Amyloid Fibrils as Building Blocks for Natural and Artificial Functional Materials
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[1] C. Dobson,et al. Inherent toxicity of aggregates implies a common mechanism for protein misfolding diseases , 2002, Nature.
[2] J. Hardy,et al. The Amyloid Hypothesis of Alzheimer ’ s Disease : Progress and Problems on the Road to Therapeutics , 2009 .
[3] E. M. Jones,et al. Structure-based design of functional amyloid materials. , 2014, Journal of the American Chemical Society.
[4] Michele Vendruscolo,et al. Atomic structure and hierarchical assembly of a cross-β amyloid fibril , 2013, Proceedings of the National Academy of Sciences.
[5] Xiao Kuang,et al. Electrostatic Assembly of Peptide Nanofiber-Biomimetic Silver Nanowires onto Graphene for Electrochemical Sensors. , 2014, ACS macro letters.
[6] Alexander K. Buell,et al. Protein microgels from amyloid fibril networks. , 2015, ACS nano.
[7] O. Inganäs,et al. Decoration of amyloid fibrils with luminescent conjugated polymers , 2008 .
[8] N. Linden,et al. Self-Assembling Cages from Coiled-Coil Peptide Modules , 2013, Science.
[9] R. Mezzenga,et al. Hybrid Amyloid Membranes for Continuous Flow Catalysis. , 2015, Langmuir : the ACS journal of surfaces and colloids.
[10] O. Inganäs,et al. Integration of amyloid nanowires in organic solar cells , 2008 .
[11] David Eisenberg,et al. In Brief , 2009, Nature Reviews Neuroscience.
[12] E. Windhab,et al. Protein adsorption and interfacial rheology interfering in dilatational experiment , 2013, The European Physical Journal Special Topics.
[13] R. Meškys,et al. Ultrathin silver nanowires produced by amyloid biotemplating , 2008, Biotechnology progress.
[14] P. R. Hania,et al. Alignment of a conjugated polymer onto amyloid-like protein fibrils. , 2007, Small.
[15] R. Wickner,et al. [URE3] as an altered URE2 protein: evidence for a prion analog in Saccharomyces cerevisiae. , 1994, Science.
[16] Paramjit S. Arora,et al. Amyloid fibrils nucleated and organized by DNA origami constructions , 2014, Nature nanotechnology.
[17] J. Kelly,et al. Amyloid as a natural product , 2003, The Journal of cell biology.
[18] Jin-Mi Jung,et al. Interfacial activity and interfacial shear rheology of native β-lactoglobulin monomers and their heat-induced fibers. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[19] L. Bi,et al. An auto-biotinylated bifunctional protein nanowire for ultra-sensitive molecular biosensing. , 2010, Biosensors & bioelectronics.
[20] G. Vriend,et al. Amyloids protect the silkmoth oocyte and embryo , 2000, FEBS letters.
[21] Jaime Castillo-León,et al. Self-Assembled Peptide Nanotubes as an Etching Material for the Rapid Fabrication of Silicon Wires , 2011 .
[22] R. Mezzenga,et al. New biocompatible thermo-reversible hydrogels from PNiPAM-decorated amyloid fibrils. , 2011, Chemical communications.
[23] T. Trust,et al. Thin, aggregative fimbriae mediate binding of Salmonella enteritidis to fibronectin , 1993, Journal of bacteriology.
[24] J. Enghild,et al. Functional amyloid in Pseudomonas , 2010, Molecular microbiology.
[25] S. Jarvis,et al. Nanoscale Mechanical Characterisation of Amyloid Fibrils Discovered in a Natural Adhesive , 2006, Journal of biological physics.
[26] R. Mezzenga,et al. Magnetic-responsive hybrids of Fe3O4 nanoparticles with β-lactoglobulin amyloid fibrils and nanoclusters. , 2013, ACS nano.
[27] Jozef Adamcik,et al. Biodegradable nanocomposites of amyloid fibrils and graphene with shape-memory and enzyme-sensing properties. , 2012, Nature nanotechnology.
[28] K. E. Styan,et al. Nanotopographic surfaces with defined surface chemistries from amyloid fibril networks can control cell attachment. , 2013, Biomacromolecules.
[29] C. Dobson,et al. Formation of mixed fibrils demonstrates the generic nature and potential utility of amyloid nanostructures , 2000 .
[30] A. Šetkus,et al. Functionalization of α-synuclein fibrils , 2015, Beilstein journal of nanotechnology.
[31] M. Nomizu,et al. Multifunctional peptide fibrils for biomedical materials. , 2004, Biopolymers.
[32] G. Glenner,et al. β-PLEATED SHEET FIBRILS A COMPARISON OF NATIVE AMYLOID WITH SYNTHETIC PROTEIN FIBRILS , 1974, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[33] Glyn L. Devlin,et al. Functionalised amyloid fibrils for roles in cell adhesion. , 2008, Biomaterials.
[34] J T Finch,et al. Amyloid fibers are water-filled nanotubes , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[35] Sebastian Maurer-Stroh,et al. Amyloid-based nanosensors and nanodevices. , 2014, Chemical Society reviews.
[36] M. Jensen,et al. Molecular population genetics and evolution of a prion-like protein in Saccharomyces cerevisiae. , 2001, Genetics.
[37] Alexander K. Buell,et al. Nanostructured films from hierarchical self-assembly of amyloidogenic proteins. , 2010, Nature nanotechnology.
[38] J. Gerrard,et al. Immobilization of organophosphate hydrolase on an amyloid fibril nanoscaffold: Towards bioremediation and chemical detoxification , 2011, Biotechnology progress.
[39] Seunho Jung,et al. Robust polydiacetylene-based colorimetric sensing material developed with amyloid fibrils of α-synuclein. , 2015, Langmuir : the ACS journal of surfaces and colloids.
[40] Markus J Buehler,et al. Nanomechanics of functional and pathological amyloid materials. , 2011, Nature nanotechnology.
[41] R. Mezzenga,et al. Engineered lysozyme amyloid fibril networks support cellular growth and spreading. , 2014, Biomacromolecules.
[42] A. Clark,et al. Static and Dynamic Scattering of β-Lactoglobulin Aggregates Formed after Heat-Induced Denaturation at pH 2 , 1999 .
[43] K. Berland,et al. Light harvesting antenna on an amyloid scaffold. , 2008, Chemical communications.
[44] L. Domigan,et al. Versatile multi-functionalization of protein nanofibrils for biosensor applications. , 2014, Nanoscale.
[45] Dong Men,et al. Seeding-induced self-assembling protein nanowires dramatically increase the sensitivity of immunoassays. , 2009, Nano letters.
[46] R. Mezzenga,et al. Universal behavior in the mesoscale properties of amyloid fibrils. , 2014, Physical review letters.
[47] W. Dzwolak. Insulin amyloid fibrils form an inclusion complex with molecular iodine: a misfolded protein as a nanoscale scaffold. , 2007, Biochemistry.
[48] D. Otzen,et al. We find them here, we find them there: Functional bacterial amyloid , 2008, Cellular and Molecular Life Sciences.
[49] R. Riek,et al. Amyloid as a Depot for the Formulation of Long-Acting Drugs , 2008, PLoS biology.
[50] Christian Haass,et al. Games Played by Rogue Proteins in Prion Disorders and Alzheimer's Disease , 2003, Science.
[51] Mathias Jucker,et al. The Amyloid State of Proteins in Human Diseases , 2012, Cell.
[52] J. Gerrard,et al. Amyloid fibrils as functionalizable components of nanocomposite materials , 2012, Biotechnology progress.
[53] Giovanni Dietler,et al. Measurement of intrinsic properties of amyloid fibrils by the peak force QNM method. , 2012, Nanoscale.
[54] Blaise R. Boles,et al. Functional Amyloids Composed of Phenol Soluble Modulins Stabilize Staphylococcus aureus Biofilms , 2012, PLoS pathogens.
[55] P. Björk,et al. Electroactive Luminescent Self‐Assembled Bio‐organic Nanowires: Integration of Semiconducting Oligoelectrolytes within Amyloidogenic Proteins , 2005 .
[56] Jonathan S. Weissman,et al. The physical basis of how prion conformations determine strain phenotypes , 2006, Nature.
[57] O. Inganäs,et al. White light with phosphorescent protein fibrils in OLEDs. , 2010, Nano letters.
[58] J. Davies,et al. Molecular Biology of the Cell , 1983, Bristol Medico-Chirurgical Journal.
[59] R. Mezzenga,et al. Amyloid fibrils enhance transport of metal nanoparticles in living cells and induced cytotoxicity. , 2014, Biomacromolecules.
[60] R. Mezzenga,et al. Hybrid Nanocomposites of Gold Single‐Crystal Platelets and Amyloid Fibrils with Tunable Fluorescence, Conductivity, and Sensing Properties , 2013, Advanced materials.
[61] C. Dobson. Protein folding and misfolding , 2003, Nature.
[62] R. Mezzenga,et al. Towards lysozyme nanotube and 3D hybrid self-assembly. , 2013, Nanoscale.
[63] Michele Vendruscolo,et al. Role of Intermolecular Forces in Defining Material Properties of Protein Nanofibrils , 2007, Science.
[64] O. Inganäs,et al. Enhanced current efficiency from bio-organic light-emitting diodes using decorated amyloid fibrils with conjugated polymer. , 2008, Nano letters.
[65] M. Welland,et al. Conducting core-shell nanowires by amyloid nanofiber templated polymerization. , 2015, Biomacromolecules.
[66] D. Eisenberg,et al. Designed amyloid fibers as materials for selective carbon dioxide capture , 2013, Proceedings of the National Academy of Sciences.
[67] D. Otzen,et al. Fibrillation of the major curli subunit CsgA under a wide range of conditions implies a robust design of aggregation. , 2011, Biochemistry.
[68] Yuji Goto,et al. Conformational indeterminism in protein misfolding: chiral amplification on amyloidogenic pathway of insulin. , 2007, Journal of the American Chemical Society.
[69] I. Hamley,et al. Infrared linear dichroism spectroscopy on amyloid fibrils aligned by molecular combing. , 2011, Biomacromolecules.
[70] S. Henikoff,et al. Self-perpetuating structural states in biology, disease, and genetics , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[71] N. Rozlosnik,et al. Fabrication and characterization of PEDOT nanowires based on self-assembled peptide nanotube lithography , 2013 .
[72] R. Mezzenga,et al. Adsorption at liquid interfaces induces amyloid fibril bending and ring formation. , 2014, ACS nano.
[73] R. Mezzenga,et al. Macroscopic Single‐Crystal Gold Microflakes and Their Devices , 2015, Advanced materials.
[74] R. Mezzenga,et al. Modulating Materials by Orthogonally Oriented β‐Strands: Composites of Amyloid and Silk Fibroin Fibrils , 2014, Advanced materials.
[75] Sreenath Bolisetty,et al. Amyloid-carbon hybrid membranes for universal water purification. , 2016, Nature nanotechnology.
[76] Jun Hu,et al. Tunable assembly of amyloid-forming peptides into nanosheets as a retrovirus carrier , 2015, Proceedings of the National Academy of Sciences.
[77] Heather T. McFarlane,et al. Atomic structures of amyloid cross-β spines reveal varied steric zippers , 2007, Nature.
[78] Yoon-Sik Lee,et al. Nanoporous protein matrix made of amyloid fibrils of β2‐microglobulin , 2010, Biotechnology progress.
[79] Meital Reches,et al. Casting Metal Nanowires Within Discrete Self-Assembled Peptide Nanotubes , 2003, Science.
[80] W. Alves,et al. L-diphenylalanine microtubes as a potential drug-delivery system: characterization, release kinetics, and cytotoxicity. , 2013, Langmuir : the ACS journal of surfaces and colloids.
[81] H. True,et al. A yeast prion provides a mechanism for genetic variation and phenotypic diversity , 2000, Nature.
[82] J. Weissman,et al. Origins and kinetic consequences of diversity in Sup35 yeast prion fibers , 2002, Nature Structural Biology.
[83] M. Pepys. Pathogenesis, diagnosis and treatment of systemic amyloidosis. , 2001, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[84] K. Schwarz,et al. Peptide nanofibrils boost retroviral gene transfer and provide a rapid means for concentrating viruses. , 2013, Nature nanotechnology.
[85] O. Inganäs,et al. Electrochemical devices made from conducting nanowire networks self-assembled from amyloid fibrils and alkoxysulfonate PEDOT. , 2008, Nano letters.
[86] R. Mezzenga,et al. Amyloid Directed Synthesis of Titanium Dioxide Nanowires and Their Applications in Hybrid Photovoltaic Devices , 2012 .
[87] D. Baker,et al. Design of ordered two-dimensional arrays mediated by noncovalent protein-protein interfaces , 2015, Science.
[88] M. Tuite,et al. The ψ factor of yeast: A problem in inheritance , 1988 .
[89] S. Lindquist,et al. Structural insights into a yeast prion illuminate nucleation and strain diversity , 2005, Nature.
[90] Beat H. Meier,et al. Amyloid Fibrils of the HET-s(218–289) Prion Form a β Solenoid with a Triangular Hydrophobic Core , 2008, Science.
[91] M. Welland,et al. Wet-spinning of amyloid protein nanofibers into multifunctional high-performance biofibers. , 2011, Biomacromolecules.
[92] Atanas V Koulov,et al. Functional amyloid--from bacteria to humans. , 2007, Trends in biochemical sciences.
[93] D. Ridgley,et al. The effect of processing on large, self-assembled amyloid fibers , 2012 .
[94] R. Mezzenga,et al. Amyloid-mediated synthesis of giant, fluorescent, gold single crystals and their hybrid sandwiched composites driven by liquid crystalline interactions. , 2011, Journal of colloid and interface science.
[95] J. Weissman,et al. Conformational diversity in a yeast prion dictates its seeding specificity , 2001, Nature.
[96] W. K. Cullen,et al. Naturally secreted oligomers of amyloid β protein potently inhibit hippocampal long-term potentiation in vivo , 2002, Nature.
[97] Lucio Isa,et al. Unravelling adsorption and alignment of amyloid fibrils at interfaces by probe particle tracking , 2011 .
[98] C. Dobson. Protein misfolding, evolution and disease. , 1999, Trends in biochemical sciences.
[99] Dennis Claessen,et al. Amyloids — a functional coat for microorganisms , 2005, Nature Reviews Microbiology.
[100] Zsofia Botyanszki,et al. Programmable biofilm-based materials from engineered curli nanofibres , 2014, Nature Communications.
[101] H. Matsui,et al. Genetically engineered protein nanowires: unique features in site-specific functionalization and multi-dimensional self-assembly , 2012 .
[102] C. Dobson,et al. Protein misfolding, functional amyloid, and human disease. , 2006, Annual review of biochemistry.
[103] S. Sen,et al. Self healing hydrogels composed of amyloid nano fibrils for cell culture and stem cell differentiation. , 2015, Biomaterials.
[104] G. Glenner,et al. Alzheimer's disease: Initial report of the purification and characterization of a novel cerebrovascular amyloid protein , 1984 .
[105] J. Gerrard,et al. Amyloid fibrils as a nanoscaffold for enzyme immobilization , 2009, Biotechnology progress.
[106] Susan Lindquist,et al. Prions as adaptive conduits of memory and inheritance , 2005, Nature Reviews Genetics.
[107] A. Aguzzi. Cell biology: Beyond the prion principle , 2009, Nature.
[108] T. Lu,et al. Strong underwater adhesives made by self-assembling multi-protein nanofibres. , 2014, Nature nanotechnology.
[109] M. Mazzotti,et al. Amyloid Templated Gold Aerogels , 2016, Advanced materials.
[110] S. Prusiner,et al. Molecular biology of prion diseases , 1991, Science.
[111] O. Inganäs,et al. Amyloid fibrils as dispersing agents for oligothiophenes: control of photophysical properties through nanoscale templating and flow induced fibril alignment , 2014 .
[112] S. Sen,et al. Nanomaterials: amyloids reflect their brighter side , 2011, Nano reviews.
[113] H. Jaeger,et al. Conducting nanowires built by controlled self-assembly of amyloid fibers and selective metal deposition , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[114] D. Otzen,et al. Functional bacterial amyloid increases Pseudomonas biofilm hydrophobicity and stiffness , 2015, Front. Microbiol..
[115] Anne-Kathrin Born,et al. Amyloid‐Hydroxyapatite Bone Biomimetic Composites , 2014, Advanced materials.
[116] Scott J. Hultgren,et al. Role of Escherichia coli Curli Operons in Directing Amyloid Fiber Formation , 2002, Science.
[117] Atanas V Koulov,et al. Functional Amyloid Formation within Mammalian Tissue , 2005, PLoS biology.
[118] Lucio Isa,et al. Non-equilibrium nature of two-dimensional isotropic and nematic coexistence in amyloid fibrils at liquid interfaces , 2013, Nature Communications.
[119] Christopher M Dobson,et al. Cytochrome display on amyloid fibrils. , 2006, Journal of the American Chemical Society.
[120] Guanlun Guo,et al. Chirality-assisted ring-like aggregation of aβ(1-40) at liquid-solid interfaces: a stereoselective two-step assembly process. , 2015, Angewandte Chemie.
[121] Sunghyun Cho,et al. Amyloid hydrogel derived from curly protein fibrils of alpha-synuclein. , 2010, Biomaterials.
[122] P. Venema,et al. Investigating the permanent electric dipole moment of β‐lactoglobulin fibrils, using transient electric birefringence , 2006, Biopolymers.