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Structure of a major immunogenic site on foot-and-mouth disease virus.

Attachment of foot-and-mouth disease virus (FMDV) to its cellular receptor involves a long and highly antigenic loop containing the conserved sequence, Arg-Gly-Asp, a motif known to be a recognition element in many integrin-dependent cell adhesion processes. In our original crystal structure of FMDV the Arg-Gly-Asp-containing loop ('the loop'), located between beta-strands G and H of capsid protein VP1, was disordered and hence essentially invisible. We previously surmised that its disorder is enhanced by a disulphide bond linking the base of the loop (Cys 134) to Cys 130 of VP2 (ref. 8). We report here the crystal structure of the virus in which this disulphide is reduced. Reduced virus retains infectivity and serological experiments suggest that some of the loop's internal structure is conserved. But here its structure has become sufficiently ordered to allow us to describe an unambiguous conformation, which we relate to some key biological properties of the virus.

Aphthovirus↗

The location of the ploy(C) tract in the RNA of foot-and-mouth disease virus.

Fragments of foot-and-mouth disease virus RNA of decreasing size, containing the 3' poly(A) sequence have been prepared by alkali treatment and sucrose gradient centrifugation followed by oligo(dT)-cellulose affinity chromatography. Polyacrylamide gel electrophoresis of the ribonuclease T1 resistant oligonucleotides from these polyadenylated fragments has enabled us to locate the position of some of the longer oligonucleotides on the RNA. In particular the poly C tract has been shown to be near the 5' end of the RNA; The possible function of the poly(C) tract is discussed in the light of these findings.

Aphthovirus↗

An extended genetic recombination map for foot-and-mouth diseases virus.

The original foot-and-mouth diseases virus recombination map (Lake, Priston & Slade, 1975), which include 35 mutagen-induced ts mutants, has been extended both in detail and size by the mapping of a further 33 ts mutants (9 mutagen-induced and 24 spontaneous). The size increase from 0.57% to 3.27% maximum recombination fequency was principally due to the use of a new standardization technique for recombination fequencies but, in addition, the original map distance was increased by approx. 30% due to the mapping of new mutations. As in the original map, there was a marked concentration of mutations near the guanidine (gs) locus, i.e. 83% of the mutants had mutations in the third of the map adjacent to the gs locus.

Aphthovirus↗

Isolation and characterization of trypsin-resistant O1 variants of foot-and-mouth disease virus.

Strains of foot-and-mouth disease virus of types O1 and A10 were isolated which showed no significant loss of infectivity upon trypsinization. These 'trypsin-resistant' (TR) viruses were obtained by serial passage in BHK cells of virus that was trypsin-treated before inoculation of the cells. Three O1 isolates were cloned and studied further. Cell attachment of those TR O1 variants (OTR1) was not reduced by trypsinization, unlike that of parent virus. The polypeptide compositions of TR viruses as determined by SDS-polyacrylamide gel electrophoresis were identical with those of parent virus, with the exception of OTR1 which contained an additional polypeptide approx, 3000 daltons larger than VP1. After trypsinization, which normally cleaves VP1, the polypeptide composition of the three TR viruses (including OTR1) and of parent virus did not show any significant difference. In OTR1 both the additional virus protein and VP1 were cleaved into a P18 molecule and smaller fragments. The surface location of this additional polypeptide was confirmed by iodination experiments. It was shown by immunodiffusion experiments that only OTR1 differed from the parent virus. This antigenic change was present on the trypsin-sensitive part of the virus since trypsinized TR viruses (including OTR1) were antigenically identical to trypsinized parent virus. The electrophoretic mobilities of the three OTR viruses isolated, and of parent virus, differed somewhat before trypsinization. After trypsin-treatment, the mobilities of TR viruses were all increased to the same level; however, their rate of migration was lower than that of trypsin-treated parent virus. This lower mobility of trypsin-treated OTR viruses was the only difference which could be associated with retained infectivity.

Antigens, Viral↗

Modification of the leader protein (Lb) of foot-and-mouth disease virus.

Translation of foot-and-mouth disease virus RNA for extended periods in rabbit reticulocyte lysates results in the appearance of a previously undescribed protein. A protein with similar properties can also be detected in BHK cells at late times after virus infection. Specific immunoprecipitation has shown that this protein (Lb') is closely related to the smaller of the two leader proteins, Lb, although it migrates with an apparently higher Mr in SDS-polyacrylamide gels. The conversion of Lb to Lb' can be mimicked by treatment with carboxypeptidase B. It is suggested that C-terminal trimming of Lb to produce Lb' results in an increase in negative charge and is responsible for its slower migration in SDS-PAGE.

Aphthovirus↗

Deconvolution of fully overlapped reflections from crystals of foot-and-mouth disease virus O1 G67.

Foot-and-mouth disease virus O(1) G67 forms crystals that appear similar to those of the closely related viruses O(1)K and O(1)BFS, both of which belong to space group I23. Statistical disorder in the O(1) G67 crystals means, however, that the measured diffraction data possess higher symmetry consistent with point group 432. It is shown that this is due to intimate twinning, with mosaic blocks randomly distributed between the two orientations. This results in a twofold loss of information due to the exact superimposition of non-identical reflections from the two orientations. A simple procedure has been devised to deconvolute these overlapped reflections by applying constraints in both real and reciprocal space. This procedure works well, providing interpretable electron-density maps for this virus. Other applications are discussed.

Journal Article↗

Inactivation of foot-and-mouth disease virus with ethylenimine.

Foot-and-mouth disease virus (FMDV) was inactivated by ethylenimine (EI) at three concentrations and two temperatures. Comparison of inactivation kinetics and the antigenic and immunogenic potency of EI and N-acetylethylenimine (AEI)-inactivated FMDV indicates that EI has nearly optimal characteristics as an inactivant for FMDV vaccine preparation. Although AEI-inactivated FMDV has proved to be a potent specific immunogen, an equivalent percentage of EI inactivated FMDV at substantially faster rates and produced an equally potent immunogen. In addition, EI inactivated FMDV at rates that were essentially linear throughout the loss of nearly all measurable infectivity.

Animals↗

[Immune response in mice induced by different doses of foot-and-mouth disease virus].

Response against foot-and-mouth disease virus 01 Campos on vaccinated female mice and suckling litter was estimated. Vaccine doses ranged between 0.05 and 30 micrograms of virus. The lower dose protected 39.5% of suckling litter whereas 100% protection was achieved using the higher doses. Serum neutralization indexes in females, at 45 days post vaccination, ranged from 3.60 to 4.86 for 0.05 microgram to 0.10 microgram and 4.86 to 5.50 for the high doses. Although the doses were excessively high (eq. 1 mu/g average live weight) and (OH)3Al was used as adjuvant, no adverse effect on the immune system was detected in any of the vaccinated animals.

Animals↗

The complete nucleotide sequence of the PanAsia strain of foot-and-mouth disease virus isolated in Japan.

The complete nucleotide sequence of the foot-and-mouth disease virus (FMDV) O/JPN/2000 strain, the PanAsia strain, was determined by cycle sequencing and primer walking. The 5' end of the genome upstream from homopolymeric poly(C) tract (S-fragment) was 367 nucleotides in length, and the remainder of the genome (L-fragment), excepting the poly(A) tail, was 7808 nucleotides. The L-fragment contains a single open reading frame of 6996 nucleotides terminating at a UAA codon 96 bases from the 3' poly(A) sequence. Comparison of sequences shows that the length of the structural and non-structural protein coding regions are identical to those in the O1/Kaufbeuren strain, and no striking differences such as deletion or insertion were observed between them.

Animals↗

A solid-phase blocking ELISA for detection of type O foot-and-mouth disease virus antibodies suitable for mass serology.

A simple solid-phase blocking ELISA for the detection of antibodies directed against type O foot-and-mouth disease virus (FMDV) was developed. The ELISA was validated using field sera collected from cattle, pigs and sheep originating from FMDV infected and non-infected Dutch farms, reference sera obtained from the World Reference Laboratory for foot-and-mouth disease at the Institute for Animal Health, Pirbright Laboratory, UK and sera from experimentally infected animals. Testing 2664 sera collected from non-infected cattle, pigs and sheep resulted in a specificity of 96%. A sensitivity relative to the virus neutralisation test (VNT) of >99% was achieved when testing 148 positive cattle, goat and sheep sera collected from FMDV-infected Dutch farms. All international reference sera scored consistently correct. The ELISA also correctly scored 398 of 409 positive experimentally derived sera. The sensitivity and specificity of this monoclonal antibody-based ELISA for detection of type O FMDV antibodies is sufficient for use as a screening ELISA. During the 2001 epidemic in the Netherlands, 8000 serum samples per day were regularly tested in this ELISA. The samples scoring positive were then tested by neutralisation for confirmation thus making optimum use of the neutralisation testing capacity.

Animals↗

Production, isolation, and partial characterization of three foot-and-mouth disease virus temperature-sensitive mutants.

Three high temperature-sensitive (ts) mutants of foot-and-mouth disease virus were characterized by their relative abilities to grow at 33 or 38.5 C, to kill infant mice, to infect guinea pigs, and to produce foot-and-mouth disease in steers. Mutants ts-24 and ts-42 did not grow at 38.5 C; both may have produced considerable quantities of noninfectious virus particles at 33 C. A third mutant, ts-22, appeared "leaky" because it multiplied to a limited extent during prolonged incubation at the nonpermissive temperature. Mutant ts-42 was pathogenic for infant mice, whereas ts-22 and ts-24 were essentially apathogenic. Mice were protected against the lethal effects of the wild-type (wt) virus if injected 1 week earlier with ts-22, apparently as a result of specific antibody development. One-half of the guinea pigs injected with the mutant viruses showed lesion development, but only at the site of injection. Antibody development was also much less than in those animals injected with the wt virus. The onset of FMD in steers was delayed and the severity of the disease was diminished after intradermalingual injection of the mutant viruses.

Animals↗

[Passive immunity in calves born of cows that have recovered from foot-and-mouth disease or been vaccinated against it].

It has been found that the antibody titers in the case of passive immunity in calves from cows that have recovered from foot-and-mouth disease or have been vaccinated against it rise immediately following the intake of colostrum. They have been found to reach a peak level, displaying maximal values for a long period of time. Later on the antibody titers decline gradually. Specific antibodies have also been demonstrated at the age of more than two months following birth. Higher values of passive immunity have been established in calves from survivals and from cows that have been vaccinated twice and this is explained by the presence of a higher content of foot-and-mouth disease antibodies in the dams. The importance of passive immunity for the prevention of the disease in growing animals is discussed.

Animals↗

A novel mucosal vaccine against foot-and-mouth disease virus induces protection in mice and swine.

Epitopes of a foot-and-mouth disease virus (FMDV) capsid protein VP1 complex and a chimera of 6xHis-tagged cholera toxin B subunit (hCTB) were expressed in Hansenula polymorpha and used together as a mucosal vaccine. Antibody and cytokine responses to VP1-hCTB vaccine and protection against FMDV were evaluated by ELISA and a virus challenge test in mice, respectively. VP1-hCTB directly enhanced the expression of interleukin-5 (IL-5) both in serum and supernatants of cultured spleen cells. After challenging suckling mice with 10(5) FMDV (=50% lethal dosage per mouse) a greater protection was seen after intraperitoneal and intranasal vaccinations than after oral vaccination. In swine immunized with VP1-hCTB, immune responses were achieved after three administrations, and the vaccine protected swine (80%) when challenged with 10(6.5) FMDV (=50% infectious dosage per swine). These results demonstrated the possibility of using CTB as a mucosal adjuvant to elicit protective immune responses against FMDV.

Adjuvants, Immunologic↗

Enhanced immune response with foot and mouth disease virus VP1 and interleukin-1 fusion genes.

The capsid of the foot and mouth disease (FMD) virus carries the epitopes that are critical for inducing the immune response. In an attempt to enhance the specific immune response, plasmid DNA was constructed to express VP1/interleukin-1alpha (IL-1alpha) and precursor capsid (P1) in combination with 2A (P1-2A)/IL-1alpha under the control of the human cytomegalovirus (HCMV) immediateearly promoter and intron. After DNA transfection into MA104 (monkey kidney) cells, Western blotting and an immunofluorescence assay were used to confirm the expression of VP1 or P1-2A and IL-1alpha. Mice were inoculated with the encoding plasmids via the intradermal route, and the IgG1 and IgG2a levels were used to determine the immune responses. These results show that although the immunized groups did not carry a high level of neutralizing antibodies, the plasmids encoding the VP1/ IL-1alpha, and P1-2A /IL-1alpha fused genes were effective in inducing an enhanced immune response.

Animals↗

[Investigation for VP4 region of coxsackie virus A16 RNA sequence from hand-foot-mouth disease patients at eastern district of Shizuoka prefecture in 1995].

In 1995 an investigation was made for VP4 regions of coxsackie virus A16 (CA16) RNA sequence from hand-foot-mouth disease patients in eastern district of Shizuoka Prefecture. Subjects were seven patients who were diagnosed as hand-foot-mouth disease due to CA16 at the Ohashi Pediatric Clinic in Susono City. Throat swabs of patients were extracted to RNA. Extracted RNA were assayed by reverse transcription polymerase chain reaction that primers corresponded to VP4 resion of enteroviruses. PCR products were marked by dye-deoxy terminator methods and assayed by direct sequence methods. RNA sequences were classified into two types. Type 1 were three cases, and type 2 were four. The homology was 90.8% between type 1 and type 2. All cases of sixty-nine amino acids were the same as prototype strain. We concluded that the two type strains of CA16 were prevalented in eastern district of Shizuoka Prefecture in 1995. It was at the same time and was widely noted in the eastern district.

Amino Acid Sequence↗

Sequence and phylogenetic analysis of the L and VP1 genes of foot-and-mouth disease virus serotype Asia1.

Most of the molecular epidemiological studies of foot-and-mouth disease virus (FMDV) are based on comparison of VP1 gene sequence. In this report, we determine the nucleotide (nt) sequence of the L (603 nt) and VP1 (633 nt) genes of 27 FMDV serotype Asia 1 isolates recovered from different outbreaks in India, and compared with each other and the vaccine strain, IND 63/72, used in the country. Independent phylogenetic analyses on both the aligned gene sequences identified two major lineages (designated A & B) in the Asia 1 isolates. Both L- and VP1-based trees were congruent with respect to the major branching pattern of the isolates. The lineage A is represented by the isolates of 1986-2000 including the vaccine strain IND 63/72, whereas, lineage B appeared to be dominant and responsible for most of the recent outbreaks. A correlation was observed between the clustering of the isolates in the phylogenetic tree and the amino acid changes at many of the positions in VP1 as well as in L protein. The annual rate of evolution in L and VP1 genes was found similar and estimated to be 4.0 x 10(-3) and 3.8 x 10(-3) substitutions per nucleotide, respectively. Our result, largely from the congruence in phylogenetic trees and the rate of evolution in both the genes, suggests the possibility for the use of L gene sequence in phylogenetic comparison of FMDV.

Amino Acid Sequence↗

Molecular characterization of foot-and-mouth disease virus type C of Indian origin.

Comparison of nucleotide sequences of the partial 1D region of foot-and-mouth disease type C viruses of Indian origin with those of European, South American, and Southeast Asian viruses revealed that the Indian viruses form a distinct genotype. The vaccine strain C IND/51/79 belongs to this genotype and may be a prototype strain of this genotype.

Animals↗

Foot and mouth disease and cryptosporidiosis: possible interaction between two emerging infectious diseases.

During 2001, a large outbreak of foot and mouth disease occurred in the United Kingdom, during which approximately 2,030 confirmed cases of the disease were reported, >6 million animals were slaughtered, and strict restrictions on access to the countryside were imposed. We report a dramatic decline in the reported incidence of human cryptosporidiosis in northwest England during weeks 13-38 in 2001, compared with the previous 11 years. This decline coincided with the period of foot and mouth restrictions. No similar reduction occurred in the other 26 weeks of the year. We also noted a substantial decline in the proportion of human infections caused by the bovine strain (genotype 2) of Cryptosporidium parvum during weeks 13-38 in that year but not during the other weeks.

Animals↗