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PMID: 15306683 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Structural origins of constitutive activation in rhodopsin: Role of the K296/E113 salt bridge.

Kim JM, Altenbach C, Kono M, Oprian DD, Hubbell WL, Khorana HG

Abstract

The intramolecular interactions that stabilize the inactive conformation of rhodopsin are of primary importance in elucidating the mechanism of activation of this and other G protein-coupled receptors. In the present study, site-directed spin labeling is used to explore the role of a buried salt bridge between the protonated Schiff base at K296 in TM7 and its counterion at E113 in TM3. Spin-label sensors are placed at positions in the cytoplasmic surface of rhodopsin to monitor changes in the structure of the helix bundle caused by point mutations that disrupt the salt bridge. The single point mutations E113Q, G90D, and A292E, which were previously reported to cause constitutive activation of the apoprotein opsin, are found to cause profound movements of both TM3 and TM6 in the dark state, the latter of which is similar to that caused by light activation. The mutant M257Y, which constitutively activates opsin but does not disrupt the salt bridge, is shown to cause related but distinguishable structural changes. The double mutants E113Q/M257Y and G90D/M257Y produce strong activation of the receptor in the dark state. In the E113Q/M257Y mutant investigated with spin labeling, the movement of TM6 and other changes are exaggerated relative to either E113Q or M257Y alone. Collectively, the results provide structural evidence that the salt bridge is a key constraint maintaining the resting state of the receptor, and that the disruption of the salt bridge is the cause, rather than a consequence, of the TM6 motion that occurs upon activation.

MeSH Terms
Animals Electron Spin Resonance Spectroscopy Light Models, Molecular Molecular Structure Point Mutation Protein Structure, Tertiary Rhodopsin/chemistry,genetics,metabolism Spin Labels Transducin/isolation & purification,metabolism
Chemicals
Spin Labels Rhodopsin Transducin
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Kim Jong-Myoung
Departments of Biology and Chemistry, Massachusetts Institute of Technology, Cambridge, MA 02139.
Altenbach Christian
Kono Masahiro
Oprian Daniel D
Hubbell Wayne L
Khorana H Gobind
References (34)
34 references, click to expand
  1. Crystal structure of rhodopsin: A G protein-coupled receptor.
    Science. 2000 Aug 4;289(5480):739-45 PMID: 10926528
  2. Probing the dark state tertiary structure in the cytoplasmic domain of rhodopsin: proximities between amino acids deduced from spontaneous disulfide bond formation between cysteine pairs engineered in cytoplasmic loops 1, 3, and 4.
    Biochemistry. 2001 Oct 23;40(42):12479-85 PMID: 11601971
  3. Advances in determination of a high-resolution three-dimensional structure of rhodopsin, a model of G-protein-coupled receptors (GPCRs).
    Biochemistry. 2001 Jul 3;40(26):7761-72 PMID: 11425302
  4. Functional role of internal water molecules in rhodopsin revealed by X-ray crystallography.
    Proc Natl Acad Sci U S A. 2002 Apr 30;99(9):5982-7 PMID: 11972040
  5. Rhodopsin structure, dynamics, and activation: a perspective from crystallography, site-directed spin labeling, sulfhydryl reactivity, and disulfide cross-linking.
    Adv Protein Chem. 2003;63:243-90 PMID: 12629973
  6. Opsin activation as a cause of congenital night blindness.
    Nat Neurosci. 2003 Jul;6(7):731-5 PMID: 12778053
  7. Complex formation between metarhodopsin II and GTP-binding protein in bovine photoreceptor membranes leads to a shift of the photoproduct equilibrium.
    FEBS Lett. 1982 Jun 21;143(1):29-34 PMID: 6288450
  8. Expression of a synthetic bovine rhodopsin gene in monkey kidney cells.
    Proc Natl Acad Sci U S A. 1987 Dec;84(24):8874-8 PMID: 2962193
  9. Glutamic acid-113 serves as the retinylidene Schiff base counterion in bovine rhodopsin.
    Proc Natl Acad Sci U S A. 1989 Nov;86(21):8309-13 PMID: 2573063
  10. Effect of carboxylic acid side chains on the absorption maximum of visual pigments.
    Science. 1989 Nov 17;246(4932):928-30 PMID: 2573154
  11. Determinants of visual pigment absorbance: role of charged amino acids in the putative transmembrane segments.
    Biochemistry. 1990 Jan 30;29(4):937-42 PMID: 2111169
  12. Autosomal dominant retinitis pigmentosa: four new mutations in rhodopsin, one of them in the retinal attachment site.
    Genomics. 1991 Sep;11(1):199-205 PMID: 1765377
  13. Constitutively active mutants of rhodopsin.
    Neuron. 1992 Oct;9(4):719-25 PMID: 1356370
  14. Mechanism of activation and inactivation of opsin: role of Glu113 and Lys296.
    Biochemistry. 1992 Dec 22;31(50):12592-601 PMID: 1472495
  15. Constitutive activation of opsin: influence of charge at position 134 and size at position 296.
    Biochemistry. 1993 Jun 15;32(23):6111-5 PMID: 8099498
  16. Regulation of the rhodopsin-transducin interaction by a highly conserved carboxylic acid group.
    Biochemistry. 1993 Jul 20;32(28):7229-36 PMID: 8343512
  17. Heterozygous missense mutation in the rhodopsin gene as a cause of congenital stationary night blindness.
    Nat Genet. 1993 Jul;4(3):280-3 PMID: 8358437
  18. Formation of the meta II photointermediate is accompanied by conformational changes in the cytoplasmic surface of rhodopsin.
    Biochemistry. 1993 Nov 16;32(45):12025-32 PMID: 8218279
  19. Rhodopsin mutation G90D and a molecular mechanism for congenital night blindness.
    Nature. 1994 Feb 17;367(6464):639-42 PMID: 8107847
  20. Active site-directed inactivation of constitutively active mutants of rhodopsin.
    J Biol Chem. 1994 Mar 4;269(9):6524-7 PMID: 8120004
  21. Mapping light-dependent structural changes in the cytoplasmic loop connecting helices C and D in rhodopsin: a site-directed spin labeling study.
    Biochemistry. 1995 Jul 11;34(27):8812-9 PMID: 7612622
  22. Low resolution structure of bovine rhodopsin determined by electron cryo-microscopy.
    Biophys J. 1995 May;68(5):1776-86 PMID: 7612819
  23. Characterization of the mutant visual pigment responsible for congenital night blindness: a biochemical and Fourier-transform infrared spectroscopy study.
    Biochemistry. 1996 Jun 11;35(23):7536-45 PMID: 8652533
  24. Activating mutations of rhodopsin and other G protein-coupled receptors.
    Annu Rev Biophys Biomol Struct. 1996;25:287-314 PMID: 8800472
  25. Rhodopsin activation blocked by metal-ion-binding sites linking transmembrane helices C and F.
    Nature. 1996 Sep 26;383(6598):347-50 PMID: 8848049
  26. Modulation of GDP release from transducin by the conserved Glu134-Arg135 sequence in rhodopsin.
    J Biol Chem. 1996 Oct 11;271(41):25406-11 PMID: 8810308
  27. Structure and function in rhodopsin. Single cysteine substitution mutants in the cytoplasmic interhelical E-F loop region show position-specific effects in transducin activation.
    Biochemistry. 1996 Sep 24;35(38):12464-9 PMID: 8823181
  28. Structural features and light-dependent changes in the cytoplasmic interhelical E-F loop region of rhodopsin: a site-directed spin-labeling study.
    Biochemistry. 1996 Sep 24;35(38):12470-8 PMID: 8823182
  29. Watching proteins move using site-directed spin labeling.
    Structure. 1996 Jul 15;4(7):779-83 PMID: 8805569
  30. Structure and function in rhodopsin: rhodopsin mutants with a neutral amino acid at E134 have a partially activated conformation in the dark state.
    Proc Natl Acad Sci U S A. 1997 Dec 23;94(26):14273-8 PMID: 9405602
  31. Constitutive activation of opsin by mutation of methionine 257 on transmembrane helix 6.
    Biochemistry. 1998 Jun 2;37(22):8253-61 PMID: 9609722
  32. Recent advances in site-directed spin labeling of proteins.
    Curr Opin Struct Biol. 1998 Oct;8(5):649-56 PMID: 9818271
  33. TAUTOMERIC FORMS OF METARHODOPSIN.
    J Gen Physiol. 1963 Nov;47:215-40 PMID: 14080814
  34. Identifying conformational changes with site-directed spin labeling.
    Nat Struct Biol. 2000 Sep;7(9):735-9 PMID: 10966640
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
2004-08-24
Epub
2004-00-11
Pages
12508-13
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC515088
Subset
IM
Grants
NEI NIH HHS · R01 EY007965 · United States
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