Mechanistic and environmental control of the prevalence and lifetime of amyloid oligomers
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Ryan J. Morris | Rosalind J. Allen | Cait E. MacPhee | C. MacPhee | R. Allen | Kym Eden | Reuben Yarwood | Line Jourdain | K. Eden | R. Yarwood | Line Jourdain
[1] L. Serpell,et al. Common core structure of amyloid fibrils by synchrotron X-ray diffraction. , 1997, Journal of molecular biology.
[2] Christopher M Dobson,et al. Characterization of the nanoscale properties of individual amyloid fibrils , 2006, Proceedings of the National Academy of Sciences.
[3] A. Donald,et al. The binding of thioflavin-T to amyloid fibrils: localisation and implications. , 2005, Journal of structural biology.
[4] G. McRae,et al. A three-stage kinetic model of amyloid fibrillation. , 2007, Biophysical journal.
[5] Michele Vendruscolo,et al. Nucleated polymerization with secondary pathways. II. Determination of self-consistent solutions to growth processes described by non-linear master equations. , 2011, The Journal of chemical physics.
[6] Thomas Scheibel,et al. The elongation of yeast prion fibers involves separable steps of association and conversion. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[7] Measuring the Length Distribution of a Fibril System: A Flow Birefringence Technique Applied to Amyloid Fibrils , 2005 .
[8] C. Dobson,et al. Protein misfolding, functional amyloid, and human disease. , 2006, Annual review of biochemistry.
[9] M. Sousa,et al. Deposition of transthyretin in early stages of familial amyloidotic polyneuropathy: evidence for toxicity of nonfibrillar aggregates. , 2001, The American journal of pathology.
[10] L. Olsen,et al. Study on the binding of Thioflavin T to β-sheet-rich and non- β-sheet cavities , 2007 .
[11] R. Finke,et al. Protein aggregation kinetics, mechanism, and curve-fitting: a review of the literature. , 2009, Biochimica et biophysica acta.
[12] Hyoung-Gon Lee,et al. Perspectives on the Amyloid-β Cascade Hypothesis , 2004 .
[13] M. Fändrich,et al. The aggregation kinetics of Alzheimer's β‐amyloid peptide is controlled by stochastic nucleation , 2005, Protein science : a publication of the Protein Society.
[14] R. Nicoll,et al. Plaque-independent disruption of neural circuits in Alzheimer's disease mouse models. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[15] Michele Vendruscolo,et al. Nucleated polymerization with secondary pathways. I. Time evolution of the principal moments. , 2011, The Journal of chemical physics.
[16] R. D'Hooge,et al. Lipids revert inert Aβ amyloid fibrils to neurotoxic protofibrils that affect learning in mice , 2007, The EMBO Journal.
[17] A. Campbell. β-amyloid: friend or foe , 2001 .
[18] C. Dobson,et al. High-resolution molecular structure of a peptide in an amyloid fibril determined by magic angle spinning NMR spectroscopy. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[19] Xiaojun Zhao,et al. Mechanistic Study of Self-Assembling Peptide RADA16-I in Formation of Nanofibers and Hydrogels , 2010 .
[20] L. Olsen,et al. Study on the binding of Thioflavin T to beta-sheet-rich and non-beta-sheet cavities. , 2007, Journal of structural biology.
[21] D. Gillespie. Exact Stochastic Simulation of Coupled Chemical Reactions , 1977 .
[22] C. Masters,et al. Soluble pool of Aβ amyloid as a determinant of severity of neurodegeneration in Alzheimer's disease , 1999, Annals of neurology.
[23] M. Leone,et al. Secondary nucleation and accessible surface in insulin amyloid fibril formation. , 2008, The journal of physical chemistry. B.
[24] Meital Reches,et al. Casting Metal Nanowires Within Discrete Self-Assembled Peptide Nanotubes , 2003, Science.
[25] R. Leapman,et al. A structural model for Alzheimer's β-amyloid fibrils based on experimental constraints from solid state NMR , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[26] D. Epps,et al. Spontaneous Aggregation and Cytotoxicity of the β-Amyloid Aβ1–40: A Kinetic Model , 2003 .
[27] Carl W. Cotman,et al. Common Structure of Soluble Amyloid Oligomers Implies Common Mechanism of Pathogenesis , 2003, Science.
[28] W R Markesbery,et al. The Nun Study , 2009, Neurology.
[29] J. Agar,et al. Fitting neurological protein aggregation kinetic data via a 2-step, minimal/"Ockham's razor" model: the Finke-Watzky mechanism of nucleation followed by autocatalytic surface growth. , 2008, Biochemistry.
[30] P. Lansbury,et al. Models of amyloid seeding in Alzheimer's disease and scrapie: mechanistic truths and physiological consequences of the time-dependent solubility of amyloid proteins. , 1997, Annual review of biochemistry.
[31] Jesper Søndergaard Pedersen,et al. The changing face of glucagon fibrillation: structural polymorphism and conformational imprinting. , 2006, Journal of molecular biology.
[32] George A. Carlson,et al. The Relationship between Aβ and Memory in the Tg2576 Mouse Model of Alzheimer's Disease , 2002, The Journal of Neuroscience.
[33] C. MacPhee,et al. Efficient energy transfer within self-assembling peptide fibers: a route to light-harvesting nanomaterials. , 2009, Journal of the American Chemical Society.
[34] Hyoung-Gon Lee,et al. Perspectives on the amyloid-beta cascade hypothesis. , 2004, Journal of Alzheimer's disease : JAD.
[35] F. Ferrone,et al. Analysis of protein aggregation kinetics. , 1999, Methods in enzymology.
[36] R. Murphy,et al. A mathematical model of the kinetics of beta-amyloid fibril growth from the denatured state. , 2001, Biophysical journal.
[37] Derek N. Woolfson,et al. More than just bare scaffolds: towards multi-component and decorated fibrous biomaterials. , 2010, Chemical Society reviews.
[38] Glyn L. Devlin,et al. Functionalised amyloid fibrils for roles in cell adhesion. , 2008, Biomaterials.
[39] Shuguang Zhang. Fabrication of novel biomaterials through molecular self-assembly , 2003, Nature Biotechnology.
[40] R. Kayed,et al. Common structure and toxic function of amyloid oligomers implies a common mechanism of pathogenesis , 2006, Neurology.
[41] D. Grier,et al. Methods of Digital Video Microscopy for Colloidal Studies , 1996 .
[42] C. Dobson,et al. Measurement of amyloid fibril length distributions by inclusion of rotational motion in solution NMR diffusion measurements. , 2008, Angewandte Chemie.
[43] Tuomas P. J. Knowles,et al. An Analytical Solution to the Kinetics of Breakable Filament Assembly , 2009, Science.
[44] F. Oosawa,et al. A theory of linear and helical aggregations of macromolecules. , 1962, Journal of molecular biology.
[45] Thorsten Lührs,et al. Correlation of structural elements and infectivity of the HET-s prion , 2005, Nature.
[46] J. Bukrinsky,et al. Binding mode of Thioflavin T in insulin amyloid fibrils. , 2007, Journal of structural biology.
[47] Adam Douglass,et al. Mechanism of Prion Propagation: Amyloid Growth Occurs by Monomer Addition , 2004, PLoS biology.
[48] M. Gallagher,et al. A specific amyloid-β protein assembly in the brain impairs memory , 2006, Nature.
[49] Derek N. Woolfson,et al. More than Just Bare Scaffolds: Towards Multi-Component and Decorated Fibrous Biomaterials , 2010 .
[50] A. Rich,et al. Self-complementary oligopeptide matrices support mammalian cell attachment. , 1995, Biomaterials.
[51] E. Powers,et al. The kinetics of nucleated polymerizations at high concentrations: amyloid fibril formation near and above the "supercritical concentration". , 2006, Biophysical journal.
[52] R. Godoy-Ruiz,et al. The efficiency of different salts to screen charge interactions in proteins: a Hofmeister effect? , 2004, Biophysical journal.
[53] S. Radford,et al. Systematic analysis of nucleation-dependent polymerization reveals new insights into the mechanism of amyloid self-assembly , 2008, Proceedings of the National Academy of Sciences.
[54] Jeffrey A. James,et al. Frequent amyloid deposition without significant cognitive impairment among the elderly. , 2008, Archives of neurology.
[55] S. Radford,et al. Fibril Fragmentation Enhances Amyloid Cytotoxicity*♦ , 2009, The Journal of Biological Chemistry.
[56] Shaomin Li,et al. Amyloid-β protein dimers isolated directly from Alzheimer's brains impair synaptic plasticity and memory , 2008, Nature Medicine.
[57] E. Powers,et al. Mechanisms of protein fibril formation: nucleated polymerization with competing off-pathway aggregation. , 2008, Biophysical journal.
[58] E. Gazit,et al. Controlled patterning of aligned self-assembled peptide nanotubes , 2006, Nature nanotechnology.
[59] J. Frank,et al. Time‐dependent insulin oligomer reaction pathway prior to fibril formation: Cooling and seeding , 2009, Proteins.
[60] Michele Vendruscolo,et al. Nucleated polymerization with secondary pathways. III. Equilibrium behavior and oligomer populations. , 2011, The Journal of chemical physics.
[61] Matthew Pilarz,et al. Controlling hydrogelation kinetics by peptide design for three-dimensional encapsulation and injectable delivery of cells , 2007, Proceedings of the National Academy of Sciences.