Functional and structural analysis of the sialic acid-binding domain of rotaviruses.

PubWeight™: 1.02‹?› | Rank: Top 15%

🔗 View Article (PMC 191955)

Published in J Virol on September 01, 1997

Authors

P Isa1, S López, L Segovia, C F Arias

Author Affiliations

1: Departamento de Genética y Fisiología Molecular, Universidad Nacional Autónoma de México, Cuernavaca, Morelos, Mexico. pavel@ibt.unam.mx

Articles citing this

The rhesus rotavirus VP4 sialic acid binding domain has a galectin fold with a novel carbohydrate binding site. EMBO J (2002) 2.41

Trypsin cleavage stabilizes the rotavirus VP4 spike. J Virol (2001) 1.68

Glycosphingolipid binding specificities of rotavirus: identification of a sialic acid-binding epitope. J Virol (2001) 1.51

Initial interaction of rotavirus strains with N-acetylneuraminic (sialic) acid residues on the cell surface correlates with VP4 genotype, not species of origin. J Virol (2002) 1.42

Role of sialic acids in rotavirus infection. Glycoconj J (2006) 1.28

The VP5 domain of VP4 can mediate attachment of rotaviruses to cells. J Virol (2000) 1.16

VLA-2 (alpha2beta1) integrin promotes rotavirus entry into cells but is not necessary for rotavirus attachment. J Virol (2002) 1.10

Interaction of rotaviruses with Hsc70 during cell entry is mediated by VP5. J Virol (2003) 1.08

Antibodies to rotavirus outer capsid glycoprotein VP7 neutralize infectivity by inhibiting virion decapsidation. J Virol (2002) 0.99

The cytokine osteopontin modulates the severity of rotavirus diarrhea. J Virol (2005) 0.99

Gangliosides have a functional role during rotavirus cell entry. J Virol (2012) 0.92

Fine mapping of sequential neutralization epitopes on the subunit protein VP8 of human rotavirus. Biochem J (2003) 0.85

VP7 mediates the interaction of rotaviruses with integrin alphavbeta3 through a novel integrin-binding site. J Virol (2004) 0.84

Characterization of neuraminidase-resistant mutants derived from rotavirus porcine strain OSU. J Virol (2005) 0.79

Modeling of the rotavirus group C capsid predicts a surface topology distinct from other rotavirus species. Virology (2015) 0.75

Articles cited by this

Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature (1970) 1528.65

Combining evolutionary information and neural networks to predict protein secondary structure. Proteins (1994) 9.97

High-resolution epitope mapping of hGH-receptor interactions by alanine-scanning mutagenesis. Science (1989) 8.73

Structure of the influenza virus haemagglutinin complexed with its receptor, sialic acid. Nature (1988) 8.32

Rotavirus gene structure and function. Microbiol Rev (1989) 6.95

Hydrophobicity of amino acid residues in globular proteins. Science (1985) 5.64

Conservation and prediction of solvent accessibility in protein families. Proteins (1994) 4.29

The rhesus rotavirus gene encoding protein VP3: location of amino acids involved in homologous and heterologous rotavirus neutralization and identification of a putative fusion region. Proc Natl Acad Sci U S A (1988) 4.23

Rational scanning mutagenesis of a protein kinase identifies functional regions involved in catalysis and substrate interactions. J Biol Chem (1991) 3.93

Antigenic mapping of the surface proteins of rhesus rotavirus. Virology (1986) 3.80

Structure of murine polyomavirus complexed with an oligosaccharide receptor fragment. Nature (1994) 3.35

Binding of influenza virus hemagglutinin to analogs of its cell-surface receptor, sialic acid: analysis by proton nuclear magnetic resonance spectroscopy and X-ray crystallography. Biochemistry (1992) 3.03

Localization of VP4 neutralization sites in rotavirus by three-dimensional cryo-electron microscopy. Nature (1990) 2.77

Infectious rotavirus enters cells by direct cell membrane penetration, not by endocytosis. J Virol (1988) 2.72

SOPM: a self-optimized method for protein secondary structure prediction. Protein Eng (1994) 2.56

Characterization of virus-like particles produced by the expression of rotavirus capsid proteins in insect cells. J Virol (1994) 2.48

Human and bovine coronaviruses recognize sialic acid-containing receptors similar to those of influenza C viruses. Proc Natl Acad Sci U S A (1988) 2.24

Functional and topographical analyses of epitopes on the hemagglutinin (VP4) of the simian rotavirus SA11. J Virol (1988) 2.08

Role of VP3 in human rotavirus internalization after target cell attachment via VP7. J Virol (1988) 2.01

Three-dimensional visualization of the rotavirus hemagglutinin structure. Cell (1993) 1.95

The VP8 fragment of VP4 is the rhesus rotavirus hemagglutinin. Virology (1991) 1.92

Three-dimensional structure of Schistosoma japonicum glutathione S-transferase fused with a six-amino acid conserved neutralizing epitope of gp41 from HIV. Protein Sci (1994) 1.91

Structural analysis based on state-space modeling. Protein Sci (1993) 1.89

The rhesus rotavirus outer capsid protein VP4 functions as a hemagglutinin and is antigenically conserved when expressed by a baculovirus recombinant. J Virol (1989) 1.80

Comparison of human, simian, and bovine rotaviruses for requirement of sialic acid in hemagglutination and cell adsorption. Virology (1989) 1.71

Protein classification by stochastic modeling and optimal filtering of amino-acid sequences. Math Biosci (1994) 1.70

Sialic acid glycoproteins inhibit in vitro and in vivo replication of rotaviruses. J Clin Invest (1987) 1.61

Genetic mapping indicates that VP4 is the rotavirus cell attachment protein in vitro and in vivo. J Virol (1996) 1.56

Specific interactions between rotavirus outer capsid proteins VP4 and VP7 determine expression of a cross-reactive, neutralizing VP4-specific epitope. J Virol (1992) 1.53

Binding to sialic acids is not an essential step for the entry of animal rotaviruses to epithelial cells in culture. J Virol (1993) 1.50

Specific gangliosides function as host cell receptors for Sendai virus. Proc Natl Acad Sci U S A (1981) 1.45

Localization of rotavirus VP4 neutralization epitopes involved in antibody-induced conformational changes of virus structure. J Virol (1994) 1.35

Glycophorin is the reovirus receptor on human erythrocytes. Virology (1987) 1.31

The amino-terminal half of rotavirus SA114fM VP4 protein contains a hemagglutination domain and primes for neutralizing antibodies to the virus. J Virol (1991) 1.25

Interactions between the two surface proteins of rotavirus may alter the receptor-binding specificity of the virus. J Virol (1996) 1.22

DNA amplification-restricted transcription-translation: rapid analysis of rhesus rotavirus neutralization sites. Proc Natl Acad Sci U S A (1990) 1.20

Characterization of binding of simian rotavirus SA-11 to cultured epithelial cells. J Pediatr Gastroenterol Nutr (1988) 1.19

Rotavirus YM gene 4: analysis of its deduced amino acid sequence and prediction of the secondary structure of the VP4 protein. J Virol (1991) 1.09

Identification of two independent neutralization domains on the VP4 trypsin cleavage products VP5* and VP8* of human rotavirus ST3. Virology (1995) 1.09

Mapping the subgroup epitopes of rotavirus protein VP6. Virology (1994) 1.08

Mapping the hemagglutination domain of rotaviruses. J Virol (1995) 1.07

Binding of reovirus to receptor leads to conformational changes in viral capsid proteins that are reversible upon virus detachment. J Biol Chem (1994) 1.06

Rotavirus spike structure and polypeptide composition. J Virol (1991) 1.03

A general, PCR-based method for single or combinatorial oligonucleotide-directed mutagenesis on pUC/M13 vectors. Biotechniques (1992) 1.00

Location of intrachain disulfide bonds in the VP5* and VP8* trypsin cleavage fragments of the rhesus rotavirus spike protein VP4. J Virol (1993) 0.99

Production and characterization of murine IgA monoclonal antibodies to the surface antigens of rhesus rotavirus. Virology (1996) 0.95

Species specificity and interspecies relatedness in VP4 genotypes demonstrated by VP4 sequence analysis of equine, feline, and canine rotavirus strains. Virology (1994) 0.94

Pitfalls of protein sequence analysis. Curr Opin Biotechnol (1996) 0.88

Alanine scanning mutagenesis of human erythropoietin identifies four amino acids which are critical for biological activity. Eur J Biochem (1993) 0.85

Protein NS26 is highly conserved among porcine rotavirus strains. Nucleic Acids Res (1993) 0.80

Contact residues and predicted structure of the reovirus type 3-receptor interaction. J Biol Chem (1991) 0.78

Articles by these authors

The sigma 54 bacterial enhancer-binding protein family: mechanism of action and phylogenetic relationship of their functional domains. J Bacteriol (1993) 4.34

Rhizobium tropici, a novel species nodulating Phaseolus vulgaris L. beans and Leucaena sp. trees. Int J Syst Bacteriol (1991) 3.46

Structural polypeptides of simian rotavirus SA11 and the effect of trypsin. J Virol (1981) 3.27

Primary structure of the cleavage site associated with trypsin enhancement of rotavirus SA11 infectivity. Virology (1985) 2.63

Gene protein products of SA11 simian rotavirus genome. J Virol (1982) 2.07

Origin and differentiation of dendritic cells. Trends Immunol (2001) 2.04

Diversity of rotavirus serotypes in Mexican infants with gastroenteritis. J Clin Microbiol (1990) 1.85

Trypsin activation pathway of rotavirus infectivity. J Virol (1996) 1.63

Genetic rearrangements of a Rhizobium phaseoli symbiotic plasmid. J Bacteriol (1986) 1.57

Integrin alpha(v)beta(3) mediates rotavirus cell entry. Proc Natl Acad Sci U S A (2000) 1.56

Biochemical characterization of rotavirus receptors in MA104 cells. J Virol (2000) 1.52

Binding to sialic acids is not an essential step for the entry of animal rotaviruses to epithelial cells in culture. J Virol (1993) 1.50

Molecular and antigenic characterization of porcine rotavirus YM, a possible new rotavirus serotype. J Virol (1988) 1.38

Conservation in rotaviruses of the protein region containing the two sites associated with trypsin enhancement of infectivity. Virology (1986) 1.38

Molecular analysis of a serotype 8 human astrovirus genome. J Gen Virol (2000) 1.36

Rotaviruses induce an early membrane permeabilization of MA104 cells and do not require a low intracellular Ca2+ concentration to initiate their replication cycle. J Virol (1997) 1.32

Primary structure of the neutralization antigen of simian rotavirus SA11 as deduced from cDNA sequence. J Virol (1984) 1.27

Penetration of Listeria monocytogenes in mice infected by the oral route. Microb Pathog (1997) 1.27

Entry of rotaviruses is a multistep process. Virology (1999) 1.25

The amino-terminal half of rotavirus SA114fM VP4 protein contains a hemagglutination domain and primes for neutralizing antibodies to the virus. J Virol (1991) 1.25

Inhibitory effects of human and bovine milk constituents on rotavirus infections. J Dairy Sci (2004) 1.23

Relative localization of viroplasmic and endoplasmic reticulum-resident rotavirus proteins in infected cells. Arch Virol (2000) 1.22

Interactions between the two surface proteins of rotavirus may alter the receptor-binding specificity of the virus. J Virol (1996) 1.22

Synthesis in Escherichia coli and immunological characterization of a polypeptide containing the cleavage sites associated with trypsin enhancement of rotavirus SA11 infectivity. J Gen Virol (1987) 1.21

The VP5 domain of VP4 can mediate attachment of rotaviruses to cells. J Virol (2000) 1.16

Integrin alpha2beta1 mediates the cell attachment of the rotavirus neuraminidase-resistant variant nar3. Virology (2000) 1.16

Different polypeptide composition of two human rotavirus types. Infect Immun (1980) 1.14

Diagnosis of retained abdominal gauze swabs. Br J Surg (1995) 1.14

Out of the Andes: patterns of diversification in clearwing butterflies. Mol Ecol (2009) 1.13

Phylogenetic relationships and host range of Rhizobium spp. that nodulate Phaseolus vulgaris L. Appl Environ Microbiol (1995) 1.12

In vivo interactions among rotavirus nonstructural proteins. Arch Virol (1998) 1.11

Propionate precursors and other metabolic intermediates as possible alternative electron acceptors to methanogenesis in ruminal fermentation in vitro. Br J Nutr (2005) 1.10

Identification of two independent neutralization domains on the VP4 trypsin cleavage products VP5* and VP8* of human rotavirus ST3. Virology (1995) 1.09

The C-terminal domain of rotavirus NSP5 is essential for its multimerization, hyperphosphorylation and interaction with NSP6. J Gen Virol (2000) 1.09

Rotavirus YM gene 4: analysis of its deduced amino acid sequence and prediction of the secondary structure of the VP4 protein. J Virol (1991) 1.09

Mapping the subgroup epitopes of rotavirus protein VP6. Virology (1994) 1.08

Early steps in rotavirus cell entry. Curr Top Microbiol Immunol (2006) 1.08

Mapping the hemagglutination domain of rotaviruses. J Virol (1995) 1.07

Prevalent patterns of serotype-specific seroconversion in Mexican children infected with rotavirus. J Clin Microbiol (1987) 1.06

The nucleotide sequence of the 5' and 3' ends of rotavirus SA11 gene 4. Nucleic Acids Res (1987) 1.06

Rhizobium tropici chromosomal citrate synthase gene. Appl Environ Microbiol (1995) 1.03

Seasonal idiopathic rhinitis with local inflammatory response and specific IgE in absence of systemic response. Allergy (2008) 1.02

Fast-muscle-specific DNA-protein interactions occurring in vivo at the human aldolase A M promoter are necessary for correct promoter activity in transgenic mice. Mol Cell Biol (1996) 1.01

Hybrid incompatibility is consistent with a hybrid origin of Heliconius heurippa Hewitson from its close relatives, Heliconius cydno Doubleday and Heliconius melpomene Linnaeus. J Evol Biol (2005) 1.01

Prognostic factors in paediatric acute liver failure. Arch Dis Child (2007) 1.01

Concept of lymphoid versus myeloid dendritic cell lineages revisited: both CD8alpha(-) and CD8alpha(+) dendritic cells are generated from CD4(low) lymphoid-committed precursors. Blood (2000) 1.00

Identification of a T-helper cell epitope on the rotavirus VP6 protein. J Virol (1997) 1.00

The Salmonella ompC gene: structure and use as a carrier for heterologous sequences. Gene (1995) 0.99

Effect of metabolic conditions on protein turnover in yeast. Biochem J (1979) 0.96

Comparative evaluation of the WHO and DAKOPATTS enzyme-linked immunoassay kits for rotavirus detection. Bull World Health Organ (1989) 0.96

Antigenic and genomic diversity of human rotavirus VP4 in two consecutive epidemic seasons in Mexico. J Clin Microbiol (1998) 0.95

Cytokine and chemokine expression in the skin from patients with maculopapular exanthema to drugs. Allergy (2008) 0.92

P-selectin expression and Kupffer cell activation in rat acute pancreatitis. Dig Dis Sci (2000) 0.91

Molecular characterization of the 5' control region and of two lethal alleles affecting the hsp60 gene in Drosophila melanogaster. FEBS Lett (1999) 0.90

Regulation of inducible nitric oxide synthase expression in rat mesangial cells and isolated glomeruli. Kidney Int (1995) 0.89

Further antigenic characterization of porcine rotavirus YM. J Clin Microbiol (1989) 0.89

Synthesis of the outer-capsid glycoprotein of the simian rotavirus SA11 in Escherichia coli. Gene (1986) 0.89

Heterogeneity in base sequence among different DNA clones containing equivalent sequences of rotavirus double-stranded RNA. J Virol (1986) 0.87

[Prognosis of rotavirus diarrhea]. Salud Publica Mex (2002) 0.87

Repeated oral dosing with Listeria monocytogenes in mice as a model of central nervous system listeriosis in man. J Comp Pathol (1999) 0.87

Genomic rearrangements in human rotavirus strain Wa; analysis of rearranged RNA segment 7. Arch Virol (1992) 0.87

Evaluation of three methodologies to estimate the VO2max in people of different ages. Appl Ergon (2010) 0.87

Serotype specificity of the neutralizing-antibody response induced by the individual surface proteins of rotavirus in natural infections of young children. Clin Diagn Lab Immunol (1998) 0.86

[Diaphysary tubular stenosis (Kenny-Caffey's syndrome): presentation of four observations (author's transl)]. An Esp Pediatr (1980) 0.86

Immunological characterization of a rotavirus-neutralizing epitope fused to the cholera toxin B subunit. Gene (1993) 0.86

Naturally occurring serotype 2/subgroup II rotavirus reassortants in northern Brazil. Virus Res (1989) 0.85

Early events of rotavirus infection: the search for the receptor(s). Novartis Found Symp (2001) 0.85

Prolonged persistence of Listeria monocytogenes after intragastric infection in corticosteroid-treated mice. Vet Microbiol (1997) 0.85

Heterogeneity of VP4 neutralization epitopes among serotype P1A human rotavirus strains. Clin Diagn Lab Immunol (1995) 0.85

Characterization of a monoclonal antibody directed to the surface of MA104 cells that blocks the infectivity of rotaviruses. Virology (2000) 0.82

Genomic cloning of mouse MIF (macrophage inhibitory factor) and genetic mapping of the human and mouse expressed gene and nine mouse pseudogenes. Genomics (1995) 0.82