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Biomedical subjects

J M Sharma

Publications and source records attributed to J M Sharma.

At least 73 records · Page 4Linked to original sources

Presence of natural killer cells in specific-pathogen-free chickens.

Spleen cells of normal specific-pathogen-free N, P, and 15 X 7 chickens were cytotoxic in vitro for target cells of Marek's disease lymphoma line MSB-1. The natural killer (NK) cell activity, best expressed in chickens over 7 weeks old, varied among several genetic lines of chickens tested. The NK cells were thermolabile, and incubation of the cells at 37 degrees C for 30--60 minutes resulted in substantial loss of cytotoxicity. The specificity of NK effector cells was directed against common antigen(s) on tumor cell lines of diverse origin but not on normal adult or embryonic cells.

Animals↗

Development of cell-mediated immunity to Marek's disease tumor cells in chickens inoculated with Marek's disease vaccines.

Chickens inoculated with herpesvirus of turkeys or with apathogenic or attenuated vaccine strains of Marek's disease virus (MDV) developed a T-cell-mediated immune response to Marek's disease (MD) tumor cells. This immune response was detected in a 4-hour 51Cr-release assay in which effector cells obtained from spleens of vaccinated chickens were reacted with 51Cr-labeled target cells of an MD lymphoblastoid cell line (MSB-1). The cytotoxic effector cells generated by the vaccine viruses had characteristics similar to those noted previously for anti-MSB-1 effector cells generated by MDV. The immune response was specific to MSB-1 cells, because another target cell line (TLT) antigenically unrelated to MSB-1 cells was not lysed by the effector cells nor did the unrelated target cells inhibit the cytotoxicity of effector cells against MSB-1 target in a cold-target inhibition assay. Because MSB-1 cells contain MD tumor-associated surface antigen, we postulated that the immune response detected in the vaccinated chickens may be directed against this antigen and that the antitumor antigen immunity may play a role in the mechanism of vaccine protection against lymphoma development by pathogenic MDV.

Animals↗

Suppression and enhancement of mitogen response in chickens infected with Marek's disease virus and the herpesvirus of turkeys.

The kinetics of phytohemagglutinin (PHA) response of peripheral blood lymphocytes from chickens infected with oncogenic Marek's disease (MD) virus (MDV) or nononcogenic herpesvirus of turkeys (HVT) was studied with a whole blood microassay. At about 7 days after inoculation, a depression in PHA response was observed in MDV-inoculated resistant line N or susceptible line 7(2) chickens and in HVT-inoculated line 7(2) chickens. All chickens initially regained their PHA responsiveness. Susceptible chickens that died of MD or developed MD lymphoma in later stages of virus infection showed a second severe depression in PHA response. No depression was observed in HVT-vaccinated chickens when challenged with MDV. The PHA response of MDV-inoculated chickens that survived MD, HVT-inoculated chickens, and HVT-vaccinated MDV-challenged chickens showed evidence of enhancement. The depression of PHA response was studied and was attributed to the suppressive effect of macrophages on T-cell response, a finding consistent with our previous studies on MDV suppression of PHA response.

Animals↗

Suppression of mitogen-induced proliferation of normal spleen cells by macrophages from chickens inoculated with Marek's disease virus.

Spleen cells from chickens 7 days after inoculation with Marek's disease virus (MDV) responded poorly to stimulation by phytohemagglutinin (PHA). Addition of these cells to syngeneic normal spleen cells caused of marked suppression of the PHA response of the normal cells. The MDV spleen cells also inhibited the DNA synthesis of MSB-1 lymphoblastoid cells in vitro. The suppressive activity is attributed to the presence in MDV spleen cells of a population of suppressor cells with characteristics typical of macrophages. The suppressor cell activity was not removable by treatment with anti-T or anti-B serum with C, but it was reversible by treatment with carrageenan or carbonyl iron/magnet, by passage through glass wool column, and by adherence to plastic Petri dishes. The adherent MDV spleen cells also showed strong suppressor cell activity against syngeneic normal spleen cells.

Animals↗

Role of tumor antigen in vaccine protection in Marek's disease.

Chickens vaccinated with HVT developed lymphoproliferative lesions and a cell-mediated immune response to MATSA. These observations are considered in view of the overall mechanism of vaccine protection in MD. A mechanism of vaccine action is proposed that suggests that MATSA immunity in vaccinated chickens may play an important role in protection.

Animals↗

Reduced incidence of Marek's disease gross lymphomas in T-cell-depleted chickens.

Chickens of line 7, highly susceptible to Marek's disease (MD), were depleted of T-cells by neonatal thymectomy, total-body gamma-irradiation, and multiple injections with antithymocyte serum. In two replicate experiments, significantly fewer gross lymphomas were present in T-cell-depleted chickens than in intact or in T-cell-depleted, reconstituted hatchmates; these findings provided evidence that T-cells may be the principal target for MD virus (MDV) transformation, T-cell depletion was not complete, and the presence of microscopic lesions in T-cell-depleted chickens was attributed to residual T-cells. Ten lymphomas from intact chickens and 2 lymphomas from a T-cell-depleted chicken were examined for cellular composition. All lymphomas consisted predominantly of T-cells. The results of this and other published studies indicated that T-cells may have a dual role in MD; They may serve as a target for lymphoma formation by MDV and also may participate in immune surveillance against the disease in resistant chickens.

Animals↗

Cell-mediated cytotoxic response to cells bearing Marek's disease tumor-associated surface antigen in chickens infected with Marek's disease virus.

In a microcytotoxicity test in which 51Cr-labeled cells of a Marek's disease (MD) lymphoblastoid line (MSB-1 line) were used, cell-mediated cytotoxicity of spleen cell suspensions prepared from chickens inoculated with MD virus was demonstrated. This cytotoxic response, presumably directed against MD tumor-associated surface antigen, was detectable briefly after virus infection and paralleled the appearance of early lymphoproliferative lesions characteristic of MD.

Animals↗

Suppressive effect of cyclophosphamide on the T-cell system in chickens.

Neonatal administration of 16 mg of cyclophosphamide in inbred chickens resulted in a transient, but profound, deficiency in the in vitro proliferative response of spleen cells. Functional T-cell deficiency was accompanied by a marked morphological degeneration in the thymus and thymus-dependent areas in the spleen.

Animals↗

Cell-mediated immunity to tumor antigen in Marek's disease: susceptibility of effector cells to antithymocyte serum and enhancement of cytotoxic activity by Vibrio cholerae neuraminidase.

Spleen cells from chickens inoculated 7 to 8 days previously with Marek's disease virus were cytotoxic for 51Cr-labeled cells of a Marek's disease lymphoblastoid cell line (MSB-1 line) in a 4-h in vitro cytotoxic assay. The cytotoxic activity of spleen cells was inhibited by pretreatment with antithymocyte serum and complement, but not with complement alone or in combination with anti-bursa cell serum or normal preimmune serum. The conclusion was that the effector cell in the above cytotoxic assay was a thymus-derived lymphocyte. Also, pretreatment of target cells with Vibrio cholerae neuraminidase enhanced in vitro cytotoxic activity of effector cells. Similar enzymatic treatment of effector cells had a negligible effect on cytotoxicity.

Animals↗

Characteristics of JMV Marek's disease tumor: a nonproductively infected transplantable cell lacking in rescuable Virus.

Cells of the JMV Marek's disease (MD) tumor, originally produced by rapid serial passage of MD lymphoma cells in chickens, were characterized to determine whether they were of host or donor origin and to ascertain certain virus-host cell interrelationships. Differences noted in blood group B surface alloantigens between tumor cells and host lymphocytes indicated a probable nonhost origin (i.e., transplantability) of the tumor. JMV spleen tumors contained predominantly large lymphoblasts bearing MD tumor-associated surface antigen. DNA from JMV tumor cell suspensions hybridized significantly with MD virus cRNA, which indicated that JMV cells contained at least a portion of the MD virus genome. No MD virus was rescued from JMV tumors by techniques suitable for rescue of virus from MD lymphomas. The JMV tumor cells were also devoid of MD virus-specific antigens. These properties differed markedly from those of MD lymphoma cells and make the JMV tumor cell a unique, potentially valuable, tool for further study of oncogenic herpesvirus infection and tumor immunity in the chicken.

ABO Blood-Group System↗

Effect of in vitro adaptation of Marek's disease virus on pock induction on the chorioallantoic membrane of embryonated chicken eggs.

Cell-associated preparations of several isolates of Marek's disease virus produced more pocks on the chorioallantoic membrane of embryonated chicken eggs than plaques in duck embryo fibroblasts, thus indicating that lesion response in eggs was more sensitive than cytopathic response in duck embryo fibroblasts for assaying low-passage Marek's disease virus. Adaptation of the virus to cell cultures by serial passages, however, substantially reduced its pock response so that the titer ratio (plaque-forming units in duck embryo fibroblasts/pock-forming units in eggs) of cell culture-adapted Marek's disease virus was 1 or higher. The decreased pock response could not be attributed to selection of preexisting virus variant(s) with low affinity for chorioallantoic membrane because cloned Marek's disease virus had a good pock response at low cell culture passage levels, but this response decreased as the virus was attenuated by serial cell culture passage.

Animals↗

The effect of B-cell immunosuppression on age-related resistance of chickens to Marek's disease.

Chickens were bursectomized by cyclophosphamide treatment at hatching. At 8 or 9 weeks of age, bursectomized and unbursectomized hatchmates, free from prior infection, were challenged with pathogenic Marek's disease virus. Oncogenicity of the virus inoculum was confirmed by inoculating 1-day-old susceptible chickens. At the time of virus challenge, blood cells from the cyclophosphamide-treated chickens were able to mount a vigorous graft-versus-host reaction in allogeneic embryos. This ability indicated that the thymus function was intact. There were no significant differences in Marek's disease response of bursectomized and unbursectomized chickens, in spite of a severe defect in the bursa-dependent functions in the bursectomized chickens. Some bursa-deficient chickens had non-proliferating, presumably regressing lesions in peripheral nerves. Because these lesions lacked plasma cells, it was concluded that the plasma cell may not play a functional role in recovery from Marek's disease.

Aging↗

Demonstration of a tumor-associated surface antigen in Marek's disease.

Surface antigenic markers were detected on three classes of Marek's disease (MD) tumor cells, i.e., MD lymphoma cells, cultured cells of the MSB-1 lymphoblastoid cell line, and JMV lymphoblastic leukemia cells, by indirect membrane immunofluorescent staining with serum from chickens immunized with JMV cells or from rabbits immunized with MSB-1 cells. This surface antigen was not detected on normal chicken lymphocytes, RPL-16 tumor cells (tranedormed by an avian RNA virus, or MD virus-infected fibroblasts that were positive for viral membrane antigen (MA). Furthermore, the surface antigen appeared unrelated to embryonic or histocompatibility antigens. This antigen is provisionally designated as a Marek's disease tumor-associated surface antigen (MATSA). The MATSA's on JMV, MSB-1 and MD lymphoma cells were related but not identical as demonstrated by antiserum titration, absorption and blocking tests with homologous and heterologous systems.

Analysis of Variance↗