PubMed HealthSearch

SEARCH · PubMed Health

Results for “Capripoxvirus”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

The nucleotide sequence around the capripoxvirus thymidine kinase gene reveals a gene shared specifically with leporipoxvirus.

We have extended previous comparisons of genetic organization between poxvirus genera by sequencing a 2.5K genomic fragment from isolate KS-1 (Kenya sheep-1) of the genus capripoxvirus. The fragment is located in the central region of the capripoxvirus genome and contains three complete and two incomplete open reading frames (ORFs). One of the complete ORFs is a gene for thymidine kinase (TK). This gene, with one of the other two complete ORFs and both the incomplete ORFs, are homologous to four contiguous ORFs from the central region of vaccinia virus (VV) DNA. They also match four ORFs of fowlpox virus (FPV) DNA, three of which are contiguous and the fourth, the FPV TK gene, is located elsewhere on the FPV genome. The third complete ORF of the capripoxvirus DNA fragment is located between the TK gene and the capripoxvirus homologue of the ORF immediately downstream of the VV TK gene. We show that a homologue to this third ORF is absent from VV and FPV DNAs, but is present downstream of the TK gene on Shope fibroma virus DNA. The sequence immediately upstream of the capripoxvirus homologue of a VV late gene contains a motif which is required for VV late gene expression. The motif required for VV early gene transcription termination is present in eight positions in the capripoxvirus sequence, and five of these positions are consistent with the motif having an equivalent function in capripoxvirus to that in VV.

Amino Acid Sequence

Transmission of capripoxvirus.

The transmission of capripoxvirus to sheep, using an aerosol suspension of a Yemen isolate of the virus, was demonstrated. Capripoxvirus was also transmitted by contact to sheep and goats kept with animals infected with virus isolates from the Yemen, Sudan, India and Nigeria. The incubation period for capripoxvirus infection in sheep and goats was approximately eight to 12 days. Animals that had well developed clinical signs transmitted capripoxvirus more rapidly than animals which died of peracute disease or animals that had only mild clinical signs.

Aerosols

A comparison of the genomes of capripoxvirus isolates of sheep, goats, and cattle.

HindIII, PstI, AvaI, and SalI sites were mapped on the genomes of six isolates of capripoxvirus from sheep, goats, and cattle. Genome pairs were aligned by the alignment of cross-hybridizing HindIII fragments and the introduction of padding fragments (pads) at specific locations. The majority of these pads represent the approximate positions of relative deletions or insertions. Three possible phylogenetic networks were generated for seven capripoxvirus isolates by Wagner parsimony analysis of the nonconserved HindIII sites on their genomes, and confidence limits were calculated for the network nodes. Nucleotide sequence divergence values, calculated from the numbers of nonconserved HindIII, PstI, AvaI, and SalI sites on the genomes of typical sheep, goat, and cattle isolates, indicated that the typical sheep and cattle isolates are more closely related to one another than to the typical goat isolate. Nonconserved HindIII, PstI, AvaI, and SalI sites were shown to be distributed throughout the genomes. Evidence that isolates YG-1 and OS-1 are descended from an isolate whose genome arose by recombination is discussed. Terminally repeated regions were identified on each of the capripoxvirus genomes mapped here. By mapping BamHI, ClaI, EcoRI, HindII, HindIII, and SalI sites present within the terminal 10 kb of the genome of isolate InS-1, the terminal repeats of this genome were shown to be between 2.25 and 3.40 kb in length and inverted with respect to one another.

Animals

Genomic relationship between capripoxviruses.

Capripoxvirus DNAs from field isolates and vaccine samples were analysed by digestion with the restriction enzyme Hind III. The patterns of fragments generated by digestion with Hind III are sufficiently similar to show that all capripoxviruses are closely related, although patterns of different isolates can be grouped in a way which correlates with the animal of origin. The close relatedness was also demonstrated by the high level of sequence homology detected using the Southern Cross hybridization system. Despite the sequence homology, the molecular weights of the genomes of different isolates varied from 73 to 91 MDa. The presence of two rapidly reannealing restriction fragments in the Hind III digests of capripoxvirus DNA indicated the presence of terminal cross-links.

Animals

The characterization of African strains of capripoxvirus.

Isolates of capripoxvirus collected from sub-Saharan Africa were compared in sheep, goats and cattle and by restriction endonuclease digestion of their purified DNA. Biochemical techniques were used to precisely identify strains of capripoxvirus for epidemiological investigations. Strains of capripoxvirus infecting cattle have remained very stable over a 30-year period and are closely related to strains recovered from sheep in Africa.

Africa

A comparison of the genome organization of capripoxvirus with that of the orthopoxviruses.

Comprehensive comparisons of genome organizations for poxviruses of different genera have not previously been reported. Here we have made such a comparison by cross-hybridizing genome fragments from capripoxvirus KS-1 and vaccinia virus WR (VV). This showed that a 100- to 115-kilobase (kb) centrally placed section is essentially colinear in organization in the two viruses and that a small region has translocated between the ends of one or other of the genomes during their divergence. No cross-hybridization could be detected between VV DNA and the respective left- and right-hand terminal 8 and 25 kb of capripoxvirus DNA or between capripoxvirus DNA and the respective left- and right-hand terminal 38 and 35 kb of VV DNA. By using the cross-hybridization data, a 4-kb fragment of KS-1 DNA was identified, which corresponds to the regions of the cowpox virus and VV genomes containing genes for the orthopoxvirus A-type inclusion body protein ("ATI"). The sequence of the KS-1 DNA fragment contains homologs of genes which are on either side of the orthopoxvirus ATI genes but contains no homolog of the ATI gene itself. Overall, these results show that the pattern of genomic conservation and variation between two poxvirus genera reflects the pattern within the orthopoxvirus genus but that, as observed previously, individual genes may not be present in genomic regions which are otherwise conserved in organization.

Amino Acid Sequence

Insect transmission of capripoxvirus.

Capripoxvirus was transmitted between sheep using Stomoxys calcitrans as a vector. Attempts to transmit capripoxvirus between sheep and between goats using biting lice (Mallophaga species), sucking lice (Damalinia species), sheep head flies (Hydrotaea irritans) and midges (Culicoides nubeculosus) were unsuccessful, although capripoxvirus was isolated from sheep head flies that had previously fed on infected sheep.

Animals

Capripoxvirus disease in an Arabian oryx (Oryx leucoryx) from Saudi Arabia.

Lumpy skin disease caused by a capripoxvirus was observed in a captive-bred female Arabian oryx (Oryx leucoryx) at the National Wildlife Research Center, Taif, Saudi Arabia. Clinical signs included severe general depression with fever, anorexia, greater than 1,000 nodular cutaneous lesions and gradual recovery over 2 mo. The virus was found by electron microscopy and paired sera showed an increasing virus neutralization antibody titer against capripoxvirus. A serologic survey of the herd of 90 oryx showed a low prevalence (2%) of this infection. This report describes the first case of lumpy skin disease in an Arabian oryx.

Abortion, Veterinary

Physical characterization of the genome of a cattle isolate of capripoxvirus.

HindIII, Pstl, Aval, and SalI site maps have been determined for the genome of a cattle isolate of capripoxvirus, KC-1. The length of the genome was estimated, by summation of the lengths of individual HindIII fragments, to be 145.6 kb, and the genome was shown to possess terminally repeated regions 1.13-6.23 kb in length. The restriction site maps demonstrate that the genome of KC-1 does not possess a high degree of nucleotide sequence homology with the genomes of isolates of orthopoxvirus, parapoxvirus, leporipoxvirus, or African swine fever virus.

Chromosome Mapping

A capripoxvirus pseudogene whose only intact homologs are in other poxvirus genomes.

Equivalent regions from within the inverted terminal repeats (ITRs) of the genomes of two capripoxviruses, KS-1 and InS-1, were sequenced. The sequence from KS-1 DNA covers the major part of three contiguous open reading frames (ORFs), which match three contiguous ORFs from within the genomic ITRs of the leporipoxvirus Shope Fibroma Virus (SFV). The sequenced region of InS-1 DNA contains only two of the three ORFs. The region homologous to the third ORF has no coding potential due to the presence of several stop codons, resulting from small frameshifting deletions and insertions. The significance of a degenerate poxvirus gene, intact homologs of which are only found in other poxvirus genomes, is discussed.

Amino Acid Sequence

Studies on the major common precipitating antigen of capripoxvirus.

The proteins of sheep pox, goat pox, sheep and goat pox and lumpy skin disease (Neethling) viruses were labelled with [35S]methionine. The major structural polypeptides of these viruses co-migrated on polyacrylamide gels, demonstrating the very close biochemical relationship between them. Using the agar gel immunodiffusion (AGID) test with radiolabelled antigen preparations, a major common precipitating antigen was identified. This co-migrated on polyacrylamide gels with one of the major structural polypeptides [mol. wt. 67000 (67K)]. The use of [35S]methionine-labelled antigen preparations considerably improved the sensitivity of the AGID test as a diagnostic test for capripoxvirus antibody detection.

Animals

Passive protection of sheep against capripoxvirus.

The close antigenic relationship between strains of capripox was shown by passively immunising sheep with serum against capripoxviruses isolated from a sheep and from a goat. Sheep immunised with immune serum to Oman sheep pox or Yemen goat pox resisted challenge with Yemen goat pox or Nigeria sheep pox respectively. Lambs born to sheep previously infected with isolates of capripox from the Sudan, India and Nigeria were also protected against challenge with Yemen goat pox.

Animals

Identification and nucleotide sequence of the thymidine kinase gene of swinepox virus.

Using degenerative oligonucleotide probes, representing two different conserved regions of poxvirus and mammalian thymidine kinase (TK) genes, the swinepox virus (SPV) TK gene was mapped to a 1.7-kb BamHI-HindIII fragment of the viral genome. Nucleotide sequencing of this DNA piece revealed that the SPV TK gene was encoded by an open reading frame (ORF) of 177 codons. Immediately downstream of the TK gene was a second ORF with homologues at the same location in both capripoxvirus and leporipoxvirus genomes. A similar gene had translocated to near the left hand terminus of the vaccinia virus (orthopoxvirus) genome. Flanking the two SPV genes were ORFs whose counterparts in other poxvirus genera are located at the same relative positions. SPV appeared to be most closely related to capripoxvirus, based on the organization of the four genes and on the percentage of identical amino acid residues of the respective encoded proteins.

Amino Acid Sequence

Poxvirus genetic recombination during natural virus transmission.

We have compared detailed physical maps of the genomes of four capripoxvirus isolates, representing four capripoxvirus genome types. The comparisons strongly suggest that the progenitor of one of these isolates arose by genetic recombination between members of two of the other three types.

Animals

Three thousand five hundred years of sheeppox virus evolution inferred from archaeological and codicological genomes.

Sheeppox virus (SPPV) is a major livestock pathogen causing economic hardship through reduced production and death of vulnerable sheep, with written descriptions of sheeppox-like disease recorded since antiquity. We report 21 novel ancient SPPV genomes spanning the Eurasian steppe Bronze Age (∼1700 BCE) to the Early Modern period in Western Europe, including multiple genomes obtained from medieval parchment. We estimate that major capripoxvirus lineages diverged ∼11,500 to 3700 years ago, overlapping known translocations and bio-cultural developments in sheep. Our dataset supports SPPV diverging first within the lineage leading to goatpox virus and lumpy skin disease virus, and that known gene inactivation events within SPPV and goatpox virus occur in our earliest SPPV genomes. These findings reveal that the food security of Eurasian communities has been threatened by sheeppox for more than 3700 years and provide insights into the genomic evolution and potential host adaptation of SPPV.

Animals

Influence of Major Histocompatibility Complex (MHC) Diversity on Immune Modulation, Pathogenesis, and Control of Lumpy Skin Disease Virus.

INTRODUCTION: Lumpy Skin Disease Virus (LSDV), a member of the genus Capripoxvirus within the family Poxviridae, is an economically important transboundary viral pathogen affecting cattle and water buffalo. The disease causes severe production losses through decreased milk yield, infertility, hide damage, reduced growth performance, and occasional mortality. The rapid geographic spread of LSDV, together with its vectorborne transmission and emerging recombinant strains, has intensified the need for improved understanding of viral pathogenesis, host immune responses, and effective prevention strategies. In particular, the role of the bovine Major Histocompatibility Complex (BoLA/MHC) in regulating antiviral immunity, disease susceptibility, and vaccine responsiveness has gained increasing scientific attention. METHODS: This review summarises the published literature related to the epidemiology, transmission, structure, pathogenesis, diagnosis, prevention, and control of LSDV, with special emphasis on the immunological and molecular role of bovine MHC molecules. Relevant studies concerning BoLA-mediated antigen presentation, immunoinformaticsbased epitope prediction, vaccine development, antiviral drug repurposing, molecular docking, genomic surveillance, and diagnostic approaches, including PCR- and ELISAbased assays, were critically evaluated. Recent advances in computational biology, molecular virology, and host-pathogen interaction studies were also reviewed. RESULTS: The reviewed studies demonstrate that Lumpy Skin Disease Virus (LSDV) possesses a complex double-stranded DNA genome enabling immune modulation and efficient transmission through arthropod vectors such as mosquitoes, ticks, and biting flies. Disease progression involves systemic viral replication, vascular injury, dermal necrosis, and inflammatory skin lesions. Real-time PCR remains the most sensitive diagnostic method for early detection, while ELISA supports surveillance. Evidence highlights the central role of bovine Major Histocompatibility Complex (BoLA) molecules in antigen presentation and T-cell activation. Computational studies identified promising BoLA-binding epitopes and repurposed antiviral candidates, including ivermectin, theaflavin, canagliflozin, and tepotinib, for future therapeutic development. DISCUSSION: Current evidence indicates that effective LSDV control requires integration of molecular diagnostics, vector management, vaccination, and host immunogenetics. BoLAguided immunoinformatics provides promising opportunities for developing multi-epitope vaccines, although experimental validation remains essential. Similarly, repurposed antiviral candidates require comprehensive in vivo and pharmacological evaluation before clinical application. Future research should focus on elucidating viral immune-evasion mechanisms, validating predicted epitopes, and translating computational findings into practical vaccines and therapeutics for sustainable disease control. CONCLUSION: Lumpy Skin Disease continues to pose a major threat to global cattle health and livestock economies. Advances in molecular diagnostics, genomic surveillance, antiviral drug discovery, and BoLA-guided vaccine design provide promising opportunities for improved disease control. Understanding the interaction between LSDV and the bovine MHC system is essential for developing next-generation vaccines, immunotherapeutics, and precision disease-management strategies. Future research should prioritise experimental validation of predicted epitopes, large-scale vaccine trials, and mechanistic studies on host-virus immune interactions to establish effective and sustainable global control programs for LSDV.

BoLA

Isolation and identification of the Sersenk strain of goat pox virus in Iraq.

Goat pox virus was isolated during an outbreak of pox infection among goats in the Sersenk district, Iraq. The isolated virus grew on the chorioallantoic membranes of developing chick embryos and in primary lamb testis cell cultures. It was identified morphologically as a pox virus and serologically as a member of the Capripoxvirus group in the family Poxviridae. The isolated virus was designated the "Sersenk" strain.

Animals

Capripox in Bangladesh.

In 1984 capripox entered Bangladesh developing into a severe epidemic causing high mortality in the indigenous goat population. Although at present mainly confined to the western districts the disease has spread to some central and northern districts and unless controlled could spread further. Clinically and biochemically the strain is closely related to a strain previously isolated in central India. It has been shown that restriction endonuclease analysis of the genome of field isolates of capripoxvirus can provide a useful epidemiological technique in investigating outbreaks of capripox.

Animals