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PUBMED FOR HANDHELDS

Journal Abstract Search


342 related items for PubMed ID: 22260056

  • 41. Conformation preserved in a weak-to-strong or strong-to-weak [PSI+] conversion during transmission to Sup35 prion variants.
    Crist CG, Kurahashi H, Nakayashiki T, Nakamura Y.
    Biochimie; 2006 May; 88(5):485-96. PubMed ID: 16364534
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  • 44. Blessings in disguise: biological benefits of prion-like mechanisms.
    Newby GA, Lindquist S.
    Trends Cell Biol; 2013 Jun; 23(6):251-9. PubMed ID: 23485338
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  • 49. Amyloid formation characteristics of GNNQQNY from yeast prion protein Sup35 and its seeding with heterogeneous polypeptides.
    Haratake M, Takiguchi T, Masuda N, Yoshida S, Fuchigami T, Nakayama M.
    Colloids Surf B Biointerfaces; 2017 Jan 01; 149():72-79. PubMed ID: 27736724
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  • 52. Mechanism of inhibition of Psi+ prion determinant propagation by a mutation of the N-terminus of the yeast Sup35 protein.
    Kochneva-Pervukhova NV, Paushkin SV, Kushnirov VV, Cox BS, Tuite MF, Ter-Avanesyan MD.
    EMBO J; 1998 Oct 01; 17(19):5805-10. PubMed ID: 9755180
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  • 54. Sup35p yeast prion-like protein as an adapter for production of the Gag-p55 antigen of HIV-1 and the L-chain of botulinum neurotoxin in Saccharomyces cerevisiae.
    Ivanov PA, Lewitin EI, Shevelev BI, Fominov GV, Wojciechowska JA, Asadi Mobarhan AH, Vertie YV, Yankovsky NK, Shevelev AB.
    Res Microbiol; 2001 Oct 01; 152(1):27-35. PubMed ID: 11281322
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  • 55. Ion-specific effects on prion nucleation and strain formation.
    Rubin J, Khosravi H, Bruce KL, Lydon ME, Behrens SH, Chernoff YO, Bommarius AS.
    J Biol Chem; 2013 Oct 18; 288(42):30300-30308. PubMed ID: 23990463
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  • 56. A role for the proteasome in the turnover of Sup35p and in [PSI(+) ] prion propagation.
    Kabani M, Redeker V, Melki R.
    Mol Microbiol; 2014 May 18; 92(3):507-28. PubMed ID: 24589377
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