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Parvoviruses are prevalent and disruptive infectious agents of laboratory rats. Risks to rat-based research from infection are increased by the persistence of virus in immune rats and by prenatal transmission of infection. The mechanisms leading to viral persistence and prenatal infection are poorly understood and have been difficult to study for lack of reliable and humane induction methods. We report here protocols for inducing persistent and prenatal infection without causing clinical disease using the UMass strain of rat virus (RV), a common rat parvovirus. Infant rats inoculated by the oronasal route at 6 days of age had greater than 90% prevalence of persistent infection. RV-UMass also induced intrauterine infection in pregnant rats inoculated by the oronasal route. Inoculation of dams at gestation day 9 frequently caused severe disease in the fetuses whereas inoculation at gestation day 12 caused primarily asymptomatic fetal infection that persisted post partum RV-UMass infection facilitates study of parvoviralhost interactions that are relevant to laboratory rats and which also may improve understanding of persistent and prenatal human parvovirus infection.
Parvoviruses are among the most common infectious agents of laboratory rodents and major impediments to rodent-based research. The original prototypic rodent parvoviruses-minute virus of mice, rat virus, and H-1 virus-have recently been joined by biologically and antigenically distinct parvoviruses in mice, rats, and hamsters. Recognition of the increased diversity of rodent parvoviruses presents new challenges for determining the impact of parvovirus infection on research and for detecting, preventing, and eliminating infection. This review summarizes current knowledge about rodent parvoviruses and parvovirus infections, highlighting recent research on newly isolated virus strains.
Inoculation of the UMass strain of rat virus (RV-UMass) into adult immunocompetent rats results in a prolonged subclinical infection that is resolved in 4 to 8 wk. Co-labeling studies, using in situ hybridization (ISH) and immunohistochemistry (IHC), confirmed that RV-UMass was lymphocytotropic and capable of infecting CD4+ and CD8+ T cells as well as B cells. ISH studies also revealed that virus replication was restricted in unstimulated cells but was productive in concanavalin A-stimulated lymphocytes. A corollary of productive infection of lymphocytes was the suppression of lymphocyte functions. Although RV-UMass did not appear to induce phenotypic changes during the course of infection, cells from infected rats had diminished proliferation and cytolytic responses. Both peripheral and mesenteric lymph node cells exhibited only partial recovery of their proliferative and cytolytic capacities one month after infection. Furthermore, RV-UMass-infected tissue culture maintained alloreactive CD4+ T cells in vitro, and a nonlethal infection of this T cell line inhibited Ag- and IL-2-induced proliferation. Because parvoviruses are widespread among laboratory rodents, these findings emphasize the importance of identifying and excluding parvovirus infection in rodents and in cultures of rat T lymphocytes.
Infection of young adult BALB/cByJ mice with mouse parvovirus-1, a newly recognized, lymphocytotropic, nonpathogenic parvovirus, was examined by in situ hybridization. Virus appeared to enter through the small intestine and was disseminated to the liver and lymphoid tissues. Strand-specific probes detected virion DNA in a consistently larger number of cells than replicative forms of viral DNA and/or viral mRNA. The number of signal-positive cells in the intestinal mucosa, lymph nodes, spleen, and thymus increased through day 10 after oral inoculation but decreased after seroconversion. Positive cells were still detected, however, in peripheral lymphoid tissues of mice examined at 9 weeks postinoculation. The results underscore the need to assess potential effects of persistent mouse parvovirus-1 infection on immune function in mice.
The environmental stability and transmission of a field isolate of rat virus was tested under conditions resembling those that may be encountered during the housing of laboratory rats. The rat virus kept in physiologic salt solutions at room temperature remained infective for at least 5 weeks. Similar virus preparations remained infective after drying on a plastic surface for 3 to 5 weeks, depending on initial virus concentration. Varying the protein concentration in the medium had no significant effect on stability. Bedding from cages housing infected litters induced seroconversions in sentinel rats for at least 5 weeks after storage of rat virus at room temperature. Infection was transmitted between rats housed in open cages in a Trexler isolator but not between rats housed in microisolator cages connected by tunnels partitioned by wire screens with a mesh size of 1.67 mm. The results indicate that rat virus can remain infective after prolonged exposure to an ambient environment and suggest that infection is more readily transmitted by animal-to-animal contact or by fomites than by aerosolization of exhaled virus.
In contrast to euthymic juvenile rats, which develop acute, self-limiting infection with rat virus (RV), RV infection of juvenile athymic rats was persistent for up to 12 weeks as demonstrated by recovery of infective virus, transmission to cagemates, and detection of viral DNA in the lungs. Administration of RV antiserum at the time of virus inoculation prevented persistent infection in five of six rats. Among rats given RV antiserum 1 week after virus, the interval at which euthymic rats begin to seroconvert, RV was not detected 1 week later but was recovered from four of six rats 3 weeks later. Results of these studies confirm that T-cell deficiency facilitates persistent RV infection and indicate that antibody provides significant protection from persistent infection only if it is present at the time of virus inoculation. The results support the concept that factors which prevent persistent infection in euthymic rats act early after virus inoculation and may include cellular immunity.
In situ hybridization and virus titration were used to characterize early stages of rat virus (RV) infection of rat pups after oronasal inoculation. Results suggest that virus enters through the lung and that early viremia leads rapidly to pantropic infection. Cells derived from all three germ layers were infected with RV, but those of endodermal and mesodermal origin were the predominant targets. Infection of vascular endothelium was widespread and was associated with hemorrhage and infarction in the brain. Convalescence from acute infection was accompanied by mononuclear cell infiltrates at sites containing RV DNA. Viral DNA was also detected in endothelium, fibroblasts and smooth muscle myofibers four weeks after inoculation. Further examination of these cells as potential sites of persistent infection is warranted.
The epizootiologic properties of Herpesvirus simiae (B virus) were studied in singly housed macaques (Macaca mulatta and M. fascicularis) in a biomedical vivarium to determine whether commonly encountered environments and procedures such as quarantine, breeding, Caesarean section, parturition, and social stress induced virus shedding and transmission. Macaques were tested serologically and for infectious virus. Oral, conjunctival, and vaginal swab samples were obtained repeatedly. Virus excretion was not detected during a 7-week quarantine of 32 newly acquired, singly housed animals tested every other week for 6 weeks, and none of 19 seronegative animals from this group seroconverted during 7 weeks in quarantine. No virus shedding was detected in 16 seropositive animals tested weekly for 3 weeks after Caesarean section or normal parturition or in 11 seropositive animals following introduction of new males to animals rooms. One animal seroconverted after repeated breeding of seropositive animals to seronegative partners. Fifty-three singly housed offspring remained seronegative for up to 10 years, even if born to seropositive dams, and only 1 of 86 singly housed animals less than 7 years old was seropositive. These results suggest that shedding of B virus from seropositive macaques is uncommon, when subjected to common laboratory procedures or environments, and that transmission is rare in singly housed animals. These results may be useful in establishing B virus-free colonies of macaques.
A virus antigenically related to, but distinct from, minute virus of mice was assessed for infectivity in neonatal and weanling random-bred mice and was equally infectious for both age groups. The virus, designated a mouse "orphan" parvovirus (OPV), was also localized in tissues of experimentally infected random-bred, inbred, and immunodeficient mice by in situ hybridization. Hybridization signal was seen in exocrine and endocrine pancreas, abdominal lymph nodes, mesentery, intestine, and sporadically in other tissues of Sencar, C3H, and DBA mice inoculated as infants. In adult BALB/c severe combined immunodeficient (scid) mice, signal was seen in lung, liver, spleen, lymph nodes, and intestine but not in pancreas. Transmission of OPV by Sencar mice inoculated as infants was intermittent, whereas transmission by Sencar mice inoculated as weanlings was consistent during the first 2 weeks both by direct contact and by exposure to soiled bedding. The longest duration of transmission was 6 weeks among mice inoculated as infants. The results implicate a role for urinary, fecal, and perhaps respiratory excretion of virus, depending on host genotype and route of virus exposure. They also suggest that evaluation of pancreatic and immune function during acute infection is warranted.
Transforming growth factor beta 1 (TGF-beta 1) is a member of a gene superfamily that regulates growth, differentiation, and function of cells including several in vitro immune functions. Our study examined the systemic effect of TGF-beta 1 on murine delayed-type hypersensitivity (DTH), a model of T cell-mediated immunity that may depend on mast cells. Mice were immunized by i.v. injection of SRBC or by topical application of picryl chloride, and the responses were elicited by cutaneous challenge with the appropriate Ag. Systemic administration of TGF-beta 1 at the time of Ag challenge significantly reduced both the early and late phases of DTH. The effect of TGF-beta 1 on the release of serotonin from mouse peritoneal mast cells was examined. Results indicated that in vivo treatment with TGF-beta 1 24 h before mast cell harvest inhibited the in vitro release of serotonin in response to challenge with compound 48/80, or anti-IgE antibody. In contrast, treatment with TGF-beta 1 24 h before Ag challenge did not inhibit DTH indicating that mast cells may not be the direct target for TGF-beta 1 in the DTH models. In vivo treatment with TGF-beta 1 inhibited the IgE-mediated, mast cell-dependent, immediate hypersensitivity skin swelling response when injected at the time of, or 24 h before challenge. This suggests an effect on mast cells and a regulatory role for TGF-beta 1 in IgE-mediated responses.
The duration of infection with rat virus (RV), an autonomous rodent parvovirus, was examined at multiple intervals over 6 months in rats inoculated by the oronasal route at 2 days of age or 4 weeks of age and individually housed after weaning to prevent cross-infection. Infectious virus was recovered by explant culture from 32 of 80 rats inoculated as pups and was detected as late as 6 months after inoculation. Rats inoculated as juveniles developed acute infection, but virus was not detected beyond 7 weeks after inoculation. Tissues from rats in both age groups were surveyed for RV DNA by Southern blotting using a double-stranded DNA probe made from a 1700 bp cloned fragment of RV spanning map units 0.19-0.52. Band patterns representative of acute infection (juvenile rats) were consistent with the replicating form of RV DNA, whereas patterns representative of persistent infection (rats inoculated as pups) were suggestive of defective or non-productive viral replication.
Two day-old athymic (rnu/rnu) and euthymic (rnu/+) rat pups nursing immune or non-immune dams were inoculated oronasally with the Yale strain of rat virus (RV-Y). All athymic and euthymic pups (57/57) from immune dams remained clinically normal, whereas 51 of 66 athymic and euthymic pups from non-immune dams died within 30 days. Infectious RV was detected by explant culture in 12 of 15 surviving pups of both genotypes from non-immune dams 30 days after inoculation, but in none of the 57 surviving pups from immune dams. RV-Y DNA was detected by Southern blotting in kidneys of surviving athymic pups from non-immune dams but was not detected in pups from immune dams. Euthymic pups from immune dams appeared not to produce endogenous antibody to RV after virus challenge, whereas euthymic pups from non-immune dams produced high-titered RV immune serum. Pups of both genotypes given immune serum prior to or with RV were fully protected from disease and persistent infection, whereas pups given immune serum 24 hours after RV were partially protected. These studies show that RV antibody offers significant protection against lethal and persistent RV infection.
Cell lines of rodent origin were tested for susceptibility to infection with rat coronavirus (RCV), including sialodacryoadenitis virus (SDAV) and Parker's rat coronavirus (PRCV). LBC rat mammary adenocarcinoma cells were susceptible only if the cells were treated with diethylaminoethyl-dextran (DEAE-D). A recent report that RCVs grow well in L2 mouse fibroblast cells was confirmed and expanded. RCV infection of L2 cells was substantially enhanced by treatment of cells with trypsin but not by treatment with DEAE-D. Primary isolation of SDAV from experimentally infected rats was accomplished using trypsin-treated L2 cells. One of 13 additional cell lines tested (rat urinary bladder epithelium, RBL-02) supported growth of RCVs, and growth was slightly enhanced by DEAE-D, but not by trypsin. These refinements of in vitro growth conditions for RCVs should facilitate further studies of their basic biology and improve options for primary isolation.
Four genetic loci were tested for linkage with loci that control genetic resistance to lethal ectromelia virus infection in mice. Three of the loci were selected because of concordance with genotypes assigned to recombinant inbred (RI) strains of mice derived from resistant C57BL/6 and susceptible DBA/2 (BXD) mice on the basis of their responses to challenge infection. Thirty-six of 167 male (C57BL/6 x DBA/2)F1 x DBA/2 backcross (BC) mice died (22%), of which 27 (75%) were homozygous for DBA/2 alleles at Hc and H-2D. Twenty-eight percent of sham-castrated and 6% of sham-ovariectomized BC mice were susceptible to lethal mousepox, whereas 50% of gonadectomized mice were susceptible. There was no linkage evident between Hc or H-2D and loci that controlled resistance to lethal ectromelia virus infection in 44 castrated BC mice. Mortality among female mice of BXD RI strains with susceptible or intermediate male phenotypes was strongly correlated (r = 0.834) with male mortality. Gonadectomized C57BL/6 mice were as resistant as intact mice to lethal ectromelia virus infection. These results indicate that two gonad-dependent genes on chromosomes 2 and 17 and one gonad-independent gene control resistance to mousepox virus infection, that males and females share gonad-dependent genes, and that the gonad-independent gene is fully protective.
Neonates of various inbred strains of mice expressed three susceptibility phenotypes in response to infection with the lymphocyte-specific variant of minute virus of mice (MVMi). MVMi caused asymptomatic infections in C57BL/6 (B6) mice, lethal infections with intestinal hemorrhage in DBA/2 mice, and lethal infections with renal papillary hemorrhage in BALB/c, SWR, SJL, CBA, and C3H (H) mice. Sequential virus titration, histology, in situ hybridization with a full-length MVMi genomic probe, and immunohistochemistry for viral capsid antigen were used to compare the pathogenesis of MVMi infection in B6 and H mice. Peak infectious virus titers in heart, lung, liver, spleen, kidney and intestine did not differ between strains but brains of B6 mice, unlike H mice, were refractory to infection. Lesions in H mice consisted of renal papillary infarcts and accelerated involution of hepatic erythropoietic foci. No lesions were seen in B6 mice. In situ hybridization and immunohistochemistry indicated that three cell types were primary targets of MVMi; endothelium, lymphocytes, and hepatic erythropoietic precursors. Renal papillary infarcts in H mice were associated with virus replication in endothelial nuclei of the vasa recta. In contrast to the parity of infectious virus titers between strains, fewer cells in target organs of B6 mice were labeled with the MVMi probe then were labeled in H mice and fewer cells expressed viral capsid antigen. These results indicate (a) that the allotropic variants of minute virus of mice may be useful tools to dissect molecular mechanisms of parvovirus virulence, (b) that the virulence of MVMi for neonatal mice does not reside in its lymphotropism, and (c) that genetic susceptibility to lethal MVMi infection may result from overproduction of noninfectious virus products.
The course of Lyme borreliosis in LEW/N rats inoculated intraperitoneally as infants with 10(6) Borrelia burgdorferi was followed for 360 days. Spirochetes were detected in the blood through 30 days, in the brain through 60 days, and persisted in the spleen, liver, kidneys and articular tissue through 360 days. Acute exudative arthritis, tendonitis, and bursitis were evident in multiple joints by day 30. Arthritis regressed thereafter but capsular fibrosis and lymphoplasmacytic infiltrates persisted throughout the study. Several rats developed exacerbations of acute arthritis within days 180-360, a pattern similar to that encountered in human Lyme disease. Rats had a high prevalence of nonsuppurative myocarditis and vasculitis during days 90-360. Spirochetes were visualized by microscopy in joints and other tissues during the first month of infection, but were seen only sporadically thereafter. All rats seroconverted to B. burgdorferi by day 30. IgM titers persisted and IgG titers rose progressively through day 360. Immunoblots revealed IgM reactivity to a single 41 kDa protein until 360 days, when reactivity to a 60 kDa protein emerged. IgG reactivity occurred against progressively more proteins with time, indicating continued antigenic stimulation. Chronic and recurrent arthritic lesions and myocardial involvement suggest that the rat is a reliable model for further investigation.
To determine whether SDAV infection persists in athymic rats, weanling athymic rats and euthymic rats were inoculated intranasally with 10(4) TCID50 of SDAV and examined periodically for up to 90 days. Viral antigen and lesions characteristic of acute SDAV infection, including rhinotracheitis, bronchitis and sialodacryoadenitis, were detected in both groups of rats during the first week. In euthymic rats, tissues were under repair and viral antigen was undetectable by day 17, and tissues were histologically normal by day 31 except for mild focal dacryoadenitis. In athymic rats, viral antigen and chronic active inflammation of respiratory tract, salivary and lacrimal glands persisted through day 90. Inflammation and viral antigen also were observed in the transitional epithelium of the renal pelvis and urinary bladder as late as day 90. Virus was isolated from nasopharynx, lung, salivary gland and Harderian gland of athymic rats through day 90. All euthymic rats seroconverted to SDAV by day 6, whereas all athymic rats remained seronegative through day 31, and two of six were seropositive by day 90. As judged by seroconversion of contact sentinels, six of six athymic rats shed virus through 6 weeks, and five of six through 10 weeks. These results indicate that SDAV persists in athymic rats, and that normal T cell function is required for host defenses against SDAV.