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Journal Abstract Search


85 related items for PubMed ID: 25225131

  • 1. Thermodynamic study of transthyretin association (wild-type and senile forms) with heparan sulfate proteoglycan: pH effect and implication of the reactive histidine residue.
    Geneste A, André C, Magy-Bertrand N, Lethier L, Tijani G, Guillaume YC.
    Biomed Chromatogr; 2015 Apr; 29(4):514-22. PubMed ID: 25225131
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  • 2. The protease activity of transthyretin reverses the effect of pH on the amyloid-β protein/heparan sulfate proteoglycan interaction: a biochromatographic study.
    Geneste A, Guillaume YC, Magy-Bertrand N, Lethier L, Gharbi T, André C.
    J Pharm Biomed Anal; 2014 Aug; 97():88-96. PubMed ID: 24858299
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  • 3. Hydrogen-bond network and pH sensitivity in transthyretin: Neutron crystal structure of human transthyretin.
    Yokoyama T, Mizuguchi M, Nabeshima Y, Kusaka K, Yamada T, Hosoya T, Ohhara T, Kurihara K, Tomoyori K, Tanaka I, Niimura N.
    J Struct Biol; 2012 Feb; 177(2):283-90. PubMed ID: 22248451
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  • 6. Structural insight into pH-induced conformational changes within the native human transthyretin tetramer.
    Palaninathan SK, Mohamedmohaideen NN, Snee WC, Kelly JW, Sacchettini JC.
    J Mol Biol; 2008 Oct 24; 382(5):1157-67. PubMed ID: 18662699
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  • 10. Hydrogen-bond network and pH sensitivity in human transthyretin.
    Yokoyama T, Mizuguchi M, Nabeshima Y, Kusaka K, Yamada T, Hosoya T, Ohhara T, Kurihara K, Tanaka I, Niimura N.
    J Synchrotron Radiat; 2013 Nov 24; 20(Pt 6):834-7. PubMed ID: 24121323
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  • 11. The pH-dependent stability of wild-type and mutant transthyretin oligomers.
    Skoulakis S, Goodfellow JM.
    Biophys J; 2003 May 24; 84(5):2795-804. PubMed ID: 12719214
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  • 15. Conformational differences between the wild type and V30M mutant transthyretin modulate its binding to genistein: implications to tetramer stability and ligand-binding.
    Trivella DB, Bleicher L, Palmieri Lde C, Wiggers HJ, Montanari CA, Kelly JW, Lima LM, Foguel D, Polikarpov I.
    J Struct Biol; 2010 Jun 24; 170(3):522-31. PubMed ID: 20211733
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  • 16. Protein subunit interactions and structural integrity of amyloidogenic transthyretins: evidence from electrospray mass spectrometry.
    Nettleton EJ, Sunde M, Lai Z, Kelly JW, Dobson CM, Robinson CV.
    J Mol Biol; 1998 Aug 21; 281(3):553-64. PubMed ID: 9698569
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  • 17. Transthyretin forms amyloid fibrils at physiological pH with ultrasonication.
    Misumi Y, Ueda M, Fujimori H, Shinriki S, Meng W, Kim J, Saito S, Obayashi K, Uchino M, Ando Y.
    Amyloid; 2008 Dec 21; 15(4):234-9. PubMed ID: 19065294
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  • 18. Chromium(III) ion and thyroxine cooperate to stabilize the transthyretin tetramer and suppress in vitro amyloid fibril formation.
    Sato T, Ando Y, Susuki S, Mikami F, Ikemizu S, Nakamura M, Suhr O, Anraku M, Kai T, Suico MA, Shuto T, Mizuguchi M, Yamagata Y, Kai H.
    FEBS Lett; 2006 Jan 23; 580(2):491-6. PubMed ID: 16386248
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  • 19. Intrinsic versus mutation dependent instability/flexibility: a comparative analysis of the structure and dynamics of wild-type transthyretin and its pathogenic variants.
    Lei M, Yang M, Huo S.
    J Struct Biol; 2004 Nov 23; 148(2):153-68. PubMed ID: 15477096
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  • 20. Structural evidence for native state stabilization of a conformationally labile amyloidogenic transthyretin variant by fibrillogenesis inhibitors.
    Zanotti G, Cendron L, Folli C, Florio P, Imbimbo BP, Berni R.
    FEBS Lett; 2013 Aug 02; 587(15):2325-31. PubMed ID: 23792159
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