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S E Ullrich

Publications and source records attributed to S E Ullrich.

17 recordsLinked to original sources

Systemic suppression of delayed-type hypersensitivity by supernatants from UV-irradiated keratinocytes. An essential role for keratinocyte-derived IL-10.

Exposing murine keratinocyte cultures to UV radiation causes the release of a suppressive cytokine that mimics the immunosuppressive effects of total-body UV exposure. Injecting supernatants from UV-irradiated keratinocyte cultures into mice inhibits their ability to generate a delayed-type hypersensitivity reaction against allogeneic histocompatibility Ag, and spleen cells from mice injected with supernatant do not respond to alloantigen in the in vitro MLR. A unique feature of the immunosuppression induced by either total-body UV-exposure or injecting the suppressive cytokine from UV-irradiated keratinocytes is the selectivity of suppression. Although cellular immune reactions such as delayed-type hypersensitivity are suppressed antibody production is unaffected. Because the selective nature to the UV-induced immunosuppression is similar to the biologic activity of IL-10, we examined the hypothesis that UV exposure of keratinocytes causes the release of IL-10. Keratinocyte monolayers were exposed to UV radiation and at specific times after exposure mRNA was isolated or the culture supernatant from the cells was collected. IL-10 mRNA expression was enhanced in UV-irradiated keratinocytes. The secretion of IL-10 by the irradiated keratinocytes was determined by Western blot analysis. A band reactive with anti-IL-10 mAb was found in supernatants from the UV-irradiated but not the mock-irradiated cells. IL-10 biologic activity was determined by the ability of the supernatants from the UV-irradiated keratinocytes to suppress IFN-gamma production by Ag-activated Th 1 cell clones. Anti-IL-10 mAb neutralized the ability of supernatants from UV-irradiated keratinocytes to suppress the induction of delayed-type hypersensitivity in vivo. Furthermore, injecting UV-irradiated mice with antibodies against IL-10 partially inhibited in vivo immunosuppression. These data indicate that activated keratinocytes are capable of secreting IL-10 and suggest that the release of IL-10 by UV-irradiated keratinocytes plays an essential role in the induction of systemic immunosuppression after total-body UV exposure.

Animals

Liposomes containing muramyl tripeptide phosphatidylethanolamine (MTP-PE) are excellent adjuvants for induction of an immune response to protein and tumor antigens.

Liposomes containing the synthetic lipophilic analog of muramyl dipeptide, muramyl tripeptide phosphatidylethanolamine (MTP-PE), were used as adjuvants for the induction of humoral and cellular immune responses following immunization with protein or tumor antigens. Cellular immune reactions, including delayed-type hypersensitivity and lymphoproliferation in vitro, were observed following immunization of mice with a mixture of antigen and liposome-MTP-PE. Immunization with murine melanoma K1735 cells, admixed with liposomal MTP-PE, induced a protective immune response as demonstrated by the rejection of transplanted tumor cells. Antibody production was also induced following immunization with protein antigens admixed with liposome-MTP-PE. The efficacy of adjuvant activity following immunization with antigens admixed with liposome-MTP-PE was equal to or better than that of complete Freund's adjuvant (CFA). Moreover, liposome-MTP-PE did not have the toxic side effects associated with CFA. These data suggest that phospholipid liposomes containing MTP-PE are superior adjuvants and should receive consideration for vaccine therapy.

Acetylmuramyl-Alanyl-Isoglutamine

Photoinactivation of T-cell function with psoralen and UVA radiation suppresses the induction of experimental murine graft-versus-host disease across major histocompatibility barriers.

Bone marrow transplantation is employed in the treatment of a number of hematologic and malignant diseases. A major complication is the induction of graft-versus-host disease. Whereas removal of T lymphocytes from the donor marrow effectively reduces the incidence of graft-versus-host disease, the incidence of graft failure often increases when T cells are depleted from the transplanted marrow. In the current study, photoinactivation of the donor cells with 8-methoxypsoralen coupled with exposure to long-wavelength ultraviolet radiation (PUVA therapy) was used to inactivate the response of the donor T cells against the host. PUVA therapy suppressed the ability of spleen cells to respond to alloantigen in the in vitro mixed lymphocyte reaction. The induction of acute graft-versus-host disease across complete major histocompatibility barriers in lethally X-irradiated mice was significantly suppressed after bone marrow transplantation with photoinactivated bone marrow cells. Long-term survivors demonstrated allogeneic reconstitution and partial restoration of T-cell function. Because PUVA therapy had no inhibitory effect on hematopoiesis, these data suggest that using phototherapy to inactivate the alloreactivity of T cells may provide an alternative to purging T cells from the donor marrow, thus suppressing both the incidence of graft-versus-host disease and the incidence of graft failure.

Animals

Activation of keratinocytes with psoralen plus UVA radiation induces the release of soluble factors that suppress delayed and contact hypersensitivity.

Exposure of mice to psoralen plus ultraviolet A (320-400 nm) radiation or midrange ultraviolet B (280-320 nm) radiation causes a systemic suppression of the immune response. Although the mechanisms involved in the induction of suppression are not entirely clear, recent studies have demonstrated that ultraviolet B--irradiated keratinocytes release soluble factors that depress delayed-type hypersensitivity to alloantigens and activate the suppressor cell pathway. The purpose of this study was to determine whether PUVA-treated keratinocytes could also cause the release of such immunosuppressive factors. Treatment of keratinocytes with psoralen and UVA radiation induced the release of a factor that depressed the delayed-type hypersensitivity reaction to alloantigen. The suppressive factor was released regardless of whether the psoralen formed monofunctional or bifunctional adducts with DNA and regardless of its phototoxicity. In addition, keratinocytes treated with psoralen and lower doses of UVA radiation released a factor that inhibited contact but not delayed-type hypersensitivity, suggesting that more than one immunosuppressive factor is released following treatment of keratinocytes with appropriate doses of psoralen and UVA radiation. Our findings provide evidence that immunosuppressive factors released from keratinocytes may play a role in the induction of systemic immune suppression following PUVA treatment. Moreover, they demonstrate that PUVA treatment, unlike UVB treatment, can cause the release of more than one immunosuppressive factor from keratinocytes.

Animals

Supernatants from ultraviolet-irradiated keratinocytes decrease the resistance and delayed-type hypersensitivity response to Mycobacterium bovis bacillus Calmette-Guerin in mice and impair the phagocytic ability of macrophages.

We recently demonstrated that exposure of mice to a single high dose or multiple smaller doses of ultraviolet (UV) radiation decreased the induction of the delayed-type hypersensitivity (DTH) response to bacillus Calmette-Guerin (BCG) from Mycobacterium bovis injected into unexposed sites. In view of the limited ability of UV radiation to penetrate beyond the epidermis and upper layers of the dermis, it is not entirely clear how exposing the dorsal skin of mice to UV radiation causes systemic impairment of the immune response to BCG. In this study we report that mice injected with supernatants from keratinocyte cultures exposed to UV radiation in vitro impaired host resistance to BCG. Both induction and elicitation of the DTH reaction were suppressed after the intravenous injection of supernatants from UV-irradiated keratinocytes. Furthermore, these supernatants interfered with the elimination of viable bacteria from the lymphoid organs. To determine whether macrophages were the target of the UV-induced, keratinocyte-derived, suppressive cytokine, macrophages were isolated from mice injected with the suppressive cytokine or treated in vitro with the supernatants and tested for their ability to ingest and kill BCG in vitro. Injection of the suppressive factor significantly reduced the phagocytosis of BCG by the macrophages but did not alter the rate of intracellular killing. Similarly, phagocytosis was reduced when normal macrophages were treated in vitro with the suppressive factor. These findings suggest that the suppressive cytokine interferes with the elimination of bacteria in vivo by inhibiting the initial step in bacterial clearance, the uptake of the bacteria by host macrophages.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Systemic immunosuppression of cell-mediated immune reactions by a monofunctional psoralen plus ultraviolet A radiation.

Because of the undesirable side effects associated with the use of 8-methoxypsoralen and long-wave ultraviolet A (UVA) radiation in the treatment of skin disorders such as psoriasis, the use of monofunctional psoralens, which are less erythemogenic, less mutagenic, and generally non-phototoxic, has received considerable attention. Little is known, however, about the immunosuppressive properties of monofunctional psoralens. The purpose of this study was to examine the effect of parenteral administration of a monofunctional psoralen, angelicin, plus exposure to UVA radiation on the immune response. Injection of angelicin followed by exposure to UVA radiation significantly suppressed delayed-type hypersensitivity to alloantigen in a dose-dependent fashion. Similarly, the capacity of spleen cells from the angelicin and UVA-treated animals to proliferate to alloantigen was significantly suppressed. The suppression was specific for the alloantigen used to sensitize the angelicin and UVA-treated animals and was associated with the appearance of splenic antigen-specific suppressor T lymphocytes. These data demonstrate that the effect of systemic administration of a monofunctional psoralen followed by UVA exposure on the immune response is similar to that seen following the injection of bifunctional psoralens. These findings also suggest that the severe skin phototoxicity associated with the use of a bifunctional psoralen and UVA radiation is not necessary for the induction of systemic immuno-suppression. Furthermore, the induction of systemic antigen-specific immunosuppression by angelicin plus UVA, without overt skin phototoxicity, suggests the possibility of using this and related compounds to specifically inhibit unwanted immune reactions.

Animals

Suppression of the immune response to alloantigen by factors released from ultraviolet-irradiated keratinocytes.

The immune response to allogeneic histocompatibility Ag can be suppressed by injecting allogeneic spleen cells into mice that have been previously exposed to UV radiation. The suppression is associated with Ag-specific suppressor T cells found in the spleens of the UV-irradiated mice. An intriguing and as yet unanswered question is how the irradiation of the animal's dorsal skin leads to the induction of splenic Ag-specific suppressor cells. Our data suggest that soluble factors released by UV-irradiated keratinocytes are involved in the induction of Ag-specific suppressor cells. Injecting culture supernatants from UV-irradiated keratinocytes into normal mice produced the same effect as whole-body UV irradiation and suppressed the induction of delayed hypersensitivity to alloantigen. Spleen cells from these mice were unable to respond to the alloantigen in the MLR. Radiation-resistant, suppressor T cells (CD3+, CD4+, CD8-) were found in the spleens of the mice injected with suppressive supernatants. Treating the keratinocytes with cycloheximide or treating the supernatants from the UV-irradiated keratinocytes with trypsin removed all suppressive activity, suggesting the active material is a protein. The suppressive activity bound to agarose beads coupled with Con A, and was eluted with alpha-methyl-D-mannoside, further suggesting the suppressive material is a glycoprotein. Because the suppression of the immune response to alloantigen induced by this suppressive cytokine mimicked the suppression found after exposure to UV radiation, these findings support the concept that the induction of systemic suppression by UV-irradiation results from the release of suppressive substances by UV-irradiated keratinocytes. In addition, these data suggest that the induction of Ag-specific suppressor cells by this factor may provide a novel method of suppressing allograft rejection.

Animals

The role of suppressor factors in the regulation of immune responses by ultraviolet radiation-induced suppressor T lymphocytes. III. Isolation of a suppressor factor with the B16G monoclonal antibody.

The purpose of this study was to determine whether the ultraviolet (UV) radiation-induced systemic suppression of the immune response results from the release of soluble suppressor factors (TsF) by UV-induced suppressor T cells (UV Ts). Injecting a TsF-specific monoclonal antibody (B16G) significantly reduced the UV radiation-induced suppression of contact hypersensitivity (CHS). The transfer of spleen cells from the UV-irradiated, B16G-treated mice into normal recipients suppressed CHS in the recipients, indicating that while the suppression of CHS was reversed in the UV-irradiated, B16G-treated mice, suppressor cells were still present. Supernatants from cultures containing UV Ts were incubated on B16G-immunoadsorbent columns. The antibody-bound fraction (45- to 60-kDa, non-disulfide-linked proteins) suppressed CHS when injected into normal recipients. These results demonstrate that the B16G antibody reacts with TsF from UV Ts and suggest that B16G acts in vivo by inhibiting the activity of TsF. Thus, suppressor factors appear to play an essential role in the regulation of immune responses by UV Ts.

Animals

Immunosuppression by factors released from UV-irradiated epidermal cells: selective effects on the generation of contact and delayed hypersensitivity after exposure to UVA or UVB radiation.

Exposure of murine epidermal cells to UV radiation in vitro causes the release of immunoregulatory factors that mimic some of the immunosuppressive effects of in vivo UV irradiation. The purpose of this study was to investigate the spectrum of immune responses affected following i.v. injection of supernatants obtained from cultures of epidermal cells exposed in vitro to UV radiation. Treatment of primary epidermal cell cultures or transformed keratinocytes (Pam 212 cells) with UVB (280-320 nm) radiation caused the release of factors that suppressed the induction of delayed hypersensitivity to alloantigen and trinitrophenyl-modified self-antigens in syngeneic and allogeneic mice. Contrary to expectations, however, the injection of supernatants from UVB-irradiated epidermal cells had no effect on the induction of contact hypersensitivity to trinitrochlorobenzene. On the other hand, treatment of the keratinocytes with UVA radiation (320-400 nm, filtered to remove wavelengths in the UVB region) resulted in the release of a factor that suppressed contact but not delayed hypersensitivity. Neither the UVA-induced nor the UVB-induced suppressive factor inhibited the generation of an antibody response to sheep erythrocytes, indicating that, like the suppression that occurs after in vivo exposure to UV radiation, the suppression induced by factors from UV-irradiated keratinocytes is selective in nature. These data support the hypothesis that soluble keratinocyte-derived suppressive factors are involved in the induction of systemic immune suppression by UV radiation. In addition, they suggest that multiple suppressive factors, having different immunosuppressive properties, are produced by different wavelengths of UV radiation.

Animals

Immunosuppression in phototherapy.

The successful use of phototherapy, especially psoralen plus UVA (PUVA) therapy, in the treatment of a variety of skin diseases is well known. Because the pathology of diseases such as vitiligo, alopecia and lichen planus is thought to involve immune mechanisms, the beneficial effect of PUVA may be due to immunosuppression. PUVA treatment can induce suppression in two ways. In the first (local suppression) psoralen is applied topically, the skin is irradiated with UVA and the contact allergen is applied directly to the irradiated skin. The induction of contact hypersensitivity (CHS) is suppressed and suppressor cells are found in the spleens of treated animals. Systemic suppression results from the injection of psoralen followed by exposure to UVA. The contact allergen is then applied at a distant non-irradiated site. CHS is suppressed and antigen-specific suppressor cells are found in the spleens of treated mice. The ability to induce specific immunosuppression may provide novel methods of inhibiting unwanted immune responses. We have demonstrated that graft rejection and the induction of graft-versus-host disease can be suppressed in an antigen-specific manner by UV radiation. Thus phototherapy may provide promising new treatments for suppressing graft rejection and perhaps may be beneficial in the treatment of autoimmune disease and allergic reactions.

Humans

The role of suppressor factors in the regulation of immune responses by ultraviolet radiation-induced suppressor T lymphocytes. I. Activity of suppressor cell culture supernatants.

The purpose of this study was to determine whether soluble suppressor factors are involved in the regulation of immune responses by ultraviolet radiation-induced suppressor T lymphocytes (UV Ts). The UV Ts were induced by applying contact allergens to the ventral, unirradiated skin of mice that had been exposed 5 days earlier to UVB radiation. Supernatants from cultures that contained a mixture of UV Ts, normal responder lymphocytes, and hapten-modified stimulator cells were injected iv into normal recipients at the time of sensitization; they inhibited the induction of contact hypersensitivity (CHS) in vivo in an hapten-specific manner. The supernatants similarly suppressed the generation of specific cytotoxic T lymphocytes (CTL) in vitro. Moreover, supernatants from cultures that contained either UV Ts alone or UV Ts in combination with either the responder or the stimulator cells failed to suppress the CHS and CTL responses. These results suggest that hapten-specific inhibitory factors may participate in the regulation of immune responses by suppressor cells generated by epicutaneous sensitization of UV-irradiated mice.

Animals

The role of suppressor factors in the regulation of immune responses by ultraviolet radiation-induced suppressor T lymphocytes. II. Activity of suppressor cell culture sonicates.

The purpose of this study was to determine whether multiple types of suppressor factors play a role in the regulation of immune responses by ultraviolet radiation-induced suppressor T lymphocytes (UV Ts). The UV Ts were induced by applying contact allergens to the ventral, unirradiated skin of mice exposed 5 days earlier to UVB radiation. Previous studies indicated that supernatants from cultures containing UV Ts, normal lymphocytes, and hapten-modified cells suppressed contact hypersensitivity (CHS) in vivo and cytotoxic T lymphocyte (CTL) generation in vitro in a hapten-specific manner. In this report, cell-free lysates from sonically disrupted UV Ts were examined for their ability to suppress these responses. When lysates were injected into normal animals at the time of sensitization, they inhibited CHS in a hapten-nonspecific manner. In addition, the lysates suppressed not only the induction but also the elicitation of CHS, and they suppressed the generation of CTL. Lysates prepared from spleen cells obtained from non-UV-irradiated mice or UV-irradiated, unsensitized mice failed to inhibit either response. Moreover, in contrast to the lysates, the hapten-specific UV Ts culture supernatants inhibited the induction but not the elicitation of CHS. These results suggest that both hapten-specific and nonspecific inhibitory factors may participate in the regulation of immune responses by UV Ts.

Animals

Suppression of the elicitation of the immune response to alloantigen by ultraviolet radiation.

Previous studies have established that exposure of mice to ultraviolet radiation followed by injection of alloantigen can suppress the induction of delayed hypersensitivity and the rejection of allografts in an antigen-specific manner. In the clinical situation, however, UV irradiation several days prior to transplantation may prove impractical due to the difficulty in predicting when a donor organ will be available. Thus, the purpose of this study was to determine if exposure to UV radiation can suppress the elicitation of the immune response in mice sensitized with alloantigen. The data demonstrate that exposure of mice to UV radiation 1, 3, or 5 days after the injection of alloantigen can significantly suppress the delayed hypersensitivity response to that alloantigen. Present in the spleens of these mice are suppressor T lymphocytes. These suppressor cells are specific for the antigen originally used to sensitize the mice, in that they do not suppress the response to an irrelevant alloantigen. In addition, spleen cells from mice sensitized with alloantigen and exposed to UV radiation 1, 3, or 5 days later are unable to proliferate in response to the alloantigen in a mixed lymphocyte response. These cells do respond to irrelevant third-party cells, demonstrating again the specificity of the suppression. These data demonstrate that exposure of mice in vivo to UV radiation can inhibit the elicitation of the immune response to alloantigen. Since the immunosuppression is specific for the sensitizing antigen, these data suggest that this may provide a novel method of suppressing the immune response to tissue allografts.

Animals

Inhibition of the immune response to alloantigen in the rat by exposure to ultraviolet radiation.

Exposure of mice to ultraviolet radiation (UV) followed by alloantigen sensitization can suppress the immune response to that alloantigen. In order to assess the applicability of using UV-induced immunosuppression in organ transplantation, the effectiveness of UV in prolonging the survival of vascularized organ allografts must be determined. Because, for technical reasons, rats are better suited than mice for such experiments, we first wanted to determine whether UV suppresses the immune response of inbred rats to alloantigens. The data presented here demonstrate that exposure of rats to UV (115-129 kJ/m2) prior to alloantigenic sensitization decreases the mixed lymphocyte response to alloantigen. The depression of the proliferative response to alloantigen was selective in that spleen cells from the UV-treated rats could respond to mitogenic stimulation. In contrast to previous results with mice, suppressor cells could not be demonstrated in the spleens of the UV-treated rats. In addition, UV treatment after sensitization inhibited the response to alloantigen. These data suggest that treatment of the recipient with UV before or after alloantigenic sensitization may provide a novel method of inhibiting immune responses to allogeneic antigens.

Animals

Local suppression of contact hypersensitivity in mice by a monofunctional psoralen plus UVA radiation.

Monofunctional psoralens, plus UVA radiation are not erythemogenic and are less mutagenic than bifunctional psoralens plus UVA radiation. Thus, they have received considerable attention in recent years as potential therapeutic agents for various skin diseases. The purpose of this study was to examine the immunologic side effects following treatment of mice with a monofunctional psoralen plus UVA radiation. We report that angelicin plus UVA radiation suppressed the induction of contact hypersensitivity to dinitrofluorobenzene. This decreased immune response was associated with the presence of splenic suppressor cells that transferred suppression to normal recipients. Treatment with angelicin and UVA radiation also decreased the number of Thy-1+ and Ia+ dendritic epidermal cells in the treated site. We conclude that although this monofunctional psoralen is not phototoxic, it has immunosuppressive activity in mice.

Animals

Suppression of lymphoproliferation by hapten-specific suppressor T lymphocytes from mice exposed to ultraviolet radiation.

Application of a contact-sensitizing agent to the skin of mice previously exposed to UV radiation at a different site results in the induction of hapten-specific suppressor T lymphocytes. When splenic lymphocytes from such mice were cultured with normal lymphocytes and hapten-conjugated splenic adherent cells, the primary proliferative response was suppressed. The cell responsible for the suppression in vitro was a T lymphocyte, and two signals were required for its induction, ultraviolet radiation and hapten sensitization. The T cell suppressing lymphoproliferation was specific for the hapten applied after UV radiation. The UV-induced T suppressor cell inhibited only primary lymphoproliferation; the response of lymphocytes from immunized mice was unaffected. The activity of the UV-induced suppressor cell was not affected by mitomycin C treatment. Thus, suppression of the primary proliferative response of lymphocytes to hapten-modified syngeneic cells in vitro correlates with in vivo suppression of contact hypersensitivity by these UV-induced suppressor cells. This suggests that the suppressor cells act by preventing the proliferation of hapten-specific responder clones. Use of this in vitro assay system should facilitate investigation of the characteristics of these cells and the mechanism by which these regulatory T lymphocytes inhibit contact sensitization.

Animals

Macrophage-lymphocyte interactions mediated by soluble factors.

Adherent-cell-depleted primed rabbit splenocytes were capable of mounting an in vitro response to SRBC. The addition of alveolar macrophages (AM) to adherent-cell-depleted or unseparated lymphoid cell populations resulted in significant suppression of the PFC response. Suppressive activity was limited to AM and dependent on the presence of a ratio of 1 AM:20 lymphocytes. The cell-mediating suppression was found to be resistant to irradiation and antithymus globulin but sensitive to heat, freeze-thawing, and treatment with iodoacetamide. Suppression was mediated by a soluble factor (MW greater than 10,000 daltons) that required an AM-lymphocyte interaction for its production. Suppression appeared to be achieved through the inhibition of proliferation of antigen sensitive cells although the effect of AM could possibly be exerted on an early event in the immune response. AM were capable of enhancing the proliferative responses of rabbit lymphoid cells to PHA and Con A. Enhancing and suppressing activities of AM were abolished by inhibition of RNA synthesis but unaffected by inhibitors of DNA and protein synthesis.

Animals