BIOMARKERS

Molecular Biopsy of Human Tumors

- a resource for Precision Medicine *

172 related articles for article (PubMed ID: 12686556)

  • 1. Impact of N-terminal myristoylation on the Ca2+-dependent conformational transition in recoverin.
    Weiergräber OH; Senin II; Philippov PP; Granzin J; Koch KW
    J Biol Chem; 2003 Jun; 278(25):22972-9. PubMed ID: 12686556
    [TBL] [Abstract][Full Text] [Related]  

  • 2. Structure and calcium-binding studies of a recoverin mutant (E85Q) in an allosteric intermediate state.
    Ames JB; Hamasaki N; Molchanova T
    Biochemistry; 2002 May; 41(18):5776-87. PubMed ID: 11980481
    [TBL] [Abstract][Full Text] [Related]  

  • 3. Ca2+-myristoyl switch in the neuronal calcium sensor recoverin requires different functions of Ca2+-binding sites.
    Senin II; Fischer T; Komolov KE; Zinchenko DV; Philippov PP; Koch KW
    J Biol Chem; 2002 Dec; 277(52):50365-72. PubMed ID: 12393897
    [TBL] [Abstract][Full Text] [Related]  

  • 4. Functional restoration of the Ca2+-myristoyl switch in a recoverin mutant.
    Senin II; Vaganova SA; Weiergräber OH; Ergorov NS; Philippov PP; Koch KW
    J Mol Biol; 2003 Jul; 330(2):409-18. PubMed ID: 12823978
    [TBL] [Abstract][Full Text] [Related]  

  • 5. Core mutations that promote the calcium-induced allosteric transition of bovine recoverin.
    Baldwin AN; Ames JB
    Biochemistry; 1998 Dec; 37(50):17408-19. PubMed ID: 9860856
    [TBL] [Abstract][Full Text] [Related]  

  • 6. Amino-terminal myristoylation induces cooperative calcium binding to recoverin.
    Ames JB; Porumb T; Tanaka T; Ikura M; Stryer L
    J Biol Chem; 1995 Mar; 270(9):4526-33. PubMed ID: 7876221
    [TBL] [Abstract][Full Text] [Related]  

  • 7. N-myristoylation of recoverin enhances its efficiency as an inhibitor of rhodopsin kinase.
    Senin II; Zargarov AA; Alekseev AM; Gorodovikova EN; Lipkin VM; Philippov PP
    FEBS Lett; 1995 Nov; 376(1-2):87-90. PubMed ID: 8521974
    [TBL] [Abstract][Full Text] [Related]  

  • 8. Recoverin is a zinc-binding protein.
    Permyakov SE; Cherskaya AM; Wasserman LA; Khokhlova TI; Senin II; Zargarov AA; Zinchenko DV; Zernii EY; Lipkin VM; Philippov PP; Uversky VN; Permyakov EA
    J Proteome Res; 2003; 2(1):51-7. PubMed ID: 12643543
    [TBL] [Abstract][Full Text] [Related]  

  • 9. Obtaining and characterization of EF-hand mutants of recoverin.
    Alekseev AM; Shulga-Morskoy SV; Zinchenko DV; Shulga-Morskaya SA; Suchkov DV; Vaganova SA; Senin II; Zargarov AA; Lipkin VM; Akhtar M; Philippov PP
    FEBS Lett; 1998 Nov; 440(1-2):116-8. PubMed ID: 9862438
    [TBL] [Abstract][Full Text] [Related]  

  • 10. The role of calcium-binding sites in S-modulin function.
    Matsuda S; Hisatomi O; Ishino T; Kobayashi Y; Tokunaga F
    J Biol Chem; 1998 Aug; 273(32):20223-7. PubMed ID: 9685370
    [TBL] [Abstract][Full Text] [Related]  

  • 11. Rhodopsin kinase inhibition by recoverin. Function of recoverin myristoylation.
    Calvert PD; Klenchin VA; Bownds MD
    J Biol Chem; 1995 Oct; 270(41):24127-9. PubMed ID: 7592614
    [TBL] [Abstract][Full Text] [Related]  

  • 12. Autophosphorylation and ADP regulate the Ca2+-dependent interaction of recoverin with rhodopsin kinase.
    Satpaev DK; Chen CK; Scotti A; Simon MI; Hurley JB; Slepak VZ
    Biochemistry; 1998 Jul; 37(28):10256-62. PubMed ID: 9665733
    [TBL] [Abstract][Full Text] [Related]  

  • 13. Calcium-myristoyl protein switch.
    Zozulya S; Stryer L
    Proc Natl Acad Sci U S A; 1992 Dec; 89(23):11569-73. PubMed ID: 1454850
    [TBL] [Abstract][Full Text] [Related]  

  • 14. One of the Ca2+ binding sites of recoverin exclusively controls interaction with rhodopsin kinase.
    Komolov KE; Zinchenko DV; Churumova VA; Vaganova SA; Weiergräber OH; Senin II; Philippov PP; Koch KW
    Biol Chem; 2005 Mar; 386(3):285-9. PubMed ID: 15843174
    [TBL] [Abstract][Full Text] [Related]  

  • 15. Secondary structure of myristoylated recoverin determined by three-dimensional heteronuclear NMR: implications for the calcium-myristoyl switch.
    Ames JB; Tanaka T; Stryer L; Ikura M
    Biochemistry; 1994 Sep; 33(35):10743-53. PubMed ID: 8075075
    [TBL] [Abstract][Full Text] [Related]  

  • 16. Structure and membrane-targeting mechanism of retinal Ca2+-binding proteins, recoverin and GCAP-2.
    Ames JB; Ikura M
    Adv Exp Med Biol; 2002; 514():333-48. PubMed ID: 12596931
    [TBL] [Abstract][Full Text] [Related]  

  • 17. Recoverin alters its surface properties depending on both calcium-binding and N-terminal myristoylation.
    Kataoka M; Mihara K; Tokunaga F
    J Biochem; 1993 Oct; 114(4):535-40. PubMed ID: 8276764
    [TBL] [Abstract][Full Text] [Related]  

  • 18. How can Ca2+ selectively activate recoverin in the presence of Mg2+? Surface plasmon resonance and FT-IR spectroscopic studies.
    Ozawa T; Fukuda M; Nara M; Nakamura A; Komine Y; Kohama K; Umezawa Y
    Biochemistry; 2000 Nov; 39(47):14495-503. PubMed ID: 11087403
    [TBL] [Abstract][Full Text] [Related]  

  • 19. Fission yeast homolog of neuronal calcium sensor-1 (Ncs1p) regulates sporulation and confers calcium tolerance.
    Hamasaki-Katagiri N; Molchanova T; Takeda K; Ames JB
    J Biol Chem; 2004 Mar; 279(13):12744-54. PubMed ID: 14722091
    [TBL] [Abstract][Full Text] [Related]  

  • 20. Calcium-dependent solvation of the myristoyl group of recoverin.
    Hughes RE; Brzovic PS; Klevit RE; Hurley JB
    Biochemistry; 1995 Sep; 34(36):11410-6. PubMed ID: 7547868
    [TBL] [Abstract][Full Text] [Related]  

    [Next]    [New Search]
    of 9.