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T R Jerrells

Publications and source records attributed to T R Jerrells.

At least 55 records · Page 3Linked to original sources

Structural and functional studies of the early T lymphocyte activation 1 (Eta-1) gene. Definition of a novel T cell-dependent response associated with genetic resistance to bacterial infection.

We describe a murine cDNA, designated Early T lymphocyte activation 1 (ETA-1) which is abundantly expressed after activation of T cells. Eta-1 encodes a highly acidic secreted product having structural features of proteins that bind to cellular adhesion receptors. The Eta-1 gene maps to a locus on murine chromosome 5 termed Ric that confers resistance to infection by Rickettsia tsutsugamushi (RT), an obligate intracellular bacterium that is the etiological agent for human scrub typhus. With one exception, inbred mouse strains that expressed the Eta-1a allele were resistant to RT infection (RicR), and inbred strains expressing the Eta-1b allele were susceptible (RicS). These findings suggest that Eta-1 is the gene inferred from previous studies of the Ric locus (5). Genetic resistance to RT infection is associated with a strong Eta-1 response in vivo and inhibition of early bacterial replication. Eta-1 gene expression appears to be part of a surprisingly rapid T cell-dependent response to bacterial infection that may precede classical forms of T cell-dependent immunity.

Amino Acid Sequence↗

Mechanisms of suppression of cellular immunity induced by ethanol.

Previous study findings from this laboratory and other laboratories have established that ethanol administration to experimental animals or ingestion by human beings results in many changes in the immune system. The major effort in this laboratory is the study of the mechanisms by which ethanol down-regulates the responses of thymus-derived lymphocytes. By using a rat model of ethanol intoxication we have described a defect in lymphocyte proliferation to concanavalin A. In the current report data, preliminary and definitive, are presented that show our approach to determining the mechanisms of ethanol-associated impairments in the immune system, especially the defect in lymphocyte proliferation. We have found that purified thymus-derived lymphocytes from the spleens of ethanol-treated rats have an inherent defect in their response to mitogenic stimulation. This defect is not caused by the direct effects of ethanol on the cells and probably is not caused by an inability of the cells from ethanol-treated animals to produce the lymphocyte growth factor interleukin 2. Data are also presented that indicate that corticosteroids, produced most abundantly in this model by withdrawal from ethanol, play a role in the down-regulation of the response of spleen cells to mitogenic stimulation.

Adrenalectomy↗

Effects of long-term ethanol inhalation on the immune and hematopoietic systems of the rat.

An inhalation method of ethanol administration was used to study the effects of 14 days of ethanol administration on the immune and hematopoietic systems of the rat. A decrease in cellularity was found in the spleen, thymus, and bone marrow of ethanol-treated rats. Although the red blood cell count, white blood cell count, and hemoglobin concentration were not significantly different between treatment and control groups, treatment with ethanol altered the relative proportion of lymphocytes and polymorphonuclear leukocytes in the peripheral blood. The granulocyte-macrophage progenitor cells in the bone marrow were unaffected by ethanol treatment, but a significant decline in the number of erythroid progenitor cells was noted in ethanol-treated rats. Splenic lymphocytes, although fewer in number in the ethanol-treated rats, showed no significant difference in ability to proliferate when stimulated by nonspecific mitogens.

Administration, Inhalation↗

Gamma interferon as a crucial host defense against Rickettsia conorii in vivo.

Gamma interferon (IFN-gamma) plays an important role as a host defense in rickettsial infection. Swiss Webster mice, which are resistant to Rickettsia conorii (Malish 7 strain) infection, were treated with a monoclonal antibody against mouse IFN-gamma. When the antibody-treated mice were inoculated with 12 50% tissue culture infective doses of R. conorii, the mortality was 47% and the morbidity was 100%. None of the control mice, which received the same dose of R. conorii, died or became ill. The enumeration of rickettsiae in organs by direct immunofluorescence in paraffin sections demonstrated higher quantities of rickettsiae in the spleen had liver of IFN-gamma-depleted mice as compared with those of the infected controls. The kinetic analysis of IFN-gamma levels in sera showed depletion in the treated mice. These results indicate that IFN-gamma plays an important role as a host defense in the early stage of rickettsial infection. Survival of some mice despite continued treatment with antibody to IFN-gamma suggests that other immune mechanisms may also be important.

Animals↗

Barbash strain spotted fever group rickettsia is a strain of Rickettsia conorii and differs from Rickettsia sibirica.

The Barbash strain of spotted fever group rickettsia was reexamined in this study by the microimmunofluorescence test with mouse antisera and with monoclonal antibodies. Protein immunoblotting was performed for comparison of purified antigens of R. rickettsii, R. sibirica, R. conorii and Barbash strain. Comparison of Barbash strain, R. rickettsii (Sheila Smith strain), R. conorii (Malish 7 strain), and R. sibirica (strains 232, 246 and Jinghe-74) of the spotted fever group in the microimmunofluorescence test of Philip et al. revealed that Barbash strain has antigens that yield homologous titers with the R. conorii strains and differ from R. sibirica and R. rickettsii. Monoclonal antibodies specific for R. conorii react at identical titres with the Barbash strain, and a monoclonal antibody specific for R. sibirica does not react with the Barbash strain. Likewise, T-cell hybridomas reactive with R. conorii but not R. sibirica yield a strong response when stimulated by Barbash strain antigens. Western immunoblotting with the same polyclonal and monoclonal antibodies confirmed the presence of specific protein antigens of R. conorii and different protein antigenic composition of R. sibirica when compared with Barbash strain. Thus, Barbash strain is a strain of R. conorii.

Animals↗

Mechanisms of immunity to rickettsial infection: characterization of a cytotoxic effector cell.

Rickettsiae, as other intracellular bacteria, are relatively sequestered from the effects of antibody and local antibody-independent responses. Considering the obligate intracellular nature of rickettsia, the exact mechanisms by which lymphocytes and macrophages encounter rickettsial antigens and eliminate the infection depends upon the appropriate presentation of antigen to the immune system. We demonstrate here that cells taken from the spleens of Rickettsia typhi- or R. tsutsugamushi-infected mice are able to lyse specifically tissue culture targets infected with the homologous organism. This effect was eliminated upon treatment of the spleen cells with anti-Thy-1.2 + complement. Furthermore such T cells exhibit H-2-restricted killing when tested on infected targets of different genetic backgrounds. We propose that a T cell-mediated cytotoxic immune mechanism exists that may play an important role in the elimination of rickettsial organisms during infection.

Animals↗

Effects of ethanol administration on parameters of immunocompetency in rats.

Ethanol administered to rats intragastrically in doses sufficient to cause dependency resulted in a rapid cell loss from the thymus and spleen. Cell loss from the peripheral blood was due primarily to a loss of lymphocytes, but a concomitant granulocytosis resulted in only small changes in the total leukocyte count. Lymphocyte proliferation to both T- and B-cell mitogens was severely compromised by ethanol treatment. The cell loss and functional lymphocyte impairment also occurred at half the ethanol dose required to induce dependency. Although cell numbers recovered relatively quickly after ethanol withdrawal, lymphocyte function, as measured by proliferation, recovered more slowly. Ethanol administration before or during immunization with sheep erythrocytes resulted in an impairment in the ability of animals to respond with a primary immune response to this antigen. These data suggest that ethanol given in quantities sufficient to produce dependence impairs in vitro and in vivo parameters of immunocompetency.

Animals↗

Neutralization of lymphokine-mediated antirickettsial activity of fibroblasts and macrophages with monoclonal antibody specific for murine interferon gamma.

Lymphokine-mediated inhibition of Rickettsia prowazekii multiplication in L929 fibroblasts was eliminated by treatment of the lymphokine with a monoclonal antibody specific for interferon-gamma. Soluble monoclonal antibody and antibody conjugated to Sepharose beads were equally effective. Macrophage activation to limit the multiplication of Rickettsia conorii was eliminated with antibody-conjugated beads; however, neutralization of the ability to activate macrophages with soluble antibody was not complete and required more antibody than did neutralization of antiviral activity.

Animals↗

Cross-reactive lymphocyte responses and protective immunity against other spotted fever group rickettsiae in mice immunized with Rickettsia conorii.

Lymphocyte proliferation in response to antigens on spotted fever group rickettsiae was used as a method to investigate the group-specific protective immunity to rechallenge characteristic of this group of rickettsiae at the T-cell receptor level. Spleen cells from Rickettsia conorii-immune C3H/HeJ mice proliferated in response to R. rickettsii Sheila Smith, R. sibirica 246, R. australis, and all tested strains of R. conorii (Casablanca, Moroccan, and Malish). Spleen cells from these mice, however, responded poorly or not at all to antigens prepared from the Kaplan or Hartford strain of R. akari. Proliferation of immune T cells maintained as in vitro cell lines showed a similar pattern of reactivity to these antigens; however, response to R. akari was consistently demonstrable. Spleen cells from C3H/HeJ mice immunized with R. akari responded to R. akari and R. conorii antigens as well as antigens from the other spotted fever group rickettsiae. Lymphocytes obtained from lymph nodes draining foot pads infected with R. conorii or R. akari demonstrated cross-reactivity similar to that found with immune spleen cells. If immunization was accomplished with R. conorii antigen emulsified in Freund complete adjuvant, the resulting lymph node cells were able to respond to R. akari antigens. These data suggest that infection with R. conorii induces a population of T lymphocytes that recognize an antigen(s) that also is found on other spotted fever rickettsiae and that may be responsible for cross-protective immunity. This antigen probably is not a major antigen on R. akari.

Animals↗

Production and characterization of cloned T-cell hybridomas that are responsive to Rickettsia conorii antigens.

T-cell hybridomas produced by the fusion of Rickettsia conorii immune T cells to the AKR thymoma BW 5147 produced interleukin-2 when stimulated with the antigens of three different R. conorii strains. One cloned hybridoma responded only to R. conorii antigens, whereas a second and third cloned hybridoma also responded to the antigens of Rickettsia rickettsii Sheila Smith and Rickettsia sibirica 246, respectively. Antigen responses required antigen-presenting cells, and this interaction was major histocompatibility complex restricted. Fluorescence-activated cell-sorter analysis demonstrated that all three hybridomas were of the Thy-1.2+, Lyt-2- phenotype and that two of the three were L3T4+. These data demonstrated the presence of an antigenic epitope that is R. conorii species specific and other epitopes that are common to various members of the spotted fever group which can stimulate interleukin-2 production by T-cell hybridomas.

Animals↗

Development of antigen-specific cell-mediated immune responses after infection of cynomolgus monkeys (Macaca fascicularis) with Rickettsia tsutsugamushi.

Cynomolgus monkeys were evaluated for cellular immune responses after infection with the Karp strain of Rickettsia tsutsugamushi. Antibody and clinical signs of localized and systemic infection were also evaluated. Animals challenged with homologous or heterologous strains at various times after a primary infection were also followed up. Naive monkeys developed eschars, lymphadenopathy, rickettsemia, and elevated body temperatures. Antibody in these animals was IgM followed by IgG. Lymphocyte proliferation and production of gamma-interferon by peripheral blood mononuclear leukocytes also were demonstrated. If challenged six years after the initial infection, clinical signs and cellular responses were indistinguishable from naive animals but an anamnestic IgG antibody response was noted. If challenged eight months after the initial infection, complete resistance was noted, but if challenged at one year, a localized cutaneous lesion developed. The majority of animals infected previously had preexisting lymphocyte activity, a characteristic suggesting long-term immunologic memory that was not protective against rechallenge.

Animals↗

Immunosuppression associated with the development of chronic infections with Rickettsia tsutsugamushi: adherent suppressor cell activity and macrophage activation.

Measures of general immunocompetency such as lymphocyte responses to mitogens and alloantigens and the ability to produce antibody to T-dependent and T-independent antigens were evaluated during the development of chronic infections with Rickettsia tsutsugamushi resulting from subcutaneous infection of BALB/c mice. It was found that a transient immunosuppression was demonstrable regardless of the infecting strain of rickettsiae; however, the immunosuppression produced by the Karp and Kato strains was more pronounced and longer lived. As a marked splenomegaly resulting from inflammatory macrophage influx accompanied this immunosuppression, mitogen- and antigen-induced lymphocyte proliferation was also evaluated after adherent cell depletion or in the presence of indomethacin, and both treatments significantly improved the responses. Isolated splenic macrophages were shown to suppress the responses of lymphocytes from naive mice as well as to exhibit parameters of activation including tumor cell cytolysis and cytostasis and the ability to inhibit the replication of R. tsutsugamushi in vitro. These data suggest an association between macrophage activation involved in rickettsial clearance and a transient immunosuppression.

Animals↗

Gamma interferon production in response to homologous and heterologous strain antigens in mice chronically infected with Rickettsia tsutsugamushi.

The ability of antigen-responsive, thymus-derived lymphocytes to produce immune (gamma) interferon was investigated during the development and expression of cellular immunity to Rickettsia tsutsugamushi. C3H/HeDub mice infected subcutaneously with the Gilliam strain developed the ability to produce serum interferon in response to intravenously inoculated antigen which correlated with the development of resistance to intraperitoneal rechallenge. Antigen-responsive lymphocytes, measured by interferon production and proliferation, were first apparent in draining lymph node cells, but spleen cell responses were detectable relatively soon after the appearance of reactive lymph node cells. The peak spleen cell response was of a greater magnitude and was found to be relatively long-lived. Reactivity to heterologous strains of R. tsutsugamushi also developed after immunization and paralleled the homologous responses, although reactivity was greatest to homologous antigens. Responses to heterologous strains differed in magnitude and time of appearances; however, immune mice resisted challenge with all strains of R. tsutsugamushi tested.

Animals↗

Gamma-irradiated scrub typhus immunogens: development of cell-mediated immunity after vaccination of inbred mice.

Mice immunized with three injections of gamma-irradiated Karp strain of Rickettsia tsutsugamushi were evaluated for the presence of cell-mediated immunity by using delayed-type hypersensitivity, antigen-induced lymphocyte proliferation, and antigen-induced lymphokine production. These animals also were evaluated for levels of circulating antibody after immunization as well as for the presence of rickettsemia after intraperitoneal challenge with viable Karp rickettsiae. After immunization with irradiated Karp rickettsiae, a demonstrable cell-mediated immunity was present as evidenced by delayed-type hypersensitivity responsiveness, lymphocyte proliferation, and production of migration inhibition factor and interferon by immune spleen lymphocytes. Also, a reduction in circulating rickettsiae was seen in mice immunized with irradiated rickettsiae after challenge with 1,000 50% mouse lethal doses of viable, homologous rickettsiae. All responses except antibody titer and reduction of rickettsemia were similar to the responses noted in mice immunized with viable organisms. Antibody levels were lower in mice immunized with irradiated rickettsiae than in mice immunized with viable rickettsiae. Furthermore, mice that were immunized with viable rickettsiae demonstrated markedly lower levels of rickettsemia after intraperitoneal challenge compared with either mice immunized with irradiated rickettsiae or nonimmunized mice.

Animals↗

Development of specific and cross-reactive lymphocyte proliferative responses during chronic immunizing infections with Rickettsia tsutsugamushi.

The development of antigen-responsive lymphocytes was followed in mice immunized with the Gilliam, Karp, or Kato strains of Rickettsia tsutsugamushi by utilizing an in vitro lymphocyte proliferation assay. Subcutaneous immunization with viable rickettsiae of all three strains resulted in the appearance of lymphocytes in the spleen responding to irradiated tissue culture-grown rickettsiae used as stimulating antigens. Although all animals demonstrated antigen-induced proliferation elicited by homologous antigen by 14 days after immunization, the time of peak responsiveness varied, depending on the strain of rickettsiae used for immunization. In all cases, peak proliferative responses occurred at a time after immunization that was after the previously reported time after immunization at which resistance to rechallenge was observed. Reactivity to heterologous strains of R tsutsugamushi developed roughly in parallel with homologous reactivity in Karp- and Gilliam-immunized mice, with a marked degree of heterologous reactivity evident. Kato-immunized mice demonstrated greater reactivity to heterologous antigens early in the development of antigen reactivity and demonstrated a somewhat greater degree of cross-reactivity, relative to homologous responses, than the other groups. It was found that nylon wool-nonadherent immune cells, if cultured with antigen and adherent cells obtained from normal spleens or peritoneal exudates, responded in culture. The thymus-derived lymphocyte nature of the responding cell was further suggested when treatment of immune spleen cells with anti-Thy 1.2 serum and complement eliminated antigen response.

Animals↗