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  1. Structural Basis for 2′-5′-Oligoadenylate Binding and Enzyme Activity of a Viral RNase L Antagonist
  2. Structural Plasticity of the Coiled-Coil Domain of Rotavirus NSP4
  3. Probing the Sites of Interactions of Rotaviral Proteins Involved in Replication
  4. Editorial overview: virus–glycan interactions and pathogenesis
  5. Structural basis of glycan interaction in gastroenteric viral pathogens
  6. Development of a Gaussia Luciferase-Based Human Norovirus Protease Reporter System: Cell Type-Specific Profile of Norwalk Virus Protease Precursors and Evaluation of Inhibitors
  7. Structural Analysis of Determinants of Histo-Blood Group Antigen Binding Specificity in Genogroup I Noroviruses
  8. The Influenza A Virus Protein NS1 Displays Structural Polymorphism
  9. A Novel Form of Rotavirus NSP2 and Phosphorylation-Dependent NSP2-NSP5 Interactions Are Associated with Viroplasm Assembly
  10. The VP8* Domain of Neonatal Rotavirus Strain G10P[11] Binds to Type II Precursor Glycans
  11. Structural Basis of Substrate Specificity and Protease Inhibition in Norwalk Virus
  12. Structural Basis of Substrate Specificity and Protease Inhibition in Norwalk Virus
  13. Structural Basis of Substrate Specificity and Protease Inhibition in Norwalk Virus
  14. Structural Basis of Substrate Specificity and Protease Inhibition in Norwalk Virus
  15. Structural Basis of Substrate Specificity and Protease Inhibition in Norwalk Virus
  16. Norwalk Virus Minor Capsid Protein VP2 Associates within the VP1 Shell Domain
  17. Structural Basis of Substrate Specificity and Protease Inhibition in Norwalk Virus
  18. Antibody Responses to Norovirus Genogroup GI.1 and GII.4 Proteases in Volunteers Administered Norwalk Virus
  19. Rotavirus non-structural proteins: structure and function
  20. Crystallographic Analysis of Rotavirus NSP2-RNA Complex Reveals Specific Recognition of 5' GG Sequence for RTPase Activity
  21. Cell attachment protein VP8* of a human rotavirus specifically interacts with A-type histo-blood group antigen
  22. Prestress Strengthens the Shell of Norwalk Virus Nanoparticles
  23. Norwalk Virus Assembly and Stability Monitored by Mass Spectrometry
  24. Rotavirus Cell Entry
  25. Rotavirus Architecture at Subnanometer Resolution
  26. Functional Maturation of the Human Antibody Response to Rotavirus
  27. Cryoelectron Microscopy Structures of Rotavirus NSP2-NSP5 and NSP2-RNA Complexes: Implications for Genome Replication
  28. Noroviruses everywhere: has something changed?
  29. Structure-Function Analysis of Rotavirus NSP2 Octamer by Using a Novel Complementation System
  30. X-Ray Crystallographic Structure of the Norwalk Virus Protease at 1.5-Å Resolution
  31. High-Resolution Molecular and Antigen Structure of the VP8* Core of a Sialic Acid-Independent Human Rotavirus Strain
  32. pH-Induced Conformational Change of the Rotavirus VP4 Spike: Implications for Cell Entry and Antibody Neutralization
  33. Macromolecular assemblages — putting the pieces together
  34. Emerging themes in rotavirus cell entry, genome organization, transcription and replication
  35. Role of the Histidine Triad-like Motif in Nucleotide Hydrolysis by the Rotavirus RNA-packaging Protein NSP2
  36. Structures of Rotavirus Reassortants Demonstrate Correlation of Altered Conformation of the VP4 Spike and Expression of Unexpected VP4-Associated Phenotypes
  37. IV, 1. Structure of norwalk virus: the prototype human calicivirus
  38. II, 1. Structural organization of the genome in rotavirus
  39. Inhibition of rotavirus replication by a non-neutralizing, rotavirus VP6–specific IgA mAb
  40. Inhibition of rotavirus replication by a non-neutralizing, rotavirus VP6–specific IgA mAb
  41. Rotavirus protein involved in genome replication and packaging exhibits a HIT-like fold
  42. Structural Requirements for the Assembly of Norwalk Virus-Like Particles
  43. Trypsin Cleavage Stabilizes the Rotavirus VP4 Spike
  44. Identification and Characterization of a Transcription Pause Site in Rotavirus
  45. The reversible condensation and expansion of the rotavirus genome
  46. Structural Studies of Recombinant Norwalk Capsids
  47. X-ray Crystallographic Structure of the Norwalk Virus Capsid
  48. Comparative structural analysis of transcriptionally competent and incompetent rotavirus-antibody complexes
  49. Three-dimensional visualization of mRNA release from actively transcribing rotavirus particles
  50. The structure of aquareovirus shows how the different geometries of the two layers of the capsid are reconciled to provide symmetrical interactions and stabilization
  51. Visualization of ordered genomic RNA and localization of transcriptional complexes in rotavirus
  52. Structure of Norwalk virus
  53. Rotavirus structure: interactions between the structural proteins
  54. Characterization of Rotavirus VP2 Particles
  55. Structure of Rotavirus
  56. Three-dimensional visualization of the rotavirus hemagglutinin structure
  57. Localization of VP4 neutralization sites in rotavirus by three-dimensional cryo-electron microscopy
  58. Three-dimensional structure of rotavirus
  59. Electron Cryomicroscopy and Computer Image Processing Techniques: Use in Structure-Function Studies of Rotavirus
  60. Rotavirus Proteins: Structure and Assembly