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367 peer-reviewed articles • 57,325 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
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1Liganded magnetic nanoparticles for magnetic resonance imaging of α-synuclein7.02Citations (PDF)
2Amyloid Oligomers: Expediting Crystal Growth and Revisiting the Corkscrew Structures15.03Citations (PDF)
3How short peptides disassemble tau fibrils in Alzheimer’s disease
Nature, 2025, 644, 1020-1027
37.919Citations (PDF)
4To What Extent is Anfinsen’s Thermodynamic Hypothesis Consistent With the Formation and Polymorphism of Amyloid Fibrils?
Journal of Molecular Biology, 2025, 437, 169364
4.19Citations (PDF)
5Leveraging structure-informed machine learning for fast steric zipper propensity prediction across whole proteomes
PLoS Computational Biology, 2025, 21, e1013395
3.10Citations (PDF)
6Cryo-EM structures of the D290V mutant of the hnRNPA2 low-complexity domain suggests how D290V affects phase separation and aggregation2.21Citations (PDF)
7Structural polymorphism of amyloid fibrils in ATTR amyloidosis revealed by cryo-electron microscopy13.765Citations (PDF)
8Cryo-EM structures of the D290V mutant of the hnRNPA2 low-complexity domain suggests how D290V affects phase separation and aggregation2.26Citations (PDF)
9D-peptide-magnetic nanoparticles fragment tau fibrils and rescue behavioral deficits in a mouse model of Alzheimer’s disease
Science Advances, 2024, 10,
10.921Citations (PDF)
10Small molecules disaggregate alpha-synuclein and prevent seeding from patient brain-derived fibrils7.547Citations (PDF)
11Abstract 1763: The Identification of Mutations Promoting Amyloidogenic Transitions (IMPAcT) method for identification of previously unrecognized amyloid disease-related proteins2.20Citations (PDF)
12Low complexity domains of the nucleocapsid protein of SARS-CoV-2 form amyloid fibrils13.727Citations (PDF)
13Andrew David McLachlan. 25 January 1935—8 July 20220.00Citations (PDF)
14Structure-based design of nanobodies that inhibit seeding of Alzheimer’s patient–extracted tau fibrils7.544Citations (PDF)
15Fibril structures of TFG protein mutants validate the identification of TFG as a disease-related amyloid protein by the IMPAcT method
PNAS Nexus, 2023, 2,
3.15Citations (PDF)
16Atomic view of an amyloid dodecamer exhibiting selective cellular toxic vulnerability in acute brain slices
Protein Science, 2022, 31, 716-727
5.914Citations (PDF)
17Extended β-Strands Contribute to Reversible Amyloid Formation
ACS Nano, 2022, 16, 2154-2163
15.329Citations (PDF)
18Amyloid fibrils in FTLD-TDP are composed of TMEM106B and not TDP-43
Nature, 2022, 605, 304-309
37.9161Citations (PDF)
19Bioinformatic identification of previously unrecognized amyloidogenic proteins2.211Citations (PDF)
20Cryo-EM structure of RNA-induced tau fibrils reveals a small C-terminal core that may nucleate fibril formation7.5102Citations (PDF)
21Identifying amyloid-related diseases by mapping mutations in low-complexity protein domains to pathologies8.839Citations (PDF)
22De novo designed protein inhibitors of amyloid aggregation and seeding7.582Citations (PDF)
23Micro-electron diffraction structure of the aggregation-driving N terminus of Drosophila neuronal protein Orb2A reveals amyloid-like β-sheets2.27Citations (PDF)
24Structure-based discovery of small molecules that disaggregate Alzheimer’s disease tissue derived tau fibrils in vitro13.7184Citations (PDF)
25Catalytic Synthesis of PEGylated EGCG Conjugates that Disaggregate Alzheimer’s Tau
Synthesis, 2021, 53, 4263-4271
2.33Citations (PDF)
26Prevalence and species distribution of the low-complexity, amyloid-like, reversible, kinked segment structural motif in amyloid-like fibrils2.249Citations (PDF)
27Cryo-EM structures of hIAPP fibrils seeded by patient-extracted fibrils reveal new polymorphs and conserved fibril cores8.890Citations (PDF)
28The expanding amyloid family: Structure, stability, function, and pathogenesis
Cell, 2021, 184, 4857-4873
33.6465Citations (PDF)
29Intrinsic electronic conductivity of individual atomically resolved amyloid crystals reveals micrometer-long hole hopping via tyrosines7.573Citations (PDF)
30CryoEM structure of the low-complexity domain of hnRNPA2 and its conversion to pathogenic amyloid13.7110Citations (PDF)
31Cryo-EM structure and inhibitor design of human IAPP (amylin) fibrils8.8145Citations (PDF)
32Crystal structure of a conformational antibody that binds tau oligomers and inhibits pathological seeding by extracts from donors with Alzheimer's disease
Journal of Biological Chemistry, 2020, 295, 10662-10676
2.234Citations (PDF)
33Half a century of amyloids: past, present and future
Chemical Society Reviews, 2020, 49, 5473-5509
37.7564Citations (PDF)
34The α-synuclein hereditary mutation E46K unlocks a more stable, pathogenic fibril structure7.5183Citations (PDF)
35Cryo-EM structure of a human prion fibril with a hydrophobic, protease-resistant core8.895Citations (PDF)
36Structure of amyloid-β (20-34) with Alzheimer’s-associated isomerization at Asp23 reveals a distinct protofilament interface13.764Citations (PDF)
37Structure-based inhibitors halt prion-like seeding by Alzheimer’s disease–and tauopathy–derived brain tissue samples
Journal of Biological Chemistry, 2019, 294, 16451-16464
2.267Citations (PDF)
38Structures of fibrils formed by α-synuclein hereditary disease mutant H50Q reveal new polymorphs8.8193Citations (PDF)
39Non-proteinaceous hydrolase comprised of a phenylalanine metallo-supramolecular amyloid-like structure
Nature Catalysis, 2019, 2, 977-985
40.9214Citations (PDF)
40Cryo-EM structures of four polymorphic TDP-43 amyloid cores8.8262Citations (PDF)
41Structure-Based Peptide Inhibitor Design of Amyloid-β Aggregation3.481Citations (PDF)
42A pair of peptides inhibits seeding of the hormone transporter transthyretin into amyloid fibrils
Journal of Biological Chemistry, 2019, 294, 6130-6141
2.249Citations (PDF)
43Mechanically rigid supramolecular assemblies formed from an Fmoc-guanine conjugated peptide nucleic acid13.737Citations (PDF)
44Atomic structures of corkscrew‐forming segments of SOD1 reveal varied oligomer conformations
Protein Science, 2018, 27, 1231-1242
5.930Citations (PDF)
45Crystal structures of amyloidogenic segments of human transthyretin
Protein Science, 2018, 27, 1295-1303
5.922Citations (PDF)
46Distal amyloid β‐protein fragments template amyloid assembly
Protein Science, 2018, 27, 1181-1190
5.910Citations (PDF)
47Common fibrillar spines of amyloid-β and human islet amyloid polypeptide revealed by microelectron diffraction and structure-based inhibitors
Journal of Biological Chemistry, 2018, 293, 2888-2902
2.262Citations (PDF)
48Sub-ångström cryo-EM structure of a prion protofibril reveals a polar clasp8.8102Citations (PDF)
49Atomic-level evidence for packing and positional amyloid polymorphism by segment from TDP-43 RRM28.8118Citations (PDF)
50Ultrafast Time-Resolved Studies on Fluorescein for Recognition Strands Architecture in Amyloid Fibrils2.712Citations (PDF)
51Amyloid nomenclature 2018: recommendations by the International Society of Amyloidosis (ISA) nomenclature committee4.6529Citations (PDF)
52Inhibiting amyloid-β cytotoxicity through its interaction with the cell surface receptor LilrB2 by structure-based design
Nature Chemistry, 2018, 10, 1213-1221
18.759Citations (PDF)
53Identification of two principal amyloid-driving segments in variable domains of Ig light chains in systemic light-chain amyloidosis
Journal of Biological Chemistry, 2018, 293, 19659-19671
2.238Citations (PDF)
54TDP-43 and RNA form amyloid-like myo-granules in regenerating muscle
Nature, 2018, 563, 508-513
37.9218Citations (PDF)
55Cryo-EM of full-length α-synuclein reveals fibril polymorphs with a common structural kernel13.7629Citations (PDF)
56Assessment of the effects of transthyretin peptide inhibitors in Drosophila models of neuropathic ATTR
Neurobiology of Disease, 2018, 120, 118-125
5.116Citations (PDF)
57Atomic structures of TDP-43 LCD segments and insights into reversible or pathogenic aggregation8.8263Citations (PDF)
58How Hard It Is Seeing What Is in Front of Your Eyes
Cell, 2018, 174, 8-11
33.65Citations (PDF)
59Amyloid seeding of transthyretin by ex vivo cardiac fibrils and its inhibition7.599Citations (PDF)
60Atomic insights into the genesis of cellular filaments by globular proteins8.89Citations (PDF)
61Toward the Atomic Structure of PrPSc7.223Citations (PDF)
62Structural Studies of Amyloid Proteins at the Molecular Level17.4527Citations (PDF)
63Atomic-resolution structures from fragmented protein crystals with the cryoEM method MicroED
Nature Methods, 2017, 14, 399-402
24.6185Citations (PDF)
64Flow‐aligned, single‐shot fiber diffraction using a femtosecond X‐ray free‐electron laser
Cytoskeleton, 2017, 74, 472-481
1.516Citations (PDF)
65Asparagine and glutamine ladders promote cross-species prion conversion
Journal of Biological Chemistry, 2017, 292, 19076-19086
2.232Citations (PDF)
66Atomic structure of a toxic, oligomeric segment of SOD1 linked to amyotrophic lateral sclerosis (ALS)7.5127Citations (PDF)
67Propagation of Tau Aggregates and Neurodegeneration11.4616Citations (PDF)
68Taking the measure of MicroED6.441Citations (PDF)
69Structure-based inhibitors of tau aggregation
Nature Chemistry, 2017, 10, 170-176
18.7332Citations (PDF)
70De novo phasing with X-ray laser reveals mosquito larvicide BinAB structure
Nature, 2016, 539, 43-47
37.9113Citations (PDF)
71The formation, function and regulation of amyloids: insights from structural biology
Journal of Internal Medicine, 2016, 280, 164-176
7.364Citations (PDF)
72Ab initio structure determination from prion nanocrystals at atomic resolution by MicroED7.5109Citations (PDF)
73The activities of amyloids from a structural perspective
Nature, 2016, 539, 227-235
37.9491Citations (PDF)
74Structures of EccB1 and EccD1 from the core complex of the mycobacterial ESX-1 type VII secretion system1.835Citations (PDF)
75Ketones block amyloid entry and improve cognition in an Alzheimer's model
Neurobiology of Aging, 2016, 39, 25-37
3.4144Citations (PDF)
76Crystal Structures of IAPP Amyloidogenic Segments Reveal a Novel Packing Motif of Out-of-Register Beta Sheets
Journal of Physical Chemistry B, 2016, 120, 5810-5816
2.766Citations (PDF)
77A Designed Inhibitor of p53 Aggregation Rescues p53 Tumor Suppression in Ovarian Carcinomas
Cancer Cell, 2016, 29, 90-103
33.0330Citations (PDF)
78Amyloid β-Protein C-Terminal Fragments: Formation of Cylindrins and β-Barrels15.0105Citations (PDF)
79Targeting Aggregation of Wilde-Type p53 and Mutant p53 with ReACp53 As a Novel Therapeutic Concept for AML
Blood, 2016, 128, 3944-3944
5.02Citations (PDF)
80Indexing amyloid peptide diffraction from serial femtosecond crystallography: new algorithms for sparse patterns3.129Citations (PDF)
81Toxicity of Eosinophil MBP Is Repressed by Intracellular Crystallization and Promoted by Extracellular Aggregation
Molecular Cell, 2015, 57, 1011-1021
13.3112Citations (PDF)
82Uncovering the Mechanism of Aggregation of Human Transthyretin
Journal of Biological Chemistry, 2015, 290, 28932-28943
2.2156Citations (PDF)
83Structure of the toxic core of α-synuclein from invisible crystals
Nature, 2015, 525, 486-490
37.9636Citations (PDF)
84The Amyloid State of Proteins
FASEB Journal, 2015, 29,
0.61Citations (PDF)
85Aggregation-triggering segments of SOD1 fibril formation support a common pathway for familial and sporadic ALS7.5139Citations (PDF)
86Structure-Based Design of Functional Amyloid Materials15.0113Citations (PDF)
87Formation of Amyloid Fibers by Monomeric Light Chain Variable Domains
Journal of Biological Chemistry, 2014, 289, 27513-27525
2.252Citations (PDF)
88The structured core domain of αB-crystallin can prevent amyloid fibrillation and associated toxicity7.5211Citations (PDF)
89Designed amyloid fibers as materials for selective carbon dioxide capture7.5111Citations (PDF)
90Factors That Drive Peptide Assembly from Native to Amyloid Structures: Experimental and Theoretical Analysis of [Leu-5]-Enkephalin Mutants
Journal of Physical Chemistry B, 2014, 118, 7247-7256
2.727Citations (PDF)
91Protein crystal structure obtained at 2.9 Å resolution from injecting bacterial cells into an X-ray free-electron laser beam7.5122Citations (PDF)
92A Proposed Mechanism for the Promotion of Prion Conversion Involving a Strictly Conserved Tyrosine Residue in the β2-α2 Loop of PrPC
Journal of Biological Chemistry, 2014, 289, 10660-10667
2.238Citations (PDF)
93Comparative Proteomics Identifies the Cell-Associated Lethality of M. tuberculosis RelBE-like Toxin-Antitoxin Complexes
Structure, 2013, 21, 627-637
3.836Citations (PDF)
94Heterologous Expression of Mycobacterial Esx Complexes in Escherichia coli for Structural Studies Is Facilitated by the Use of Maltose Binding Protein Fusions
PLoS ONE, 2013, 8, e81753
2.322Citations (PDF)
95Out-of-register β-sheets suggest a pathway to toxic amyloid aggregates7.5196Citations (PDF)
96The crystal structure of the Rv0301‐Rv0300 VapBC‐3 toxin—antitoxin complex from M. tuberculosis reveals a Mg2+ ion in the active site and a putative RNA‐binding site
Protein Science, 2012, 21, 1754-1767
5.962Citations (PDF)
97Amyloid β-sheet mimics that antagonize protein aggregation and reduce amyloid toxicity
Nature Chemistry, 2012, 4, 927-933
18.7250Citations (PDF)
98The Amyloid State of Proteins in Human Diseases
Cell, 2012, 148, 1188-1203
33.61,725Citations (PDF)
99Cell-free Formation of RNA Granules: Low Complexity Sequence Domains Form Dynamic Fibers within Hydrogels
Cell, 2012, 149, 753-767
33.62,025Citations (PDF)
100Ribonuclease A suggests how proteins self‐chaperone against amyloid fiber formation
Protein Science, 2012, 21, 26-37
5.928Citations (PDF)
101Toxic fibrillar oligomers of amyloid-β have cross-β structure7.5306Citations (PDF)
102Macrocyclic β-Sheet Peptides That Inhibit the Aggregation of a Tau-Protein-Derived Hexapeptide15.0127Citations (PDF)
103Atomic Structures Suggest Determinants of Transmission Barriers in Mammalian Prion Disease
Biochemistry, 2011, 50, 2456-2463
2.454Citations (PDF)
104Structure-based design of non-natural amino-acid inhibitors of amyloid fibril formation
Nature, 2011, 475, 96-100
37.9447Citations (PDF)
105The TB Structural Genomics Consortium: A decade of progress
Tuberculosis, 2011, 91, 155-172
1.941Citations (PDF)
106Characteristics of Amyloid-Related Oligomers Revealed by Crystal Structures of Macrocyclic β-Sheet Mimics15.088Citations (PDF)
107Molecular basis for amyloid-β polymorphism7.5405Citations (PDF)
108Structures of segments of α‐synuclein fused to maltose‐binding protein suggest intermediate states during amyloid formation
Protein Science, 2011, 20, 996-1004
5.941Citations (PDF)
109Towards a Pharmacophore for Amyloid
PLoS Biology, 2011, 9, e1001080
5.0197Citations (PDF)
110Multidimensional Structure–Activity Relationship of a Protein in Its Aggregated States
Angewandte Chemie, 2010, 122, 3996-4000
1.46Citations (PDF)
111Crystal structures of truncated alphaA and alphaB crystallins reveal structural mechanisms of polydispersity important for eye lens function
Protein Science, 2010, 19, 1031-1043
5.9283Citations (PDF)
112The crystal structure of the mycobacterium tuberculosis Rv3019c‐Rv3020c ESX complex reveals a domain‐swapped heterotetramer
Protein Science, 2010, 19, 1692-1703
5.930Citations (PDF)
113Identifying the amylome, proteins capable of forming amyloid-like fibrils7.5801Citations (PDF)
114X-ray Crystallographic Structure of an Artificial β-Sheet Dimer15.044Citations (PDF)
115Two Amyloid States of the Prion Protein Display Significantly Different Folding Patterns
Journal of Molecular Biology, 2010, 400, 908-921
4.169Citations (PDF)
116β2-microglobulin forms three-dimensional domain-swapped amyloid fibrils with disulfide linkages8.8115Citations (PDF)
117Structure and Proposed Activity of a Member of the VapBC Family of Toxin-Antitoxin Systems2.2128Citations (PDF)
118Short protein segments can drive a non-fibrillizing protein into the amyloid state2.6115Citations (PDF)
119Detecting coordinated regulation of multi-protein complexes using logic analysis of gene expression3.117Citations (PDF)
120Atomic structures of IAPP (amylin) fusions suggest a mechanism for fibrillation and the role of insulin in the process
Protein Science, 2009, 18, 1521-1530
5.9203Citations (PDF)
121Molecular mechanisms for protein-encoded inheritance8.8260Citations (PDF)
122Crystal structure of a major secreted protein of Mycobacterium tuberculosis-MPT63 at 1.5-Å resolution
Protein Science, 2009, 11, 2887-2893
5.926Citations (PDF)
123Structures of the two 3D domain-swapped RNase A trimers
Protein Science, 2009, 11, 371-380
5.979Citations (PDF)
124Molecular basis for insulin fibril assembly7.5381Citations (PDF)
125Inferring molecular function: contributions from functional linkages
Trends in Genetics, 2008, 24, 587-590
9.85Citations (PDF)
126The structure of a fibril‐forming sequence, NNQQNY, in the context of a globular fold
Protein Science, 2008, 17, 1617-1623
5.921Citations (PDF)
127Atomic structure of the cross‐β spine of islet amyloid polypeptide (amylin)
Protein Science, 2008, 17, 1467-1474
5.9327Citations (PDF)
128A Double S Shape Provides the Structural Basis for the Extraordinary Binding Specificity of Dscam Isoforms
Cell, 2008, 134, 1007-1018
33.6118Citations (PDF)
129Expanding metabolism for biosynthesis of nonnatural alcohols7.5399Citations (PDF)
130Bacterial Inclusion Bodies Contain Amyloid-Like Structure
PLoS Biology, 2008, 6, e195
5.0206Citations (PDF)
131Using inferred residue contacts to distinguish between correct and incorrect protein models
Bioinformatics, 2008, 24, 1575-1582
4.744Citations (PDF)
132Identifying Cognate Binding Pairs among a Large Set of Paralogs: The Case of PE/PPE Proteins of Mycobacterium tuberculosis
PLoS Computational Biology, 2008, 4, e1000174
3.142Citations (PDF)
133Annotating proteins with generalized functional linkages7.514Citations (PDF)
134The Mechanism of the Amyloidogenic Conversion of T7 Endonuclease I
Journal of Biological Chemistry, 2007, 282, 14968-14974
2.27Citations (PDF)
135Draft Crystal Structure of the Vault Shell at 9-Å Resolution
PLoS Biology, 2007, 5, e318
5.047Citations (PDF)
136The MiSink Plugin: Cytoscape as a graphical interface to the Database of Interacting Proteins
Bioinformatics, 2007, 23, 2193-2195
4.720Citations (PDF)
137The Structure and Computational Analysis of Mycobacterium tuberculosis Protein CitE Suggest a Novel Enzymatic Function
Journal of Molecular Biology, 2007, 365, 275-283
4.138Citations (PDF)
138Cooperative hydrogen bonding in amyloid formation
Protein Science, 2007, 16, 761-764
5.9149Citations (PDF)
139The Sorcerer II Global Ocean Sampling Expedition: Expanding the Universe of Protein Families
PLoS Biology, 2007, 5, e16
5.0762Citations (PDF)
140Atomic structures of amyloid cross-β spines reveal varied steric zippers
Nature, 2007, 447, 453-457
37.92,265Citations (PDF)
141The origin of protein interactions and allostery in colocalization
Nature, 2007, 450, 983-990
37.9377Citations (PDF)
142Functional Linkages Can Reveal Protein Complexes for Structure Determination
Structure, 2007, 15, 1079-1089
3.82Citations (PDF)
143A Novel Inhibitor of Mycobacterium tuberculosis Pantothenate Synthetase0.567Citations (PDF)
144Toward rational protein crystallization: A Web server for the design of crystallizable protein variants
Protein Science, 2007, 16, 1569-1576
5.9270Citations (PDF)
145Unique Transcriptome Signature of Mycobacterium tuberculosis in Pulmonary Tuberculosis
Infection and Immunity, 2006, 74, 1233-1242
2.7242Citations (PDF)
146Structural Models of Amyloid‐Like Fibrils5.3194Citations (PDF)
147The Structural Biology of Protein Aggregation Diseases:  Fundamental Questions and Some Answers17.0178Citations (PDF)
148Crystal Structure of the Pantothenate Synthetase fromMycobacterium tuberculosis, Snapshots of the Enzyme in Action†,‡
Biochemistry, 2006, 45, 1554-1561
2.452Citations (PDF)
149Mycobacterium tuberculosis gene expression profiling within the context of protein networks
Microbes and Infection, 2006, 8, 747-757
2.466Citations (PDF)
150Recent atomic models of amyloid fibril structure6.4376Citations (PDF)
151Deposition Diseases and 3D Domain Swapping
Structure, 2006, 14, 811-824
3.8211Citations (PDF)
152Toward the structural genomics of complexes: Crystal structure of a PE/PPE protein complex from Mycobacterium tuberculosis7.5713Citations (PDF)
153Bioinformatic challenges for the next decade(s)3.710Citations (PDF)
154The 3D profile method for identifying fibril-forming segments of proteins7.5398Citations (PDF)
155Runaway domain swapping in amyloid-like fibrils of T7 endonuclease I7.591Citations (PDF)
156A systematic screen of beta2-microglobulin and insulin for amyloid-like segments7.5131Citations (PDF)
157Detection of parallel functional modules by comparative analysis of genome sequences
Nature Biotechnology, 2005, 23, 253-260
29.830Citations (PDF)
158Structure of the cross-β spine of amyloid-like fibrils
Nature, 2005, 435, 773-778
37.92,200Citations (PDF)
159Amyloid-like fibrils of ribonuclease A with three-dimensional domain-swapped and native-like structure
Nature, 2005, 437, 266-269
37.9245Citations (PDF)
160Utilizing logical relationships in genomic data to decipher cellular processes
FEBS Journal, 2005, 272, 5110-5118
5.333Citations (PDF)
161Inference of Protein Function from Protein Structure
Structure, 2005, 13, 121-130
3.8179Citations (PDF)
162Crystal Structure of a RuBisCO-like Protein from the Green Sulfur Bacterium Chlorobium tepidum
Structure, 2005, 13, 779-789
3.834Citations (PDF)
163The 1.70 Å X-ray crystal structure ofMycobacterium tuberculosisphosphoglycerate mutase3.110Citations (PDF)
164Regulation by Oligomerization in a Mycobacterial Folate Biosynthetic Enzyme4.143Citations (PDF)
165Title is missing!
Genome Biology, 2005, 6, R89
12.2131Citations (PDF)
166A Web-Based Comparative Genomics Tutorial for Investigating Microbial Genomes0.22Citations (PDF)
167An amyloid-forming segment of  2-microglobulin suggests a molecular model for the fibril7.5229Citations (PDF)
168The Database of Interacting Proteins: 2004 update
Nucleic Acids Research, 2004, 32, 449D-451
15.52,002Citations (PDF)
169Gram-positive DsbE Proteins Function Differently from Gram-negative DsbE Homologs
Journal of Biological Chemistry, 2004, 279, 3516-3524
2.281Citations (PDF)
170In silico simulation of biological network dynamics
Nature Biotechnology, 2004, 22, 1017-1019
29.861Citations (PDF)
171PFIT and PFRIT: Bioinformatic algorithms for detecting glycosidase function from structure and sequence
Protein Science, 2004, 13, 221-229
5.91Citations (PDF)
172DPANN: Improved sequence to structure alignments following fold recognition2.69Citations (PDF)
173A Web-Based Comparative Genomics Tutorial for Investigating Microbial Genomes0.21Citations (PDF)
174Computational methods of analysis of protein–protein interactions6.4136Citations (PDF)
175The TB structural genomics consortium: a resource for Mycobacterium tuberculosis biology
Tuberculosis, 2003, 83, 223-249
1.996Citations (PDF)
176Structure of superoxide dismutase fromPyrobaculum aerophilumpresents a challenging case in molecular replacement with multiple molecules, pseudo-symmetry and twinning3.117Citations (PDF)
177Seeded conversion of recombinant prion protein to a disulfide-bonded oligomer by a reduction-oxidation process8.8144Citations (PDF)
178The oligomerization and ligand-binding properties of Sm-like archaeal proteins (SmAPs)
Protein Science, 2003, 12, 832-847
5.947Citations (PDF)
179Crystal structures of a pantothenate synthetase fromM. tuberculosisand its complexes with substrates and a reaction intermediate
Protein Science, 2003, 12, 1097-1108
5.987Citations (PDF)
180Role of the C-Terminal 28 Residues of β2-Microglobulin in Amyloid Fibril Formation
Biochemistry, 2003, 42, 13536-13540
2.432Citations (PDF)
181Granulysin Crystal Structure and a Structure-derived Lytic Mechanism
Journal of Molecular Biology, 2003, 325, 355-365
4.1151Citations (PDF)
182Structure and Function of an Archaeal Homolog of Survival Protein E (SurEα): An Acid Phosphatase with Purine Nucleotide Specificity
Journal of Molecular Biology, 2003, 326, 1559-1575
4.132Citations (PDF)
183Cross-beta Order and Diversity in Nanocrystals of an Amyloid-forming Peptide
Journal of Molecular Biology, 2003, 330, 1165-1175
4.1105Citations (PDF)
184Selective Dimerization of a C2H2 Zinc Finger Subfamily
Molecular Cell, 2003, 11, 459-470
13.3123Citations (PDF)
185The primary mechanism of attenuation of bacillus Calmette-Guerin is a loss of secreted lytic function required for invasion of lung interstitial tissue7.5717Citations (PDF)
186Title is missing!
Genome Biology, 2003, 4, R59
12.2105Citations (PDF)
187Visualization and interpretation of protein networks in Mycobacterium tuberculosis based on hierarchical clustering of genome-wide functional linkage maps
Nucleic Acids Research, 2003, 31, 7099-7109
15.555Citations (PDF)
188The discovery of the  -helix and  -sheet, the principal structural features of proteins7.5275Citations (PDF)
189Structure and assembly of an augmented Sm-like archaeal protein 14-mer7.551Citations (PDF)
190Genomic evidence that the intracellular proteins of archaeal microbes contain disulfide bonds7.5176Citations (PDF)
191The directional atomic solvation energy: An atom-based potential for the assignment of protein sequences to known folds7.529Citations (PDF)
192Protein Interactions3.0577Citations (PDF)
193Describing Biological Protein Interactions in Terms of Protein States and State Transitions3.035Citations (PDF)
194GXXXG and AXXXA:  Common α-Helical Interaction Motifs in Proteins, Particularly in Extremophiles†
Biochemistry, 2002, 41, 5990-5997
2.4195Citations (PDF)
195Multicopy Crystallographic Refinement of a Relaxed Glutamine Synthetase fromMycobacterium tuberculosisHighlights Flexible Loops in the Enzymatic Mechanism and Its Regulation†
Biochemistry, 2002, 41, 9863-9872
2.486Citations (PDF)
196Thiol−Disulfide Exchange in an Immunoglobulin-like Fold:  Structure of the N-Terminal Domain of DsbD†,‡
Biochemistry, 2002, 41, 6920-6927
2.469Citations (PDF)
197DIP, the Database of Interacting Proteins: a research tool for studying cellular networks of protein interactions
Nucleic Acids Research, 2002, 30, 303-305
15.51,573Citations (PDF)
1983D domain swapping: As domains continue to swap
Protein Science, 2002, 11, 1285-1299
5.9681Citations (PDF)
199A Hierarchic Approach to the Design of Hexameric Helical Barrels
Journal of Molecular Biology, 2002, 319, 243-253
4.132Citations (PDF)
200GXXXG and GXXXA Motifs Stabilize FAD and NAD(P)-binding Rossmann Folds Through Cα–H⋯O Hydrogen Bonds and van der Waals Interactions4.1188Citations (PDF)
201Structure of a Nudix protein fromPyrobaculum aerophilumreveals a dimer with two intersubunit β-sheets3.116Citations (PDF)
202John T. Edsall as tutor and teacher
Biophysical Chemistry, 2002, 100, 91-93
2.10Citations (PDF)
203The Crystal Structure of Phosphinothricin in the Active Site of Glutamine Synthetase Illuminates the Mechanism of Enzymatic Inhibition
Biochemistry, 2001, 40, 1903-1912
2.4169Citations (PDF)
204An interfacial mechanism and a class of inhibitors inferred from two crystal structures of the Mycobacterium tuberculosis 30 kda major secretory protein (antigen 85B), a mycolyl transferase11Edited by I. A. Wilson
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205Three-dimensional cluster analysis identifies interfaces and functional residue clusters in proteins11Edited by J. Thornton
Journal of Molecular Biology, 2001, 307, 1487-1502
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2063D Structure and Significance of the GΦXXG Helix Packing Motif in Tetramers of the E1β Subunit of Pyruvate Dehydrogenase from the ArcheonPyrobaculum aerophilum†,‡
Biochemistry, 2001, 40, 14484-14492
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207Mining literature for protein-protein interactions
Bioinformatics, 2001, 17, 359-363
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208Protein interaction databases6.891Citations (PDF)
209Sequence-structure analysis of FAD-containing proteins
Protein Science, 2001, 10, 1712-1728
5.9458Citations (PDF)
210Title is missing!
Nature Structural Biology, 2001, 8, 211-214
11.0249Citations (PDF)
211Bioinformatic identification of potential autocrine signaling loops in cancers from gene expression profiles
Nature Genetics, 2001, 29, 295-300
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212Design of three-dimensional domain-swapped dimers and fibrous oligomers7.5171Citations (PDF)
213Identification of a Heregulin Binding Site in HER3 Extracellular Domain
Journal of Biological Chemistry, 2001, 276, 44266-44274
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214DIP: The Database of Interacting Proteins: 2001 update
Nucleic Acids Research, 2001, 29, 239-241
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215An amyloid-forming peptide from the yeast prion Sup35 reveals a dehydrated  -sheet structure for amyloid7.5398Citations (PDF)
216The crystal structure of a heptameric archaeal Sm protein: Implications for the eukaryotic snRNP core7.5102Citations (PDF)
217Motif‐based fold assignment
Protein Science, 2001, 10, 2460-2469
5.98Citations (PDF)
218α-L-Iduronidase forms semi-crystalline spherulites with amyloid-like properties3.123Citations (PDF)
219Protein function in the post-genomic era
Nature, 2000, 405, 823-826
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220Structure–function relationships of glutamine synthetases
BBA - Proteins and Proteomics, 2000, 1477, 122-145
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221Localizing proteins in the cell from their phylogenetic profiles7.5210Citations (PDF)
222DIP: the Database of Interacting Proteins
Nucleic Acids Research, 2000, 28, 289-291
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223The crystal structure of D-lactate dehydrogenase, a peripheral membrane respiratory enzyme7.5115Citations (PDF)
224Selecting protein targets for structural genomics of Pyrobaculum aerophilum: Validating automated fold assignment methods by using binary hypothesis testing7.533Citations (PDF)
225The 1.7 Å crystal structure of BPI: a study of how two dissimilar amino acid sequences can adopt the same fold 1 1Edited by D. Rees
Journal of Molecular Biology, 2000, 299, 1019-1034
4.153Citations (PDF)
226Characterization of High-Order Diphtheria Toxin Oligomers†
Biochemistry, 2000, 39, 15901-15909
2.424Citations (PDF)
227Heregulin Reverses the Oligomerization of HER3†
Biochemistry, 2000, 39, 8503-8511
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228Erratum. Finding families for genomic ORFans
Bioinformatics, 1999, 15, 864-864
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229Finding families for genomic ORFans
Bioinformatics, 1999, 15, 759-762
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230Analysis of heregulin symmetry by weighted evolutionary tracing2.670Citations (PDF)
231Preliminary crystallographic studies on glutamine synthetase from Mycobacterium tuberculosis3.15Citations (PDF)
232A combined algorithm for genome-wide prediction of protein function
Nature, 1999, 402, 83-86
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233Packed protein bilayers in the 0.90 å resolution structure of a designed alpha helical bundle
Protein Science, 1999, 8, 1400-1409
5.936Citations (PDF)
234Centrosymmetric bilayers in the 0.75 å resolution structure of a designed alpha‐helical peptide, D, L‐Alpha‐1
Protein Science, 1999, 8, 1410-1422
5.945Citations (PDF)
235The three-dimensional structure of human bactericidal/permeability-increasing protein
Biochemical Pharmacology, 1999, 57, 225-229
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236A Structure-Based Mechanism for Copper−Zinc Superoxide Dismutase†,‡
Biochemistry, 1999, 38, 2167-2178
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237Assigning protein functions by comparative genome analysis: Protein phylogenetic profiles7.51,727Citations (PDF)
238Predicting structures for genome proteins6.452Citations (PDF)
239Chicken Prion Tandem Repeats Form a Stable, Protease-Resistant Domain
Biochemistry, 1999, 38, 667-676
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240Transproteomic evidence of a loop-deletion mechanism for enhancing protein thermostability
Journal of Molecular Biology, 1999, 290, 595-604
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241A census of protein repeats
Journal of Molecular Biology, 1999, 293, 151-160
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242Subunit asymmetry in the three‐dimensional structure of a human CuZnSOD mutant found in familial amyotrophic lateral sclerosis
Protein Science, 1998, 7, 545-555
5.9107Citations (PDF)
243The BPI/LBP family of proteins: A structural analysis of conserved regions
Protein Science, 1998, 7, 906-914
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244Detecting distant relatives of mammalian LPS‐binding and lipid transport proteins
Protein Science, 1998, 7, 1643-1646
5.942Citations (PDF)
245Cytotoxicity and Specificity of Directed Toxins Composed of Diphtheria Toxin and the EGF-like Domain of Heregulin β1†
Biochemistry, 1998, 37, 3220-3228
2.422Citations (PDF)
246The crystal structure of a 3D domain-swapped dimer of RNase A at a 2.1-A resolution7.5192Citations (PDF)
247Assigning folds to the proteins encoded by the genome of Mycoplasma genitalium7.5123Citations (PDF)
248Oligomerization of a 45 Kilodalton Fragment of Diphtheria Toxin at pH 5.0 to a Molecule of 20−24 Subunits†
Biochemistry, 1997, 36, 15201-15207
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249Crystal Structure of Nucleotide-Free Diphtheria Toxin,
Biochemistry, 1997, 36, 481-488
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250A 3D-1D substitution matrix for protein fold recognition that includes predicted secondary structure of the sequence
Journal of Molecular Biology, 1997, 267, 1026-1038
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251Charges, hydrogen bonds, and correlated motions in the 1 å resolution refined structure of the mating pheromone Er-1 from Euplotes raikovi
Journal of Molecular Biology, 1997, 273, 479-500
4.111Citations (PDF)
252The crystal structure of the designed trimeric coiled coil coil‐VaLd: Implications for engineering crystals and supramolecular assemblies
Protein Science, 1997, 6, 80-88
5.9142Citations (PDF)
253Fold assignments for amino acid sequences of the CASP2 experiment2.619Citations (PDF)
254Unusual conformation of nicotinamide adenine dinucleotide (NAD) bound to diphtheria toxin: A comparison with NAD bound to the oxidoreductase enzymes
Protein Science, 1997, 6, 2084-2096
5.957Citations (PDF)
255Crystal Structure of Diphtheria Toxin Bound to Nicotinamide Adenine Dinucleotide†
Biochemistry, 1996, 35, 1137-1149
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256Assigning amino acid sequences to 3‐dimensional protein folds
FASEB Journal, 1996, 10, 126-136
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257Crystallization of a designed peptide from a molten globule ensemble
Folding & Design, 1996, 1, 57-64
4.226Citations (PDF)
258A study of combined structure/sequence profiles
Folding & Design, 1996, 1, 451-461
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259Solution structure of protegrin-1, a broad-spectrum antimicrobial peptide from porcine leukocytes
Chemistry and Biology, 1996, 3, 543-550
4.7253Citations (PDF)
260A Challenging Case for Protein Crystal Structure Determination: the Mating Pheromone Er-1 fromEuplotes raikovi3.128Citations (PDF)
261Protein fold recognition using sequence‐derived predictions
Protein Science, 1996, 5, 947-955
5.9301Citations (PDF)
262A missing link in cupredoxins: Crystal structure of cucumber stellacyanin at 1.6 Å resolution
Protein Science, 1996, 5, 2175-2183
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263A cooperative model for receptor recognition and cell adhesion: evidence from the molecular packing in the 1.6-A crystal structure of the pheromone Er-1 from the ciliated protozoan Euplotes raikovi.7.558Citations (PDF)
264Local moves: An efficient algorithm for simulation of protein folding2.664Citations (PDF)
265Crystallization of the chaperone protein SecB
Protein Science, 1995, 4, 1651-1653
5.94Citations (PDF)
266Discovery of the ammonium substrate site on glutamine synthetase, A third cation binding site
Protein Science, 1995, 4, 2358-2365
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2673D domain swapping: A mechanism for oligomer assembly
Protein Science, 1995, 4, 2455-2468
5.9773Citations (PDF)
268Inverse protein folding by the residue pair preference profile method: estimating the correctness of alignments of structurally compatible sequences2.625Citations (PDF)
269Structure of the Isolated Catalytic Domain of Diphtheria Toxin
Biochemistry, 1995, 34, 773-781
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270Domain swapping: entangling alliances between proteins.7.5522Citations (PDF)
271Crystal structure of the unactivated ribulose 1, 5‐bisphosphate carboxylase/oxygenase complexed with a transition state analog, 2‐carboxy‐D‐arabinitol 1, 5‐bisphosphate
Protein Science, 1994, 3, 64-69
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272The three‐dimensional profile method using residue preference as a continuous function of residue environment
Protein Science, 1994, 3, 687-695
5.939Citations (PDF)
273Refined structure of dimeric diphtheria toxin at 2.0 Å resolution
Protein Science, 1994, 3, 1444-1463
5.9187Citations (PDF)
274Refined structure of monomelic diphtheria toxin at 2.3 Å resolution
Protein Science, 1994, 3, 1464-1475
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275Max Perutz's achievements: How did he do it?
Protein Science, 1994, 3, 1625-1628
5.917Citations (PDF)
276Structural model for the reaction mechanism of glutamine synthetase, based on five crystal structures of enzyme-substrate complexes
Biochemistry, 1994, 33, 675-681
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277Solid-state phase transition in the crystal structure of ribulose 1,5-bisphosphate carboxylase/oxygenase3.14Citations (PDF)
278Fusion proteins as tools for crystallization: the lactose permease from Escherichia coli3.149Citations (PDF)
279Crystallization studies of the human immunodeficiency virus (HIV-1) Tat protein and its trans-activation response element (TAR) RNA3.10Citations (PDF)
280Interactions of Nucleotides with Fully Unadenylylated Glutamine Synthetase from Salmonella typhimurium
Biochemistry, 1994, 33, 11184-11188
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281Dynamic Transitions of the Transmembrane Domain of Diphtheria Toxin: Disulfide Trapping and Fluorescence Proximity Studies
Biochemistry, 1994, 33, 11254-11263
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282An evolutionary approach to folding small alpha-helical proteins that uses sequence information and an empirical guiding fitness function.7.5170Citations (PDF)
283Participation of lysine 516 and phenylalanine 530 of diphtheria toxin in receptor recognition.
Journal of Biological Chemistry, 1994, 269, 29077-29084
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284Extending the diffraction limit of protein crystals: The example of glutamine synthetase from Salmonella typhimurium in the presence of its cofactor ATP
Protein Science, 1993, 2, 470-471
5.98Citations (PDF)
285Crystal structure of activated tobacco rubisco complexed with the reaction‐intermediate analogue 2‐carboxy‐arabinitol 1, 5‐bisphosphate
Protein Science, 1993, 2, 1136-1146
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286Defensins promote fusion and lysis of negatively charged membranes
Protein Science, 1993, 2, 1301-1312
5.9167Citations (PDF)
287Crystal Structure of Canine and Bovine Granulocyte-Colony Stimulating Factor (G-CSF)
Journal of Molecular Biology, 1993, 234, 640-653
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288A model for oxidative modification of glutamine synthetase, based on crystal structures of mutant H269N and the oxidized enzyme
Biochemistry, 1993, 32, 7999-8003
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289Inverted protein structure prediction6.473Citations (PDF)
290Three-dimensional profiles from residue-pair preferences: identification of sequences with beta/alpha-barrel fold.7.595Citations (PDF)
291Formation of the active site of ribulose-1,5-bisphosphate carboxylase/oxygenase by a disorder-order transition from the unactivated to the activated form.7.567Citations (PDF)
292Feedback inhibition of fully unadenylylated glutamine synthetase from Salmonella typhimurium by glycine, alanine, and serine.7.575Citations (PDF)
293The structure of granulocyte-colony-stimulating factor and its relationship to other growth factors.7.5244Citations (PDF)
2943D Profiles: Principles and Applications2.60Citations (PDF)
295pH-dependent insertion of proteins into membranes: B-chain mutation of diphtheria toxin that inhibits membrane translocation, Glu-349----Lys.7.593Citations (PDF)
296Three-dimensional profiles for analysing protein sequence–structure relationships
Faraday Discussions, 1992, 93, 25-34
3.030Citations (PDF)
297A cDNA that suppresses MPP+ toxicity encodes a vesicular amine transporter
Cell, 1992, 70, 539-551
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298Atomic solvation parameters applied to molecular dynamics of proteins in solution
Protein Science, 1992, 1, 227-235
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299Thermodynamics of melittin tetramerization determined by circular dichroism and implications for protein folding
Protein Science, 1992, 1, 641-653
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300X‐ray grade crystals of a designed α‐helical coiled coil
Protein Science, 1992, 1, 956-957
5.911Citations (PDF)
301Crystallization of proton channel peptides
Protein Science, 1992, 1, 1073-1077
5.99Citations (PDF)
302A molecular model for membrane fusion based on solution studies of an amphiphilic peptide from HIV gp41
Protein Science, 1992, 1, 1454-1464
5.943Citations (PDF)
303Assessment of protein models with three-dimensional profiles
Nature, 1992, 356, 83-85
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304The crystal structure of diphtheria toxin
Nature, 1992, 357, 216-222
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305Crystal structure of the unactivated form of ribulose-1,5-bisphosphate carboxylase/oxygenase from tobacco refined at 2.0-A resolution.
Journal of Biological Chemistry, 1992, 267, 16980-16989
2.267Citations (PDF)
306Crystallization of diphtheria toxin
Journal of Molecular Biology, 1991, 222, 861-864
4.112Citations (PDF)
307Secondary structure-based profiles: Use of structure-conserving scoring tables in searching protein sequence databases for structural similarities2.6164Citations (PDF)
308The most highly amphiphilic ?-helices include two amino acid segments in human immunodeficiency virus glycoprotein 41
Biopolymers, 1990, 29, 171-177
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309Protein design and redesign2.70Citations (PDF)
310Where metal ions bind in proteins.7.5330Citations (PDF)
311Cover credits6.72Citations (PDF)
312Crystallization of the Euplotes raikovi mating pheromone Er-14.112Citations (PDF)
313[9] Profile analysis
Methods in Enzymology, 1990, , 146-159
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314Protein crystallography: more surprises ahead6.716Citations (PDF)
315X-ray Grade Crystals of the Enzymatic Fragment of Diphtheria Toxin
Journal of Biological Chemistry, 1989, 264, 10402-10404
2.29Citations (PDF)
316Refined atomic model of glutamine synthetase at 3.5 Å resolution
Journal of Biological Chemistry, 1989, 264, 17681-17690
2.2131Citations (PDF)
317Profile scanning for three-dimensional structural patterns in protein sequences
Bioinformatics, 1988, 4, 61-66
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318B29: a member of the immunoglobulin gene superfamily exclusively expressed on beta-lineage cells.7.5191Citations (PDF)
319Profile analysis: detection of distantly related proteins.7.51,272Citations (PDF)
320A crystal form of ribulose-1,5-bisphosphate carboxylase/oxygenase from Nicotiana tabacum in the activated state
Journal of Molecular Biology, 1987, 197, 363-365
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321Sliding-layer conformational change limited by the quaternary structure of plant RuBisCO
Nature, 1987, 329, 354-356
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322Isomorphous replacement: effects of errors on the phase probability distribution0.222Citations (PDF)
323Some Evolutionary Relationships of the Primary Biological Catalysts Glutamine Synthetase and RuBisCO1.646Citations (PDF)
324Sequence of glutamine synthetase from Salmonella typhimurium and implications for the protein structure
Gene, 1986, 46, 297-300
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325Structural studies of Rubisco from tobacco2.015Citations (PDF)
326Hydrophobicity and amphiphilicity in protein structure3.078Citations (PDF)
327The design, synthesis, and crystallization of an alpha-helical peptide2.6139Citations (PDF)
328Solvation energy in protein folding and binding
Nature, 1986, 319, 199-203
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329Novel subunit—subunit interactions in the structure of glutamine synthetase
Nature, 1986, 323, 304-309
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330Isolation and crystallization of unadenylylated glutamine synthetase from Salmonella typhimurium2.816Citations (PDF)
331Formation and structure of 1-, 3- and 6+1-stranded helical cables of glutamine synthetase8.13Citations (PDF)
332Analysis of membrane and surface protein sequences with the hydrophobic moment plot
Journal of Molecular Biology, 1984, 179, 125-142
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333THREE-DIMENSIONAL STRUCTURE OF MEMBRANE AND SURFACE PROTEINS17.41,031Citations (PDF)
334The hydrophobic moment detects periodicity in protein hydrophobicity.7.5919Citations (PDF)
335Fatty acid transfer between multilamellar liposomes and fatty acid-binding proteins.
Journal of Biological Chemistry, 1984, 259, 13395-13401
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336Preliminary structural studies of ribulose-1,5-bisphosphate carboxylase/oxygenase from Rhodospirillum rubrum.
Journal of Biological Chemistry, 1984, 259, 11594-11596
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337Unbiased three-dimensional refinement of heavy-atom parameters by correlation of origin-removed Patterson functions0.2161Citations (PDF)
338Correlation of sequence hydrophobicities measures similarity in three-dimensional protein structure
Journal of Molecular Biology, 1983, 171, 479-488
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339Hydrophobic moments and protein structure1.4439Citations (PDF)
340The structure of melittin in the form I crystals and its implication for melittin's lytic and surface activities
Biophysical Journal, 1982, 37, 353-361
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341The helical hydrophobic moment: a measure of the amphiphilicity of a helix
Nature, 1982, 299, 371-374
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342X-ray grade crystals of diphtheria toxin.
Journal of Biological Chemistry, 1982, 257, 5283-5285
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343The structure of melittin. I. Structure determination and partial refinement.
Journal of Biological Chemistry, 1982, 257, 6010-6015
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344The structure of melittin. II. Interpretation of the structure.
Journal of Biological Chemistry, 1982, 257, 6016-6022
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345Refinements in the rapid isolation of glutamine synthetase from Escherichia coli2.84Citations (PDF)
346Gene segments encoding transmembrane carboxyl termini of immunoglobulin γ chains
Cell, 1981, 26, 19-27
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347A procedure for rapid isolation of both groE protein and glutamine synthetase from E. coli2.815Citations (PDF)
348Structural studies of bee melittin
Biophysical Journal, 1980, 32, 252-254
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349Melittin forms crystals which are suitable for high resolution X-ray structural analysis and which reveal a molecular 2-fold axis of symmetry.
Journal of Biological Chemistry, 1980, 255, 2578-2582
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350Interactions of melittin, a preprotein model, with detergents
Biochemistry, 1979, 18, 4177-4181
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351Limited proteolysis of glutamine synthetase is inhibited by glutamate and by feedback inhibitors.
Journal of Biological Chemistry, 1979, 254, 3129-3134
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352Localization of the site of adenylylation of glutamine synthetase by electron microscopy of an enzyme-antibody complex7.521Citations (PDF)
353Structure of ribulose-1,5-bisphosphate carboxylase-oxygenase: Form III crystals7.561Citations (PDF)
354Packing in a new crystalline form of glutamine synthetase from Escherichia coli
Journal of Molecular Biology, 1976, 100, 283-291
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355A high hydrate of acetylcholine chloride2.12Citations (PDF)
356Glutamine synthetase forms three- and seven-stranded helical cables.7.558Citations (PDF)
357Molecular Symmetry and Crystal Packing of E. coli Glutamine Synthetase1.68Citations (PDF)
358PtCl42−: A methionine-specific label for protein crystallography4.157Citations (PDF)
359Energy of Formation of D-Defects in Ice
Nature, 1963, 199, 368-369
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360Structure-based discovery of fiber-binding compounds that reduce the cytotoxicity of amyloid beta
ELife, 0, 2,
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361Inhibition by small-molecule ligands of formation of amyloid fibrils of an immunoglobulin light chain variable domain
ELife, 0, 4,
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362Atomic structures of fibrillar segments of hIAPP suggest tightly mated β-sheets are important for cytotoxicity
ELife, 0, 6,
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363Inhibition of synucleinopathic seeding by rationally designed inhibitors
ELife, 0, 9,
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364Structure-based inhibitors of amyloid beta core suggest a common interface with tau
ELife, 0, 8,
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365Inverse-freezing fluids as trauma attenuators for ballistic impacts6.10Citations (PDF)
366Genetic and structural aspects of amyloid diseases12.52Citations (PDF)
367Profile of David Baker, Demis Hassabis, and John Jumper: 2024 Nobel laureates in Chemistry7.51Citations (PDF)