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1.
Virol J ; 21(1): 177, 2024 Aug 06.
Article in English | MEDLINE | ID: mdl-39107806

ABSTRACT

BACKGROUND: Reticuloendotheliosis virus (REV), a member of the family Retroviridae, is a hot area of research, and a previous study showed that exosomes purified from REV-positive semen were not blocked by REV-specific neutralizing antibodies and established productive infections. METHODS: To further verify the infectivity of exosomes from REV-infected cells, we isolated and purified exosomes from REV-infected DF-1 cells and identified them using Western blot and a transmission electron microscope. We then inoculated 7-day-old embryonated eggs, 1-day-old chicks and 23-week-old hens with and without antibody treatment. REV was administered simultaneously as a control. RESULTS: In the absence of antibodies, the results indicated that REV-exosomes and REV could infect chicks, resulting in viremia and viral shedding, compared with the infection caused by REV, REV-exosomes reduced the hatching rate and increased mortality after hatching, causing severe growth inhibition and immune organ damage in 1-day-old chicks; both REV and REV-exosomes also could infect hens, however, lead to transient infection. In the presence of antibodies, REV-exosomes were not blocked by REV-specific neutralizing antibodies and infected 7-day-old embryonated eggs. However, REV could not infect 1-day-old chicks and 23-week-old hens. CONCLUSION: In this study, we compared the infectious ability of REV-exosomes and REV, REV-exosomes could escape from REV-specific neutralizing antibodies in embryonated eggs, providing new insights into the immune escape mechanism of REV.


Subject(s)
Antibodies, Viral , Chickens , Exosomes , Poultry Diseases , Reticuloendotheliosis virus , Retroviridae Infections , Virus Shedding , Animals , Exosomes/virology , Exosomes/immunology , Antibodies, Viral/immunology , Chickens/virology , Reticuloendotheliosis virus/immunology , Poultry Diseases/virology , Poultry Diseases/transmission , Poultry Diseases/immunology , Retroviridae Infections/virology , Retroviridae Infections/transmission , Retroviridae Infections/immunology , Retroviridae Infections/veterinary , Antibodies, Neutralizing/immunology , Cell Line , Viremia/virology , Female
2.
Curr Opin Virol ; 67: 101427, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39047314

ABSTRACT

The koala retrovirus, KoRV, is one of the few models for understanding the health consequences of retroviral colonization of the germline. Such colonization events transition exogenous infectious retroviruses to Mendelian traits or endogenous retroviruses (ERVs). KoRV is currently in a transitional state from exogenous retrovirus to ERV, which in koalas (Phascolarctos cinereus) has been associated with strongly elevated levels of neoplasia. In this review, we describe what is currently known about the associations and underlying mechanisms of KoRV-induced neoplasia.


Subject(s)
Endogenous Retroviruses , Neoplasms , Phascolarctidae , Retroviridae Infections , Animals , Neoplasms/virology , Phascolarctidae/virology , Endogenous Retroviruses/genetics , Endogenous Retroviruses/physiology , Endogenous Retroviruses/pathogenicity , Retroviridae Infections/virology , Retroviridae Infections/veterinary , Humans , Retroviridae/physiology , Retroviridae/pathogenicity , Retroviridae/genetics
3.
J Med Primatol ; 53(4): e12726, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39073161

ABSTRACT

Historically, to generate Simian Retrovirus (SRV) positive control materials, we performed in vivo passage by inoculating uninfected rhesus macaques with whole blood from an SRV-1 infected (antibody and PCR positive) macaque. However, recent attempts using this approach have failed. This study reports observations and explores why it has become more difficult to transmit SRV via in vivo passage.


Subject(s)
Macaca mulatta , Monkey Diseases , Retroviridae Infections , Retroviruses, Simian , Animals , Macaca mulatta/virology , Retroviruses, Simian/isolation & purification , Retroviruses, Simian/physiology , Retroviridae Infections/veterinary , Retroviridae Infections/transmission , Retroviridae Infections/virology , Monkey Diseases/virology , Monkey Diseases/transmission , Tumor Virus Infections/veterinary , Tumor Virus Infections/virology , Tumor Virus Infections/transmission
4.
New Microbiol ; 47(1): 38-46, 2024 May.
Article in English | MEDLINE | ID: mdl-38700882

ABSTRACT

The shortage of organs for human transplantation is a topic of extreme interest, and xenotransplantation with porcine organs has been recognized as a promising solution. However, the potential spillover linked to infectious agents present in pigs remains a concern. Among these, Pig Endogenous Retroviruses (PERVs), whose proviral DNAs are integrated in the genome of all pig breeds, represent an extremely important biological risk. This study aims to evaluate PERVs distribution in several swine cell lines and samples of domestic and feral pigs. Moreover, the capacity of PERVs to infect human and non-human primate cells and to integrate in the cellular genome was tested by Real-Time PCR and by Reverse Transcriptase assay. Results indicated a widespread diffusion of PERVs both in cell lines and samples analysed: the viral genome was found in all the established cell lines, in 40% of the primary cell lines and in 60% of the tissue samples tested. The assays indicated that the virus can be transmitted from porcine to human cells: in the specific case, infected NSK and NPTr cells allow passage to human 293 and MRC-5 cells with active production of the virus demonstrable via PCR and RT assay. In light of these aspects and also the lack of studies on PERVs, it appears clear that there are still many questions to be clarified, also by means of future studies, before xenotransplantation can be considered microbiologically safe.


Subject(s)
Endogenous Retroviruses , Animals , Endogenous Retroviruses/genetics , Endogenous Retroviruses/isolation & purification , Swine , Humans , Cell Line , Retroviridae Infections/veterinary , Retroviridae Infections/virology , Retroviridae Infections/transmission
5.
Vet J ; 305: 106128, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38754624

ABSTRACT

The utility of neutrophil-lymphocyte ratio (NLR), monocyte-lymphocyte ratio (MLR), and platelet-lymphocyte ratio (PLR) as prognostic markers in Feline Leukemia Virus (FeLV) and Feline Immunodeficiency Virus (FIV) infections has not yet been investigated. The aim of this study was to investigate these leukocyte ratios in retrovirus-positive cats and to evaluate their prognostic value for survival. This retrospective case-control study included 142 cats, 75 FIV-Antibodies (Ab)-positive, 52 FeLV-Antigen (Ag)-positive, and 15 FIV-Ab+FeLV-Ag-positive, and a control population of 142 retrovirus-negative age-, sex-, and lifestyle-matched cats. Signalment, complete blood count at the time of serological testing, and outcome were recorded. Leukocyte ratios were compared within the same case-control population, among the three retrovirus-seropositive populations, and were related to survival time. No significant difference was found in NLR, MLR, or PLR between FIV-Ab-positive and FIV-Ab+FeLV-Ag-positive cats and their cross-matched controls. In the FeLV-Ag-positive population, MLR was significantly lower than in the control population (0.05 and 0.14, respectively, P=0.0008). No ratio discriminated among the three infectious states. No ratio was significantly different between survivors and non-survivors in the population of FIV-Ab-positive cats. MLR at diagnosis was significantly higher in FeLV-Ag-positive cats that died 1-3 years after diagnosis than in FeLV-Ag-positive cats still alive at 3 years (P=0.0284). None of the three ratios could predict retroviruses-positive cats that would survive to the end of the study. Overall the results indicate that NLR, MLR, and PLR are not significantly different among retrovirus statuses evaluated and had a very limited prognostic value for the survival time in retrovirus-positive cats.


Subject(s)
Immunodeficiency Virus, Feline , Leukemia Virus, Feline , Cats , Animals , Retrospective Studies , Female , Male , Case-Control Studies , Prognosis , Retroviridae Infections/veterinary , Retroviridae Infections/mortality , Retroviridae Infections/virology , Retroviridae Infections/blood , Feline Acquired Immunodeficiency Syndrome/mortality , Feline Acquired Immunodeficiency Syndrome/virology , Cat Diseases/mortality , Cat Diseases/virology , Cat Diseases/blood , Cat Diseases/diagnosis , Leukocyte Count/veterinary , Biomarkers/blood
6.
Vet Res Commun ; 48(4): 2683-2689, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38644457

ABSTRACT

Feline leukemia virus (FeLV) is responsible for feline leukemia syndrome in domestic cats. The prevention and control of disease caused by FeLV are primarily based on vaccination and identification and isolation of infected subjects. Antigen diagnostic methods, which are the most widely used in clinical practices, can be associated to molecular tests to characterize the FeLV detected. In this study, a quantitative SYBR Green Real-Time PCR (qPCR) assay was used to detect FeLV proviral DNA in blood samples from antigen positive cats referred to a veterinary teaching hospital in Northern Italy in 2018-2021. To genetically characterize the identified viruses, a portion of the viral envelope (env) gene was amplified using six different end-point PCRs and sequenced. Twenty-two of 26 (84.6%) cats included in the study tested positive by qPCR assay. This suggests a high performance of the qPCR adopted but further studies are required to investigate the cause of discordant results between the antigen test and qPCR in four cats. From env gene analysis, 15/22 qPCR-positive cats were infected by FeLV subtype A and 5/15 shown coinfection with subtype B.


Subject(s)
Leukemia Virus, Feline , Leukemia, Feline , Animals , Leukemia Virus, Feline/genetics , Leukemia Virus, Feline/isolation & purification , Cats , Italy/epidemiology , Leukemia, Feline/virology , Cat Diseases/virology , Hospitals, Animal , Real-Time Polymerase Chain Reaction/veterinary , Retroviridae Infections/veterinary , Retroviridae Infections/virology , Tumor Virus Infections/veterinary , Tumor Virus Infections/virology , Female , Male , Hospitals, Teaching
7.
Microbiol Spectr ; 12(6): e0432323, 2024 Jun 04.
Article in English | MEDLINE | ID: mdl-38687078

ABSTRACT

An investigation into retrovirus was conducted in six species of bats (Myotis aurascens, Myotis petax, Myotis macrodactylus, Miniopterus fuliginosus, Rhinolophus ferrumequinum, and Pipistrellus abramus) inhabiting South Korea. Exogenous retroviruses (XRVs) were detected in the tissue samples of R. ferrumequinum individuals by PCR assay. Proviruses were identified in all tissue samples through viral quantification using a digital PCR assay per organ (lung, intestine, heart, brain, wing, kidney, and liver), with viral loads varying greatly between each organ. In phylogenetic analysis based on the whole genome, the Korean bat retroviruses and the R. ferrumequinum retrovirus (RfRV) strain formed a new clade distinct from the Gammaretrovirus clade. The phylogenetic results determined these viruses to be RfRV-like viruses. In the Simplot comparison, Korean RfRV-like viruses exhibited relatively strong fluctuated patterns in the latter part of the envelope gene area compared to other gene areas. Several point mutations within this region (6,878-7,774 bp) of these viruses were observed compared to the RfRV sequence. One Korean RfRV-like virus (named Y4b strain) was successfully recovered in the Raw 264.7 cell line, and virus particles replicated in the cells were confirmed by transmission electron microscopy. RfRVs (or RfRV-like viruses) have been spreading since their first discovery in 2012, and the Korean RfRV-like viruses were assumed to be XRVs that evolved from RfRV.IMPORTANCER. ferrumequinum retrovirus (RfRV)-like viruses were identified in greater horseshoe bats in South Korea. These RfRV-like viruses were considered exogenous retroviruses (XRVs) that emerged from RfRV. Varying amounts of provirus detected in different organs suggest ongoing viral activity, replication, and de novo integration in certain organs. Additionally, the successful recovery of the virus in the Raw 264.7 cell line provides strong evidence supporting their status as XRVs. These viruses have now been identified in South Korea and, more recently, in Kenya since RfRV was discovered in China in 2012, indicating that RfRVs (or RfRV-like viruses) have spread worldwide.


Subject(s)
Chiroptera , Phylogeny , Animals , Chiroptera/virology , Republic of Korea , Mice , Proviruses/genetics , Proviruses/isolation & purification , Retroviridae Infections/virology , Retroviridae Infections/veterinary , Retroviridae/isolation & purification , Retroviridae/classification , Retroviridae/genetics , Genome, Viral , Viral Load
8.
Vet Pathol ; 61(4): 562-573, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38415450

ABSTRACT

Lymphoproliferative disease virus (LPDV) was first documented in wild turkeys in North America in 2009. LPDV infection is often subclinical but can manifest as lymphoid proliferation or round cell neoplasia. Despite high prevalence across many sampled areas corresponding to declining populations of wild turkeys, knowledge regarding LPDV pathogenesis, risk factors for disease development, and associated impacts on population dynamics are unknown. To understand transmission, viral shedding, and tissue tropism, we inoculated 21 domestic turkeys via the oral cavity, crop, nasal cavity, subcutis, or coelomic cavity. For 12 weeks, oropharyngeal swabs, cloacal swabs, and whole blood were collected weekly. At 1 week postinoculation, 3 turkeys (3/21; 14%) had detectable LPDV proviral DNA in blood by polymerase chain reaction, and 10 developed DNAemia (50%; 10/20) by 12 weeks. LPDV proviral DNA was intermittently detected in oropharyngeal and cloacal swabs. Splenomegaly was the most consistent gross finding in DNAemic birds (8/11; 73%). Lymphoid hyperplasia in the spleen was the most significant microscopic finding (9/11; 82%). Three turkeys (3/11; 27%) developed round cell neoplasia characterized by sheets of pleomorphic, round to polygonal cells in the adrenal gland, bone marrow, skin, small intestine, and/or spleen. LPDV was detected in the spleen and bone marrow from all turkeys with DNAemia and all neoplasms. Our study establishes that infection and disease with North American LPDV from wild turkeys can be experimentally reproduced in domestic turkeys, laying the groundwork for future investigations into LPDV pathogenesis, development of diagnostic techniques, and understanding the impacts of LPDV on wild turkey populations.


Subject(s)
Poultry Diseases , Turkeys , Animals , Turkeys/virology , Poultry Diseases/virology , Poultry Diseases/pathology , Poultry Diseases/epidemiology , Lymphoproliferative Disorders/veterinary , Lymphoproliferative Disorders/virology , Lymphoproliferative Disorders/pathology , DNA, Viral/genetics , Female , Tumor Virus Infections/veterinary , Tumor Virus Infections/virology , Tumor Virus Infections/pathology , Tumor Virus Infections/epidemiology , Virus Shedding , North America/epidemiology , Male , Retroviridae Infections/veterinary , Retroviridae Infections/virology , Retroviridae Infections/pathology , Spleen/pathology , Spleen/virology
9.
Arch Virol ; 168(12): 298, 2023 Nov 27.
Article in English | MEDLINE | ID: mdl-38010495

ABSTRACT

This study focused on the involvement of koala retrovirus (KoRV) in pneumonia in koalas. Three deceased pneumonic koalas from a Japanese zoo were examined in this study. Hematological and histopathological findings were assessed, and KoRV proviral DNA loads in the blood and tissues were compared with those of eight other KoRV-infected koalas from different zoos. Demographic data and routine blood profiles were collected, and blood and tissue samples were analyzed to rule out concurrent infections in pneumonic koalas. KoRV subtyping and measurement of the KoRV proviral DNA load were performed by polymerase chain reaction (PCR) using specific primers targeting the pol and env genes. The results showed that the koalas had histopathologically suppurative and fibrinous pneumonia. Chlamydiosis was not detected in any of the animals. PCR analysis revealed KoRV-A, -B, and -C infections in all koalas, except for animals K10-11, which lacked KoRV-B. Significant variations in the proviral DNA loads of these KoRV subtypes were observed in all tissues and disease groups. Most tissues showed reduced KoRV loads in koalas with pneumonia, except in the spleen, which had significantly higher loads of total KoRV (2.54 × 107/µg DNA) and KoRV-A (4.74 × 107/µg DNA), suggesting potential immunosuppression. This study revealed the intricate dynamics of KoRV in various tissues, indicating its potential role in koala pneumonia via immunosuppression and opportunistic infections. Analysis of the levels of KoRV proviral DNA in different tissues will shed light on viral replication and the resulting pathogenesis in future studies.


Subject(s)
Gammaretrovirus , Phascolarctidae , Pneumonia , Retroviridae Infections , Animals , Retroviridae Infections/veterinary , Gammaretrovirus/genetics , Retroviridae/genetics , Proviruses/genetics , Pneumonia/veterinary , DNA
10.
Viruses ; 15(7)2023 07 12.
Article in English | MEDLINE | ID: mdl-37515223

ABSTRACT

Simian retrovirus subtype 8 (SRV-8) infections have been reported in cynomolgus monkeys (Macaca fascicularis) in China and America, but its pathogenicity and immunogenicity are rarely reported. In this work, the SRV-8-infected monkeys were identified from the monkeys with anemia, weight loss, and diarrhea. To clarify the impact of SRV-8 infection on cynomolgus monkeys, infected monkeys were divided into five groups according to disease progression. Hematoxylin (HE) staining and viral loads analysis showed that SRV-8 mainly persisted in the intestine and spleen, causing tissue damage. Additionally, the dynamic variations of blood routine indexes, innate and adaptive immunity, and the transcriptomic changes in peripheral blood cells were analyzed during SRV-8 infection. Compared to uninfected animals, red blood cells, hemoglobin, and white blood cells were reduced in SRV-8-infected monkeys. The percentage of immune cell populations was changed after SRV-8 infection. Furthermore, the number of hematopoietic stem cells decreased significantly during the early stages of SRV-8 infection, and returned to normal levels after antibody-mediated viral clearance. Finally, global transcriptomic analysis in PBMCs from SRV-8-infected monkeys revealed distinct gene expression profiles across different disease stages. In summary, SRV-8 infection can cause severe pathogenicity and immune disturbance in cynomolgus monkeys, and it might be responsible for fatal virus-associated immunosuppressive syndrome.


Subject(s)
Betaretrovirus , Retroviridae Infections , Retroviruses, Simian , Animals , Macaca fascicularis , Retroviridae Infections/veterinary , Virulence , Betaretrovirus/genetics
11.
Viruses ; 15(4)2023 03 24.
Article in English | MEDLINE | ID: mdl-37112816

ABSTRACT

Tsushima leopard cats (TLC; Prionailurus bengalensis euptilurus) only inhabit Tsushima Island, Nagasaki, Japan and are critically endangered and threatened by infectious diseases. The feline foamy virus (FFV) is widely endemic in domestic cats. Therefore, its transmission from domestic cats to TLCs may threaten the TLC population. Thus, this study aimed to assess the possibility that domestic cats could transmit FFV to TLCs. Eighty-nine TLC samples were screened, and FFV was identified in seven (7.86%). To assess the FFV infection status of domestic cats, 199 domestic cats were screened; 14.07% were infected. The phylogenetic analysis revealed that the FFV partial sequence from domestic cats and TLC sequences clustered in one clade, suggesting that the two populations share the same strain. The statistical data minimally supported the association between increased infection rate and sex (p = 0.28), indicating that FFV transmission is not sex dependent. In domestic cats, a significant difference was observed in FFV detection in feline immunodeficiency virus (p = 0.002) and gammaherpesvirus1 infection statuses (p = 0.0001) but not in feline leukemia virus infection status (p = 0.21). Monitoring FFV infection in domestic cats and TLC populations is highly recommended as part of TLC surveillance and management strategies.


Subject(s)
Immunodeficiency Virus, Feline , Retroviridae Infections , Spumavirus , Cats , Animals , Japan/epidemiology , Phylogeny , Retroviridae Infections/epidemiology , Retroviridae Infections/veterinary
12.
N Z Vet J ; 71(1): 1-7, 2023 Jan.
Article in English | MEDLINE | ID: mdl-36178295

ABSTRACT

Feline leukaemia virus (FeLV) is a retrovirus that infects domestic and wild cats around the world. FeLV infection is associated with the development of neoplasms, bone marrow disorders and immunosuppression. Viral subgroups arise from mutations in the FeLV genome or from recombination of FeLV with ancestral endogenous retroviruses in the cat genome. The retroviral endogenisation process has allowed generation of a diversity of endogenous viruses, both functional and defective. These elements may be part of the normal functioning of the feline genome and may also interact with FeLV to form recombinant FeLV subgroups, enhance pathogenicity of viral subgroups, or inhibit and/or regulate other retroviral infections. Recombination of the env gene occurs most frequently and appears to be the most significant in terms of both the quantity and diversification of pathogenic effects in the viral population, as well as affecting cell tropism and types of disease that occur in infected cats. This review focuses on available information regarding genetic diversity, pathogenesis and diagnosis of FeLV as a result of the interaction between endogenous and exogenous viruses.


Subject(s)
Cat Diseases , Endogenous Retroviruses , Leukemia, Feline , Retroviridae Infections , Cats , Animals , Leukemia Virus, Feline/genetics , Leukemia Virus, Feline/metabolism , Endogenous Retroviruses/genetics , Leukemia, Feline/genetics , Genes, env , Retroviridae Infections/veterinary , Retroviridae Infections/genetics , Cat Diseases/genetics
13.
Vet Ital ; 59(4)2023 Dec 31.
Article in English | MEDLINE | ID: mdl-38685825

ABSTRACT

Fowl Pox Viruses (FPV) infect chickens and turkeys giving rise to pock lesions on various body parts like combs, wattles, legs, shanks, eyes, mouth etc. The birds, affected with FPV, also show anemia and ruffled appearance which are clinical symptoms of Reticuloendotheliosis. Interestingly, the field strains of FPV are integrated with the provirus of Reticuloendotheliosis Virus (REV). Due to this integration, the infected birds, upon replication of FPV, give rise to free REV virions, causing severe immunosuppression and anemia. Pox scabs, collected from the infected birds, not only show positive PCR results upon performing FPV-specific 4b core protein gene PCR but also show positive results for the PCR of REV-specific env gene and FPV-REV 5'LTR junction. Homogenized suspension of the pock lesions, upon inoculating to the Chorio-allantoic Membrane (CAM) of 10 days old specific pathogen-free embryonated chicken eggs, produces characteristic pock lesions in serial passages. But the lesions also harbor REV mRNA or free virion, which can be identified by performing REV-specific env gene PCR using REV RNA from FPV-infected CAMs. The study suggests successful replication and availability of REV mRNA and free virion alongside the FPV virus, although the CAM is an ill-suited medium for any retroviral (like REV) growth and replication.


Subject(s)
Chickens , Fowlpox virus , Poultry Diseases , Reticuloendotheliosis virus , Animals , Reticuloendotheliosis virus/isolation & purification , Chickens/virology , Poultry Diseases/virology , Fowlpox virus/genetics , Fowlpox virus/isolation & purification , Specific Pathogen-Free Organisms , Chick Embryo , Fowlpox/virology , Chorioallantoic Membrane/virology , Retroviridae Infections/veterinary , Retroviridae Infections/virology
14.
Sci Rep ; 12(1): 15787, 2022 09 22.
Article in English | MEDLINE | ID: mdl-36138048

ABSTRACT

Koala retrovirus is a recently endogenized retrovirus associated with the onset of neoplasia and infectious disease in koalas. There are currently twelve described KoRV subtypes (KoRV-A to I, K-M), most of which were identified through recently implemented deep sequencing methods which reveal an animals' overall KoRV profile. This approach has primarily been carried out on wild koala populations around Australia, with few investigations into the whole-population KoRV profile of captive koala colonies to date. This study conducted deep sequencing on 64 captive koalas of known pedigree, housed in three institutions from New South Wales and South-East Queensland, to provide a detailed analysis of KoRV genetic diversity and transmission. The final dataset included 93 unique KoRV sequences and the first detection of KoRV-E within Australian koala populations. Our analysis suggests that exogenous transmission of KoRV-A, B, D, I and K primarily occurs between dam and joey. Detection of KoRV-D in a neonate sample raises the possibility of this transmission occurring in utero. Overall, the prevalence and abundance of KoRV subtypes was found to vary considerably between captive populations, likely due to their different histories of animal acquisition. Together these findings highlight the importance of KoRV profiling for captive koalas, in particular females, who play a primary role in KoRV exogenous transmission.


Subject(s)
Gammaretrovirus , Phascolarctidae , Retroviridae Infections , Animals , Australia/epidemiology , Female , Gammaretrovirus/genetics , Retroviridae/genetics , Retroviridae Infections/epidemiology , Retroviridae Infections/veterinary
15.
Proc Natl Acad Sci U S A ; 119(33): e2122680119, 2022 08 16.
Article in English | MEDLINE | ID: mdl-35943984

ABSTRACT

Koala retrovirus (KoRV) subtype A (KoRV-A) is currently in transition from exogenous virus to endogenous viral element, providing an ideal system to elucidate retroviral-host coevolution. We characterized KoRV geography using fecal DNA from 192 samples across 20 populations throughout the koala's range. We reveal an abrupt change in KoRV genetics and incidence at the Victoria/New South Wales state border. In northern koalas, pol gene copies were ubiquitously present at above five per cell, consistent with endogenous KoRV. In southern koalas, pol copies were detected in only 25.8% of koalas and always at copy numbers below one, while the env gene was detected in all animals and in a majority at copy numbers above one per cell. These results suggest that southern koalas carry partial endogenous KoRV-like sequences. Deep sequencing of the env hypervariable region revealed three putatively endogenous KoRV-A sequences in northern koalas and a single, distinct sequence present in all southern koalas. Among northern populations, env sequence diversity decreased with distance from the equator, suggesting infectious KoRV-A invaded the koala genome in northern Australia and then spread south. The exogenous KoRV subtypes (B to K), two novel subtypes, and intermediate subtypes were detected in all northern koala populations but were strikingly absent from all southern animals tested. Apart from KoRV subtype D, these exogenous subtypes were generally locally prevalent but geographically restricted, producing KoRV genetic differentiation among northern populations. This suggests that sporadic evolution and local transmission of the exogenous subtypes have occurred within northern Australia, but this has not extended into animals within southern Australia.


Subject(s)
Endogenous Retroviruses , Evolution, Molecular , Gammaretrovirus , Phascolarctidae , Animals , Endogenous Retroviruses/genetics , Gammaretrovirus/genetics , Genetic Variation , New South Wales , Phascolarctidae/virology , Retroviridae Infections/transmission , Retroviridae Infections/veterinary , Retroviridae Infections/virology , Victoria
16.
Article in German | MEDLINE | ID: mdl-35790167

ABSTRACT

Feline leukemia virus (FeLV) infection affects cats worldwide. The course of FeLV infection can change and vary over time. The complex pathogenesis, the availability of many different testing methods, and the interpretation of test results are often challenging for veterinarians. Cats with progressive infection (persistently p27 antigen-positive) shed FeLV mainly through saliva and are therefore considered a source of infection for uninfected cats. Diagnosing regressive infection is often challenging, since it usually cannot be detected by commonly used point of care-tests (p27 antigen test) and thus, it often remains undetected. Nevertheless, cats with regressive infection are FeLV carriers (provirus-positive) and when the immune system is suppressed, reactivation of the infection and FeLV-associated clinical signs can occur. Abortively infected cats are never viraemic, do not shed virus, and do not develop clinical signs. Abortive infection can solely be diagnosed via antibodies detection in blood. A new point-of-care test for the identification of antibodies against FeLV p15E antigen has recently been introduced on the European market and is currently being evaluated.


Subject(s)
Cat Diseases , Retroviridae Infections , Animals , Antibodies, Viral , Cat Diseases/diagnosis , Cats , Leukemia Virus, Feline , Retroviridae Infections/diagnosis , Retroviridae Infections/veterinary
17.
J Gen Virol ; 103(6)2022 06.
Article in English | MEDLINE | ID: mdl-35762858

ABSTRACT

Koala retrovirus (KoRV) is unique amongst endogenous (inherited) retroviruses in that its incorporation to the host genome is still active, providing an opportunity to study what drives this fundamental process in vertebrate genome evolution. Animals in the southern part of the natural range of koalas were previously thought to be either virus-free or to have only exogenous variants of KoRV with low rates of KoRV-induced disease. In contrast, animals in the northern part of their range universally have both endogenous and exogenous KoRV with very high rates of KoRV-induced disease such as lymphoma. In this study we use a combination of sequencing technologies, Illumina RNA sequencing of 'southern' (south Australian) and 'northern' (SE QLD) koalas and CRISPR enrichment and nanopore sequencing of DNA of 'southern' (South Australian and Victorian animals) to retrieve full-length loci and intregration sites of KoRV variants. We demonstrate that koalas that tested negative to the KoRV pol gene qPCR, used to detect replication-competent KoRV, are not in fact KoRV-free but harbour defective, presumably endogenous, 'RecKoRV' variants that are not fixed between animals. This indicates that these populations have historically been exposed to KoRV and raises questions as to whether these variants have arisen by chance or whether they provide a protective effect from the infectious forms of KoRV. This latter explanation would offer the intriguing prospect of being able to monitor and selectively breed for disease resistance to protect the wild koala population from KoRV-induced disease.


Subject(s)
Gammaretrovirus , Phascolarctidae , Retroviridae Infections , Animals , Australia/epidemiology , Gammaretrovirus/genetics , Retroviridae/genetics , Retroviridae Infections/veterinary
18.
Proc Natl Acad Sci U S A ; 119(25): e2201844119, 2022 06 21.
Article in English | MEDLINE | ID: mdl-35696585

ABSTRACT

Retroviruses have left their legacy in host genomes over millions of years as endogenous retroviruses (ERVs), and their structure, diversity, and prevalence provide insights into the historical dynamics of retrovirus-host interactions. In bioinformatic analyses of koala (Phascolarctos cinereus) whole-genome sequences, we identify a recently expanded ERV lineage (phaCin-ß) that is related to the New World squirrel monkey retrovirus. This ERV expansion shares many parallels with the ongoing koala retrovirus (KoRV) invasion of the koala genome, including highly similar and mostly intact sequences, and polymorphic ERV loci in the sampled koala population. The recent phaCin-ß ERV colonization of the koala genome appears to predate the current KoRV invasion, but polymorphic ERVs and divergence comparisons between these two lineages predict a currently uncharacterized, possibly still extant, phaCin-ß retrovirus. The genomics approach to ERV-guided discovery of novel retroviruses in host species provides a strong incentive to search for phaCin-ß retroviruses in the Australasian fauna.


Subject(s)
Betaretrovirus , Endogenous Retroviruses , Host Microbial Interactions , Phascolarctidae , Retroviridae Infections , Animals , Betaretrovirus/genetics , Endogenous Retroviruses/genetics , Evolution, Molecular , Genome , Genomics , Phascolarctidae/genetics , Phascolarctidae/virology , Retroviridae Infections/veterinary , Retroviridae Infections/virology
19.
PLoS Pathog ; 18(5): e1010513, 2022 05.
Article in English | MEDLINE | ID: mdl-35588407

ABSTRACT

Koala Retrovirus (KoRV) has been associated with neoplasia in the vulnerable koala (Phascolarctos cinereus). However, there are conflicting findings regarding its association with secondary disease. We undertook a large-scale assessment of how the different KoRV subtypes and viral load are associated with Chlamydia pecorum infection and a range of disease pathologies in 151 wild koalas admitted for care to Currumbin Wildlife Hospital, Australia. Viral load (KoRV pol copies per ml of plasma) was the best predictor of more disease pathologies than any other KoRV variable. The predicted probability of a koala having disease symptoms increased from 25% to over 85% across the observed range of KoRV load, while the predicted probability of C. pecorum infection increased from 40% to over 80%. We found a negative correlation between the proportion of env deep sequencing reads that were endogenous KoRV-A and total KoRV load. This is consistent with suppression of endogenous KoRV-A, while the exogenous KoRV subtypes obtain high infection levels. Additionally, we reveal evidence that the exogenous subtypes are directly associated with secondary disease, with the proportion of reads that were the endogenous KoRV-A sequence a negative predictor of overall disease probability after the effect of KoRV load was accounted for. Further, koalas that were positive for KoRV-D or KoRV-D/F were more likely to have urogenital C. pecorum infection or low body condition score, respectively, irrespective of KoRV load. By contrast, our findings do not support previous findings that KoRV-B in particular is associated with Chlamydial disease. Based on these findings we suggest that koala research and conservation programs should target understanding what drives individual differences in KoRV load and limiting exogenous subtype diversity within populations, rather than seeking to eliminate any particular subtype.


Subject(s)
Chlamydia Infections , Gammaretrovirus , Phascolarctidae , Retroviridae Infections , Animals , Animals, Wild , Chlamydia Infections/veterinary , Retroviridae Infections/veterinary
20.
J Feline Med Surg ; 24(8): e194-e202, 2022 08.
Article in English | MEDLINE | ID: mdl-35635064

ABSTRACT

OBJECTIVES: The relationship between blood group antigens and disease has been studied in humans. Blood types have been associated with both decreased and increased rates of various infections. In addition, blood group expression has been shown to vary with some cancers and gastrointestinal diseases. The objective of this study was to explore whether there is a relationship between blood type and retroviral infections in cats. METHODS: Case records from a veterinary research laboratory, veterinary teaching hospitals and veterinary blood banks were retrospectively searched for cats where both blood type and retroviral status (feline leukemia [FeLV], feline immunodeficiency virus [FIV] or both) were listed (part 1). In addition, a sample of 33 cats with confirmed FIV infection was genotyped to determine blood groups (part 2). RESULTS: In part 1, 709 cats were identified, 119 of which were positive for retroviral infection. Among all cases, 621 were type A (87.6%), 68 were type B (9.6%) and 20 were type AB (2.8%). There was no relationship between overall retroviral status (positive/negative) and blood type (P = 0.43), between FeLV status and blood type (P = 0.86) or between FIV status and blood type (P = 0.94). There was no difference in the distribution of blood types between cats that were healthy and typed as possible blood donors vs sick cats that were typed prior to a possible transfusion (P = 0.13). In part 2, of the 33 FIV-infected cats, all blood group genotypes were identified, although this test did not discriminate type A from type AB. CONCLUSIONS AND RELEVANCE: No relationship was identified between feline retroviral status and blood type in this study. The relationship between blood type and other disease states requires further study in veterinary patients.


Subject(s)
Blood Group Antigens , Cat Diseases , Feline Acquired Immunodeficiency Syndrome , Immunodeficiency Virus, Feline , Leukemia, Feline , Retroviridae Infections , Animals , Cat Diseases/epidemiology , Cats , Humans , Leukemia Virus, Feline , Retrospective Studies , Retroviridae Infections/epidemiology , Retroviridae Infections/veterinary
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