cell Sci. 2004 Jun 15;117(Pt 14):3049-59 PMID: 15197244
  50. Abnormal photoresponses and light-induced apoptosis in rods lacking rhodopsin kinase.
    Proc Natl Acad Sci U S A. 1999 Mar 30;96(7):3718-22 PMID: 10097103
  51. Arrestin mobilizes signaling proteins to the cytoskeleton and redirects their activity.
    J Mol Biol. 2007 Apr 27;368(2):375-87 PMID: 17359998
  52. Regulation of arrestin binding by rhodopsin phosphorylation level.
    J Biol Chem. 2007 Nov 2;282(44):32075-83 PMID: 17848565
  53. 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
  54. Ubiquitin ligase parkin promotes Mdm2-arrestin interaction but inhibits arrestin ubiquitination.
    Biochemistry. 2011 May 10;50(18):3749-63 PMID: 21466165
  55. Dynamics of mouse rod phototransduction and its sensitivity to variation of key parameters.
    IET Syst Biol. 2010 Jan;4(1):12-32 PMID: 20001089
  56. Temporal kinetics of the light/dark translocation and compartmentation of arrestin and alpha-transducin in mouse photoreceptor cells.
    Mol Vis. 2004 Sep 15;10:672-81 PMID: 15467522
  57. Mechanism of light-induced translocation of arrestin and transducin in photoreceptors: interaction-restricted diffusion.
    IUBMB Life. 2008 Jan;60(1):2-9 PMID: 18379987
  58. 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
  59. RGS9 concentration matters in rod phototransduction.
    Biophys J. 2009 Sep 16;97(6):1538-47 PMID: 19751658
  60. Mechanisms of rhodopsin inactivation in vivo as revealed by a COOH-terminal truncation mutant.
    Science. 1995 Jan 20;267(5196):374-7 PMID: 7824934
  61. 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
  62. Control of rhodopsin's active lifetime by arrestin-1 expression in mammalian rods.
    J Neurosci. 2010 Mar 3;30(9):3450-7 PMID: 20203204
  63. RGS expression rate-limits recovery of rod photoresponses.
    Neuron. 2006 Aug 17;51(4):409-16 PMID: 16908407
  64. Light-dependent redistribution of arrestin in vertebrate rods is an energy-independent process governed by protein-protein interactions.
    Neuron. 2005 May 19;46(4):555-67 PMID: 15944125
  65. Lessons from photoreceptors: turning off g-protein signaling in living cells.
    Physiology (Bethesda). 2010 Apr;25(2):72-84 PMID: 20430952
  66. A model for the solution structure of the rod arrestin tetramer.
    Structure. 2008 Jun;16(6):924-34 PMID: 18547524
  67. 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
Article Info
Journal
PloS one
Abbr.
PLoS One
ISSN
1932-6203
Published
2011-00-00
Epub
2011-00-26
Pages
e22797
Language
English
Region
United States
NLM ID
101285081
PMCID
PMC3144249
Subset
IM
Grants
NIGMS NIH HHS · GM081756 · United States
NIGMS NIH HHS · R01 GM077561 · United States
NIGMS NIH HHS · R01 GM081756 · United States
NINDS NIH HHS · NS065868 · United States
NEI NIH HHS · EY011500 · United States
NEI NIH HHS · EY012155 · United States
NEI NIH HHS · P30 EY008126 · United States
NINDS NIH HHS · NS045117 · United States
NIGMS NIH HHS · GM077561 · United States
NINDS NIH HHS · R01 NS045117 · United States
NEI NIH HHS · R01 EY011500 · United States
NINDS NIH HHS · R01 NS065868 · United States
NEI NIH HHS · T32 EY007135 · United States
NEI NIH HHS · T32 EY07135 · United States
NEI NIH HHS · R01 EY012155 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com