Accurate design of co-assembling multi-component protein nanomaterials

scientific article

Accurate design of co-assembling multi-component protein nanomaterials is …
instance of (P31):
scholarly articleQ13442814

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P8978DBLP publication IDjournals/nature/KingBSMGGYB14
P6179Dimensions Publication ID1006905519
P356DOI10.1038/NATURE13404
P3181OpenCitations bibliographic resource ID1132192
P932PMC publication ID4137318
P698PubMed publication ID24870237
P5875ResearchGate publication ID262694200
P4011Semantic Scholar paper ID92b5ee1aad4abe16cf966b73b16431c0c9aa07b5

P50authorDavid BakerQ3814528
Todd O. YeatesQ32063648
Jacob B BaleQ56706076
Dan E McNamaraQ57207247
Tamir GonenQ57975707
Shane GonenQ64952158
Neil P. KingQ64952159
W. ShefflerQ67388855
P2860cites workProtein Design by Directed EvolutionQ22065412
Folding DNA to create nanoscale shapes and patternsQ22122462
Nanomaterials based on DNAQ24594334
Native protein sequences are close to optimal for their structuresQ24656322
A De Novo Protein Binding Pair By Computational Design and Directed EvolutionQ27667402
Computational Design of Proteins Targeting the Conserved Stem Region of Influenza HemagglutininQ27667831
Computational Design of Virus-Like Protein Assemblies on Carbon Nanotube SurfacesQ27668043
Metal-Mediated Affinity and Orientation Specificity in a Computationally Designed Protein HomodimerQ27675621
Computational design of a symmetric homodimer using  -strand assemblyQ27675994
Metal-directed, chemically tunable assembly of one-, two- and three-dimensional crystalline protein arraysQ27678648
Computational design of a protein crystalQ27678758
Structure of a 16-nm cage designed by using protein oligomersQ27679398
Computational Design of Self-Assembling Protein Nanomaterials with Atomic Level AccuracyQ27679409
Shape complementarity at protein/protein interfacesQ27860963
Modeling symmetric macromolecular structures in Rosetta3Q28478675
ROSETTA3: an object-oriented software suite for the simulation and design of macromoleculesQ28914720
Improved beta-protein structure prediction by multilevel optimization of nonlocal strand pairings and local backbone conformation.Q30357341
Viruses: making friends with old foesQ33243176
Directed evolution of biocatalystsQ33533813
Computational design of a PAK1 binding proteinQ33991383
Structural symmetry and protein functionQ34001342
Generation of protein lattices by fusing proteins with matching rotational symmetryQ34205140
Nanohedra: using symmetry to design self assembling protein cages, layers, crystals, and filamentsQ34446725
A de novo designed protein protein interfaceQ36420294
Protein-protein interaction and quaternary structureQ37277360
Metal-directed protein self-assemblyQ37700461
Rationally engineering natural protein assemblies in nanobiotechnologyQ37888087
Principles for designing ordered protein assembliesQ38043232
Emerging themes in the computational design of novel enzymes and protein-protein interfacesQ38069390
Practical approaches to designing novel protein assembliesQ38119362
Constructing arrays of proteinsQ38182109
Nanoscale elongating control of the self-assembled protein filament with the cysteine-introduced building blocksQ42606474
Three-dimensional structures self-assembled from DNA bricksQ42860917
Directed evolution of a protein containerQ43979618
DNA gridiron nanostructures based on four-arm junctionsQ44344681
Efficient in vitro encapsulation of protein cargo by an engineered protein container.Q50504929
Self-assembling cages from coiled-coil peptide modules.Q51073061
Squaring the Circle in Peptide Assembly: From Fibers to Discrete Nanostructures by de Novo DesignQ57831554
P433issue7503
P407language of work or nameEnglishQ1860
P921main subjectprotein designQ410814
nanomaterialQ967847
P304page(s)103-8
P577publication date2014-06-05
P1433published inNatureQ180445
P1476titleAccurate design of co-assembling multi-component protein nanomaterials
P478volume510

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