At the dated check, the references listed below either did not resolve in
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The 191 checked references that resolve
resolves10.1039/c1sm05698kPeptide nanotubes: molecular organisations, self-assembly mechanisms and applications
resolves10.1038/nbt874Fabrication of novel biomaterials through molecular self-assembly
resolves10.1039/c2cs35172bDesign and properties of functional nanotubes from the self-assembly of cyclic peptide templates
resolves10.1021/cr030072jSupramolecular Nanotube Architectures Based on Amphiphilic Molecules
resolves10.1039/b915923cMolecular self-assembly and applications of designer peptide amphiphiles
resolves10.1039/c2cp40157fPhysics and engineering of peptide supramolecular nanostructures
resolves10.1038/366324a0Self-assembling organic nanotubes based on a cyclic peptide architecture
resolves10.1038/35086601Antibacterial agents based on the cyclic d,l-α-peptide architecture
resolves10.1038/369301a0Artificial transmembrane ion channels from self-assembling peptide nanotubes
resolves10.1021/ja0372659Self-Assembling Peptide Nanotubes from Enantiomeric Pairs of Cyclic Peptides with Alternating
<scp>d</scp>
and
<scp>l</scp>
Amino Acid Residues
resolves10.1039/c3cc43837fInducing alignment of cyclic peptide nanotubes through the use of structured ionic liquids
resolves10.1002/hlca.200890190New Open‐Chain and Cyclic Tetrapeptides, Consisting of <i>α</i>‐, <i>β</i><sup>2</sup>‐, and <i>β</i><sup>3</sup>‐Amino‐Acid Residues, as Somatostatin Mimics – A Survey
resolves10.1039/B610858JSelf-assembly of cyclic homo- and hetero-β-peptides with cis- furanoid sugar amino acid and β-hGly as building blocks
resolves10.1021/bm060415yColumnar Assembly of Cyclic β-Amino Acid Functionalized with Pyranose Rings
resolves10.1021/bm060862dDouble Assembly Composed of Lectin Association with Columnar Molecular Assembly of Cyclic Tri-β-peptide Having Sugar Units
resolves10.1002/bip.20694Molecular assembly formation of cyclic hexa‐β‐peptide composed of acetylated glycosamino acids
resolves10.1021/ja0296273New Cyclic Peptide Assemblies with Hydrophobic Cavities: The Structural and Thermodynamic Basis of a New Class of Peptide Nanotubes
resolves10.1039/c2sc21068aTransmembrane ion transport by self-assembling α,γ-peptide nanotubes
resolves10.1002/ange.200501555Methyl‐Blocked Dimeric α,γ‐Peptide Nanotube Segments: Formation of a Peptide Heterodimer through Backbone–Backbone Interactions
resolves10.1002/anie.200501555Methyl‐Blocked Dimeric α,γ‐Peptide Nanotube Segments: Formation of a Peptide Heterodimer through Backbone–Backbone Interactions
resolves10.1021/ja066885hControlling Multiple Fluorescent Signal Output in Cyclic Peptide-Based Supramolecular Systems
resolves10.1039/b703659kLarge-diameter self-assembled dimers of α,γ-cyclic peptides, with the nanotubular solid-state structure of cyclo-[(l-Leu-d-MeN-γ-Acp)4-]·4CHCl2COOH
resolves10.1021/ol0518028Efficient Route to<i>C</i><sub>2</sub>Symmetric Heterocyclic Backbone Modified Cyclic Peptides
resolves10.1073/pnas.1730609100Biomimetic organization: Octapeptide self-assembly into nanotubes of viral capsid-like dimension
resolves10.1073/pnas.1017343108Control of peptide nanotube diameter by chemical modifications of an aromatic residue involved in a single close contact
resolves10.1021/ja9088023Elucidation of the Self-Assembly Pathway of Lanreotide Octapeptide into β-Sheet Nanotubes: Role of Two Stable Intermediates
resolves10.1038/nmat1912Hierarchical architectures by synergy between dynamical template self-assembly and biomineralization
resolves10.1021/ja210299gStructural Role of Counterions Adsorbed on Self-Assembled Peptide Nanotubes
resolves10.1021/la304862fExperimental Observation of Double-Walled Peptide Nanotubes and Monodispersity Modeling of the Number of Walls
resolves10.1021/ma061200jSurface-Initiated ATRP of <i>N</i>-Isopropylacrylamide from Initiator-Modified Self-Assembled Peptide Nanotubes
resolves10.1021/ma0519415Sequence-Defined Polypeptide−Polymer Conjugates Utilizing Reversible Addition Fragmentation Transfer Radical Polymerization
resolves10.1021/ma061738pSelf-Assembling Peptide−Polymer Conjugates Comprising (<scp>d</scp><i>-</i><i>alt</i>-<scp>l</scp>)-Cyclopeptides as Aggregator Domains
resolves10.1039/c2py00510gPushing the limits of copper mediated azide–alkyne cycloaddition (CuAAC) to conjugate polymeric chains to cyclic peptides
resolves10.1039/c3sc00064hStructure elucidation and control of cyclic peptide-derived nanotube assemblies in solution
resolves10.1039/c3cc42327aThermoresponsive cyclic peptide – poly(2-ethyl-2-oxazoline) conjugate nanotubes
resolves10.1002/chem.201203602Water‐Soluble and pH‐Responsive Polymeric Nanotubes from Cyclic Peptide Templates
resolves10.1021/nn103083tSubnanometer Porous Thin Films by the Co-assembly of Nanotube Subunits and Block Copolymers
resolves10.1073/pnas.072089599Molecular self-assembly of surfactant-like peptides to form nanotubes and nanovesicles
resolves10.1021/nl025563iSelf-assembly of Surfactant-like Peptides with Variable Glycine Tails to Form Nanotubes and Nanovesicles
resolves10.1039/c0cc00212gStructure of single-wall peptide nanotubes: in situ flow aligning X-ray diffraction
resolves10.1002/ange.201301960Insights into the Molecular Architecture of a Peptide Nanotube Using FTIR and Solid‐State NMR Spectroscopic Measurements on an Aligned Sample
resolves10.1002/anie.201301960Insights into the Molecular Architecture of a Peptide Nanotube Using FTIR and Solid‐State NMR Spectroscopic Measurements on an Aligned Sample
resolves10.1021/la802499nHydrophobic-Region-Induced Transitions in Self-Assembled Peptide Nanostructures
resolves10.1021/bm901130uAntibacterial Activities of Short Designer Peptides: a Link between Propensity for Nanostructuring and Capacity for Membrane Destabilization
resolves10.1021/la403447uInteraction between a Cationic Surfactant-like Peptide and Lipid Vesicles and Its Relationship to Antimicrobial Activity
resolves10.1021/la001054pComparative Cryo-Electron Microscopy of Noncovalent <i>N</i>-Dodecanoyl- (<scp>d</scp>- and <scp>l</scp>-) serine Assemblies in Vitreous Toluene and Water
resolves10.1021/ja00057a069Molecular monolayer rods and tubules made of .alpha.-(L-lysine),.omega.-(amino) bolaamphiphiles
resolves10.1002/chem.201102616Aqueous Self‐Assembly of <scp>L</scp>‐Lysine‐Based Amphiphiles into 1D n‐Type Nanotubes
resolves10.1021/ja205868bSelf-Assembly of a Donor–Acceptor Nanotube. A Strategy To Create Bicontinuous Arrays
resolves10.1021/jp994117pCrystalline Glycylglycine Bolaamphiphile Tubules and Their pH-Sensitive Structural Transformation
resolves10.1039/b311141eIncorporation of sequenced peptides on nanotubes for Pt coating: smart control of nucleation and morphology via activation of metal binding sites on amino acids
resolves10.1021/nl034038wLocation-Specific Biological Functionalization on Nanotubes: Attachment of Proteins at the Ends of Nanotubes Using Au Nanocrystal Masks
resolves10.1021/ja028261rAu Nanowire Fabrication from Sequenced Histidine-Rich Peptide
resolves10.1073/pnas.2433456100Cu nanocrystal growth on peptide nanotubes by biomineralization: Size control of Cu nanocrystals by tuning peptide conformation
resolves10.1021/nl0484503Thiolated Peptide Nanotube Assembly as Arrays on Patterned Au Substrates
resolves10.1021/ja048617uBiological Bottom-Up Assembly of Antibody Nanotubes on Patterned Antigen Arrays
resolves10.1021/bc050199aFabrication and Application of Enzyme-Incorporated Peptide Nanotubes
resolves10.1002/adma.200803072Antimicrobial Nanotubes Consisting of Ag‐Embedded Peptidic Lipid‐Bilayer Membranes as Delivery Vehicles
resolves10.1002/adma.200601117Instant Preparation of Self‐Assembled Metal‐Complexed Lipid Nanotubes That Act as Templates to Produce Metal‐Oxide Nanotubes
resolves10.1021/ja107069fUnraveling the Mechanism of Nanotube Formation by Chiral Self-Assembly of Amphiphiles
resolves10.1039/c3cc41786gCopper(ii) ion selective and strong acid-tolerable hydrogels formed by an l-histidine ester terminated bolaamphiphile: from single molecular thick nanofibers to single-wall nanotubes
resolves10.1021/la103435tHierarchical Self-Assembly of Bolaamphiphiles with a Hybrid Spacer and<scp>l</scp>-Glutamic Acid Headgroup: pH- and Surface-Triggered Hydrogels, Vesicles, Nanofibers, and Nanotubes
resolves10.1039/b504516aConstruction of biotinylated peptide nanotubes for arranging proteins
resolves10.1039/c3sm51725jReversible helical unwinding transition of a self-assembling peptide amphiphile
resolves10.1021/la401025rTuning Self-Assembled Nanostructures Through Enzymatic Degradation of a Peptide Amphiphile
resolves10.1002/mabi.200800071Nanotube and Three‐Way Nanotube Formation with Nonionic Amphiphilic Block Peptides
resolves10.1002/psc.1304Rational design of peptide nanotubes for varying diameters and lengths
resolves10.1021/la901413nThe Effect of PEO Length on the Self-Assembly of Poly(ethylene oxide)−Tetrapeptide Conjugates Prepared by “Click” Chemistry
resolves10.1016/j.bpc.2009.01.008Self assembly of a model amphiphilic phenylalanine peptide/polyethylene glycol block copolymer in aqueous solution
resolves10.1021/la8035659Soft Hydrogels from Nanotubes of Poly(ethylene oxide)−Tetraphenylalanine Conjugates Prepared by Click Chemistry
resolves10.1021/ja0341642Exploiting Amyloid Fibril Lamination for Nanotube Self-Assembly
resolves10.1021/ja910964cDirect Observation of Nucleation and Growth in Amyloid Self-Assembly
resolves10.1021/jp902860aInfluence of the Solvent on the Self-Assembly of a Modified Amyloid Beta Peptide Fragment. I. Morphological Investigation
resolves10.1021/jp906107pInfluence of the Solvent on the Self-Assembly of a Modified Amyloid Beta Peptide Fragment. II. NMR and Computer Simulation Investigation
resolves10.1039/c2cc17118jFibrils and nanotubes assembled from a modified amyloid-β peptide fragment differ in the packing of the same β-sheet building blocks
resolves10.1002/ange.201100807Direct Observation of Time‐Resolved Polymorphic States in the Self‐Assembly of End‐Capped Heptapeptides
resolves10.1002/anie.201100807Direct Observation of Time‐Resolved Polymorphic States in the Self‐Assembly of End‐Capped Heptapeptides
resolves10.1039/b606875hSynthesis and structural investigations of N-alkylated β-peptidosulfonamide–peptide hybrids of the amyloidogenic amylin(20–29) sequence: implications of supramolecular folding for the design of peptide-based bionanomaterials
resolves10.1021/ja100613wDirect Observation of Morphological Tranformation from Twisted Ribbons into Helical Ribbons
resolves10.1021/la104518gSelf-Assembled Template-Directed Synthesis of One-Dimensional Silica and Titania Nanostructures
resolves10.1039/B603080GThe structure of nanotubes formed by diphenylalanine, the core recognition motif of Alzheimer's β-amyloid polypeptide
resolves10.1039/B402126FSynthesis of peptide-nanotube platinum-nanoparticle composites
resolves10.1002/adma.200901973Role of Water in Directing Diphenylalanine Assembly into Nanotubes and Nanowires
resolves10.1021/la903571yControl of Protein Adsorption onto Core−Shell Tubular and Vesicular Structures of Diphenylalanine/Parylene
resolves10.1002/ange.200603387Transition of Cationic Dipeptide Nanotubes into Vesicles and Oligonucleotide Delivery
resolves10.1002/anie.200603387Transition of Cationic Dipeptide Nanotubes into Vesicles and Oligonucleotide Delivery
resolves10.1560/5MC0-V3DX-KE0B-YF3JSelf‐assembly of peptide nanotubes and amyloid‐like structures by charged‐termini‐capped diphenylalanine peptide analogues
resolves10.1039/B305984GNanotubes from hydrophobic dipeptides: pore size regulation through side chain substitution
resolves10.1002/adfm.200800955Self‐Assembled Robust Dipeptide Nanotubes and Fabrication of Dipeptide‐Capped Gold Nanoparticles on the Surface of these Nanotubes
resolves10.1021/la052409dThermal and Chemical Stability of Diphenylalanine Peptide Nanotubes: Implications for Nanotechnological Applications
resolves10.1002/psc.963Controlled patterning of peptide nanotubes and nanospheres using inkjet printing technology
resolves10.1002/adma.200601774Self‐Assembly of a Dipeptide‐ Containing Conformationally Restricted Dehydrophenylalanine Residue to Form Ordered Nanotubes
resolves10.1002/ange.201003446Self‐Assembly of Semiconducting Photoluminescent Peptide Nanowires in the Vapor Phase
resolves10.1002/anie.201003446Self‐Assembly of Semiconducting Photoluminescent Peptide Nanowires in the Vapor Phase
resolves10.1021/ja104373eElementary Building Blocks of Self-Assembled Peptide Nanotubes
resolves10.1021/bm400562cIn Situ Thermal Imaging and Absolute Temperature Monitoring by Luminescent Diphenylalanine Nanotubes
resolves10.1002/ange.201207992Light‐Induced Ferroelectricity in Bioinspired Self‐Assembled Diphenylalanine Nanotubes/Microtubes
resolves10.1002/anie.201207992Light‐Induced Ferroelectricity in Bioinspired Self‐Assembled Diphenylalanine Nanotubes/Microtubes
resolves10.1021/nl0484189Novel Electrochemical Biosensing Platform Using Self-Assembled Peptide Nanotubes
resolves10.1039/c3cc45320kSelf-assembly of diphenylalanine peptides into microtubes with “turn on” fluorescence using an aggregation-induced emission molecule
resolves10.1002/ange.201103244Self‐Assembled Light‐Harvesting Peptide Nanotubes for Mimicking Natural Photosynthesis
resolves10.1002/anie.201103244Self‐Assembled Light‐Harvesting Peptide Nanotubes for Mimicking Natural Photosynthesis
resolves10.1002/adma.201000669Mineralization of Self‐assembled Peptide Nanofibers for Rechargeable Lithium Ion Batteries
resolves10.1039/b9nr00233bAn investigation of the conductivity of peptide nanotube networks prepared by enzyme-triggered self-assembly
resolves10.1021/ol048253aA New Motif in the Formation of Peptide Nanotubes: The Crystallographic Signature
resolves10.1016/j.tet.2006.05.042The role of terminal tyrosine residues in the formation of tripeptide nanotubes: a crystallographic insight
resolves10.1021/ja3115983Supramolecular Nanostructures Formed by Anticancer Drug Assembly
resolves10.1039/b914339bCoiled coils: attractive protein folding motifs for the fabrication of self-assembled, responsive and bioactive materials
resolves10.1021/ja4074529Rational Design of Helical Nanotubes from Self-Assembly of Coiled-Coil Lock Washers
resolves10.1529/biophysj.106.100644Changing the Charge Distribution of β-Helical-Based Nanostructures Can Provide the Conditions for Charge Transfer
resolves10.1073/pnas.0712247105<i>In vitro</i>
self-assembly of tailorable nanotubes from a simple protein building block
resolves10.1038/nchem.1290Metal-directed, chemically tunable assembly of one-, two- and three-dimensional crystalline protein arrays
resolves10.1021/la403283xGold Nanoparticle Inclusion into Protein Nanotube as a Layered Wall Component
resolves10.1073/pnas.191250198Hierarchical self-assembly of chiral rod-like molecules as a model for peptide β-sheet tapes, ribbons, fibrils, and fibers
resolves10.1038/21154Tuning bilayer twist using chiral counterions
resolves10.1021/mp900022mFlexible Filaments for <i>in Vivo</i> Imaging and Delivery: Persistent Circulation of Filomicelles Opens the Dosage Window for Sustained Tumor Shrinkage
resolves10.1038/nnano.2007.70Shape effects of filaments versus spherical particles in flow and drug delivery
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