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Biomedical subjects

E Cenci

Publications and source records attributed to E Cenci.

At least 37 records · Page 2Linked to original sources

Induction of protective Th1 responses to Candida albicans by antifungal therapy alone or in combination with an interleukin-4 antagonist.

Resistance or susceptibility to disseminated and mucosal Candida albicans infections in mice correlates with the development of protective or nonprotective T helper (Th) cell responses. To determine whether immunomodulatory activity on Th cell functions is an effect beyond that provided by antifungal therapy, mice with disseminated or gastrointestinal infection were treated with amphotericin B or fluconazole and assessed for mortality, fungus burden in the organs, and parameters of Th cell-dependent immunity. Both antimycotics produced protective CD4+ Th1 cell responses, as revealed by increased production of interleukin (IL)-12 and interferon-y, decreased production of IL-4, delayed-type hypersensitivity to fungal antigen, and the disappearance of antigen-specific IgE. Concomitant neutralization of endogenous IL-4 greatly increased the antifungal efficacy and the Th1-promoting activity of both agents. These results indicate that successful antifungal therapy alone or in combination with cytokine antagonists may rely on the induction of an appropriate Th antifungal cell response.

Amphotericin B↗

Iron overload alters innate and T helper cell responses to Candida albicans in mice.

The effect of iron overload on susceptibility of mice to Candida albicans infection and on the type of T helper (Th) immunity elicited was investigated. Iron overload greatly increased susceptibility to disseminated infection with low-virulence C. albicans cells of exogenous origin. The candidacidal activity and the ability to release nitric oxide and bioactive interleukin (IL)-12 were greatly impaired in neutrophils and macrophages from infected mice. CD4 T cells from spleens of iron-overloaded mice were found to produce high levels of IL-4 and IL-10 and low levels of interferon-gamma. Treatment of iron-overloaded mice with the iron chelator, deferoxamine, resulted in the cure of mice from infection, restored the antifungal effector and immunomodulatory functions of the phagocytic cells, and allowed the occurrence of CD4 Th1 protective antifungal responses. These data indicate that iron overload may negatively affect CD4 Th1 development in mice with candidiasis, a function efficiently restored by therapy with deferoxamine.

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Th1 and Th2 cytokines in mice with invasive aspergillosis.

With a murine model of invasive aspergillosis we investigated cytokine production by CD4+ T helper cells and the effects of cytokine administration or neutralization on the course and outcome of infection. Patterns of susceptibility and resistance to infection were obtained with different strains of mice injected with different inocula of Aspergillus fumigatus conidia. Mice surviving the primary infection also resisted a subsequent lethal infection that was associated with production of gamma interferon by CD4+ T splenocytes. Impaired neutrophil antifungal activity, observed in susceptible mice, was concomitant with a predominant production of interleukin-4 (IL-4) by CD4+ splenocytes. In these mice, exogenous administration of IL-12 failed to induce resistance to infection; in contrast, treatment with soluble IL-4 receptor cured more than 70% of the mice from primary infection and resulted in the onset of acquired resistance to a subsequent lethal infection. These findings indicate that in murine invasive aspergillosis, production of IL-4 by CD4+ T cells may be one major factor discriminating susceptibility and resistance to infection.

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Impaired neutrophil response and CD4+ T helper cell 1 development in interleukin 6-deficient mice infected with Candida albicans.

To define the role of interleukin (IL)6 in Candida albicans infection, IL-6 deficient mice were assessed for susceptibility to systemic or gastrointestinal infection, as well as for parameters of elicited T helper cell (Th) immunity. IL-6-deficient mice were more susceptible than wild-type mice to either type of infection caused by virulent C. albicans. In response to systemic challenge with a live vaccine strain of yeast, IL-6-deficient mice failed to mount Th1-associated protective immunity, but the resulting Th2-biased response could be redirected to the Th1 phenotype by IL-10 neutralization. Severe impairment of the macrophage and neutrophil response to infection was observed in IL-6-deficient mice, but administration of IL-6 would increase both neutrophil response and resistance to infection. IL-6 seems to oppose the Th2-promoting role of IL-10 in candidiasis, its early regulatory activity involving effects on neutrophil function.

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TGF-beta is important in determining the in vivo patterns of susceptibility or resistance in mice infected with Candida albicans.

Resistance and susceptibility of mice to systemic infection with the fungus Candida albicans are associated with the preferential expansion of Th1 and Th2 cells, respectively. In this study, endogenous production of TGF-beta was found to be increased soon after infection of healer mice with a live vaccine strain of the fungus, but down-regulated in nonhealer mice with virulent yeast challenge. Although not affecting the outcome of primary challenge, serologic ablation of TGF-beta in the former animals abrogated development of acquired resistance and resulted in impaired production of IL-12/IFN-gamma and higher expression of IL-4/IL-10 at the time of reinfection with virulent yeast. A CD4+ population expressing the memory phenotype, CD44highMEL-14low, which appeared to be expanded by yeast infection of nonhealer mice, was similarly increased in the healer mice by anti-TGF-beta treatment. In vitro rTGF-beta impaired the candidacidal function of IFN-gamma-activated macrophages. Yet in nonhealer mice infected with virulent C. albicans, administration of rTGF-beta delayed progression of the disease, which was concomitant with the detection of lower levels of IL-4. In addition to previous evidence for an obligatory role of IFN-gamma and IL-12 in Candida-driven Th1 cell differentiation in vivo, the present data establish TGF-beta as a third cytokine, the presence of which may be required for optimal Th1 development leading to long-lived anticandidal resistance.

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Interleukin-4 and -10 exacerbate candidiasis in mice.

Neutralization of endogenous interleukin (IL)-4 or IL-10 in mice with Candida albicans infection initiates or accelerates development of a T helper (Th)1-associated protective response. Here, we report the effect of IL-4 and IL-10 administration on the course of systemic or gastrointestinal (GI) candidiasis and on the development of Th immunity using yeast/host combinations that result either in Th1-associated self-limiting infection (healer mice) or in Th2-associated progressive disease (nonhealer mice). Treatment with IL-4 or IL-10 greatly exacerbated the course of systemic infection in nonhealer mice and rendered healer mice, inoculated with attenuated yeast cells, susceptible to infection. Under the latter conditions of yeast challenge and IL-4/IL-10 administration, the development of a fatal disease was associated with inhibition of IL-12 production and detection of progressive Th2 cell dominance. In contrast, in healer mice allowed to resolve their infections and to develop long-lived anti-candidal resistance, the expression of this acquired resistance was not impaired by IL-4 and/or IL-10, as shown by the outcome of reinfection with virulent yeast cells. In the GI model of infection, both IL-4 and IL-10 were found to exacerbate the course of infection and to induce the appearance of CD4+ T cells producing high levels of IL-4 and IL-10 in Peyer's patches. These findings demonstrate that exogenous IL-4 and IL-10 may greatly affect the development of Th responses to C. albicans in vivo, but do not modify the expression of established and predominant Th1 cell reactivity.

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T helper cell dichotomy to Candida albicans: implications for pathology, therapy, and vaccine design.

Acquired immunity to Candida albicans is believed to prevent mucosal colonization of adult immunocompetent individuals from progressing to symptomatic infection. Resistance to disease appears to correlate with the detection of delayed-type hypersensitivity responses in vivo and a T helper type 1 (Th1) cytokine secretion profile in vitro. Cellular immunodeficiency, particularly HIV infection, greatly increases the risk of mucosal infection, confirming that CD(4+)-cell-directed immunity is effective locally in controlling infectivity of the yeast. While Th1-type CD4+ cell activation resulting in phagocyte-dependent immunity clearly represents an important mechanism of anticandidal resistance, clinical observations suggest that Th2-type CD4+ cell reactivity may be triggered by Candida antigens in several disease states, including symptomatic infections and immunopathology. This may imply that a Th1-type pattern of reactivity characterizes the saprophytic yeast carriage and resistance to disease by healthy humans, whereas Th2-type responses would be mostly associated with pathology. Moreover, Candida-specific T helper responses, namely humoral and cell-mediated immunity, appear to be reciprocally regulated, as typically occurs in experimental models of parasitic and retroviral infection, where the Th1/Th2 paradigm of acquired immunity has been best characterized. Recent studies, besides providing direct evidence for the occurrence of cross-regulatory Th1 and Th2 responses in mice with candidiasis, emphasize the potential of cytokine/anticytokine therapy for recruiting Candida-specific responses toward protective, Th1-type CD4+ cell reactivity. At the same time, these studies call attention to the possible consequences of C. albicans infection for immunopathology, allergy, and coinfection.

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T helper cell type 1 (Th1)- and Th2-like responses are present in mice with gastric candidiasis but protective immunity is associated with Th1 development.

The relative contributions of local T helper cell type 1 (Th1)- and Th2-like responses to the course of primary and secondary gastrointestinal (GI) candidiasis were examined in adult immunocompetent BALB/c mice. Both Th1 cytokines, such as interferon-gamma (IFN-gamma), and the Th2 cytokines, interleukin (IL)-4 and IL-5, were produced by CD4+ cells from Peyer's patches (PP) and mesenteric lymph nodes at a time when the fungus was cleared from the stomach and intestine. Augmentation of antigen-specific Th2-like responses by treatment with cholera toxin did not modify the course of disease. In contrast, treatment with soluble IL-4 receptor, which increased Th1 cells, was associated with enhanced yeast clearance. In addition, IFN-gamma but not IL-4 mRNA was present in PP and spleen CD4+ cells in mice resistant to subsequent GI inoculation. Activation of Th1- but not Th2-like responses may be responsible locally for controlling GI candidiasis and generating protective immunity.

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IL-12 is both required and prognostic in vivo for T helper type 1 differentiation in murine candidiasis.

In murine models of systemic candidiasis, healing and nonhealing patterns of disease are associated with preferential expansion of Th1 and Th2 cells, respectively. As previous studies have shown IL-12 to be expressed transcriptionally in healer mice and to be required for Th1 development in vitro, this cytokine might play a role in Candida-driven Th1 cell differentiation in vivo. In the present study, IL-12-neutralizing Abs or recombinant IL-12 were administered to mice with healing or progressive candidiasis, respectively, and the animals were monitored for mortality, resistance to reinfection, serum levels of specific Abs, and IFN-gamma, IL-4, and IL-10 message/protein expression by CD4+ cells. In self-limiting infection by a yeast vaccine strain, neutralization of IL-12 ablated development of acquired anticandidal resistance and led to appearance of Candida-specific IgE and IL-4-producing cells. In mice with progressive systemic disease as well as in a mucosal infection model, administration of IL-12 did not result in therapeutic activity under conditions of yeast infection that would instead be resolved by serologic ablation of IL-4 or IL-10. Yet, in systemically infected mice cured by anti-IL-4 or anti-IL-10 therapy, the emergence of a Th1 response correlated with the detection of high levels of circulating IL-12 and splenic IL-12 transcripts. Although exogenous IL-12 may not be sufficient for Th conversion in the presence of an overwhelming IL-4/IL-10 response, endogenous production of IL-12 may be both required and prognostic for Th1 differentiation in vivo.

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Neutralization of IL-10 up-regulates nitric oxide production and protects susceptible mice from challenge with Candida albicans.

In contrast to several inbred strains of mice that develop Th1-associated anticandidal protection, DBA/2 mice are highly susceptible to systemic infection with Candida albicans cells of the attenuated variant PCA-2, and fatal outcome is observed in concurrence with sustained CD4+ cell production in vitro of IL-4 and IL-10. These Th2 cytokines were previously shown to inhibit nitric oxide (NO) production and yeast killing by activated macrophage cultures. We now show that macrophages from DBA/2 mice, either intact or infected with PCA-2, have lower capacity than resistant strains to synthesize NO in response to IFN-gamma. However, when treated with anti-IL-10 Abs at the time of infection, DBA/2 mice survived challenge and displayed increased production of NO in vitro after IFN-gamma activation. Cure was associated with the onset of footpad responses and durable protection, and higher frequencies of IFN-gamma-secreting cells were found in splenic CD4+ lymphocytes that expressed lower levels of IL-4 and IL-10 mRNA. Therefore, in DBA/2 mice, IL-10 contributes significantly to the selection of a Th2 response and lethality after PCA-2 challenge. An IL-10-induced defect in the activation and/or expansion of IFN-gamma-producing Th1 cells, IL-10 suppression of yeast killing, and the relative inability of DBA/2 macrophages to produce adequate levels of candidacidal NO may all contribute to the abnormal susceptibility of these mice to candidiasis.

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Interleukin-12 but not interferon-gamma production correlates with induction of T helper type-1 phenotype in murine candidiasis.

By means of polymerase chain reaction-assisted mRNA amplification, we have monitored message levels of interleukin (IL)-12 in splenic macrophages and of interferon-gamma (IFN-gamma), IL-4, and IL-10 in CD4+ and CD8+ T cells using Candida albicans/host combinations that result either in a T helper type-1 (Th1)-associated self-limiting infection ("healer mice") or in a Th2-associated progressive disease ("nonhealer mice"). The timing and pattern of message detection did not differ qualitatively by the expression of IFN-gamma or IL-10 mRNA in CD4+ and CD8+ cells from healer (i.e. PCA-2 into CD2F1) vs. nonhealer (i.e. CA-6 into CD2F1 or PCA-2 into DBA/2) mice. In contrast, IL-4 mRNA was uniquely expressed by CD4+ cells from nonhealer animals. IL-12p40 was readily detected in macrophages from healer mice but was detected only early in infection in mice with progressive disease. Cytokine levels were measured in sera, and antigen-driven cytokine production by CD4+ and CD8+ cells was assessed in vitro, while IFN-gamma-producing cells were enumerated in CD4- CD8- cell fractions. Overall, our results showed that (i) antigen-specific secretion of IFN-gamma protein in vitro by CD4+ cells occurred only in healing infection; (ii) IL-4- and IL-10-producing CD4+ cells would expand in nonhealer mice in the face of high levels of circulating IFN-gamma, likely released by CD4- CD8- lymphocytes; (iii) a finely regulated IFN-gamma production correlated in the healer mice with IL-12 mRNA detection, and IL-12 was required in vitro for yeast-induced development of IFN-gamma-producing CD4+ cells. Although the mutually exclusive production of IL-4/IL-10 and IFN-gamma by early CD4+ cells may be the major discriminative factor of cure and noncure responses in candidiasis, IL-12 rather than IFN-gamma production may be an indicator of Th1 differentiation.

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Cure of murine candidiasis by recombinant soluble interleukin-4 receptor.

Neutralization of interleukin (IL)-4 by specific antibody exerts therapeutic activity in a murine model of systemic candidiasis characterized by strong T helper type 2 (Th2) responses. To investigate whether recombinant soluble IL-4 receptor (sIL-4R) could be used to block IL-4 action in vivo, mice treated with pharmacologic doses of sIL-4R at the time of infection were examined for progression of disease, development of footpad responses, serum IgE levels, and cytokine production in vitro by CD4+ lymphocytes. Following sIL-4R treatment, persistent ablation of circulating IL-4 detected by ELISA was associated with a cure rate of > 90% in otherwise lethally infected mice, onset of durable protection, and a shift from a predominant Th2 to a Th1 pattern of reactivity. In addition, when administered to genetically susceptible adult mice with gastrointestinal yeast colonization, the sIL-4R stimulated Th1-associated anticandidal resistance.

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Tolerance to staphylococcal enterotoxin B initiated Th1 cell differentiation in mice infected with Candida albicans.

Staphylococcal enterotoxin B (SEB) is a bacterial superantigen that specifically activates T cells bearing V beta 8 T-cell receptor domains, which eventually leads to a long-lasting state of clonal anergy accompanied by selective cell death in the targeted CD4+ subset. Because the superantigen is known to promote Th1 cell differentiation in vitro, we have investigated the effect of SEB treatment on the course of Th2-associated progressive disease in mice infected systemically with Candida albicans. On the basis of the kinetics of SEB-induced changes in CD4+ cells and production in sera of interleukin 4 (IL-4), IL-10, and gamma interferon, we obtained evidence that V beta 8+ cell anergy concomitant with infection abolished the early IL-4/IL-10 response of the host to the yeast, ultimately leading to a state of resistance characterized by gamma interferon secretion in vitro by antigen-specific CD4+ cells. In contrast, SEB administered near the time of challenge resulted in accelerated mortality. Significant resistance to infection was also afforded by exposure of mice to a retrovirally encoded endogenous superantigen. These data suggest that CD4+ V beta 8+ T cells play an important role in vivo in the initiation of a Th2 response to C. albicans and that suppression of their activity may alter the qualitative development of the T-cell response and the outcome of infection.

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Systemic infection with Herpes bovis virus 2 evokes a biphasic immune response in the mouse.

We evaluated the effects of systemic infection by Herpes bovis virus 2 (HBV-2) on a murine experimental system. We provide evidence that such infection is lethal for the immunocompromised but not for the immunocompetent mouse in which a biphasic immune response is elicited. In particular, 1 day post-infection, we observed a rapid transient depression induced by the virus, as documented by a decrease in peripheral leukocyte counts, mitogenic spleen cell response and resistance to a secondary microbial challenge. Later, HBV-2 infection boosted cytokine secretion and enhanced antimicrobial and antitumoral activities by the splenic district. In conclusion, our experimental model discloses some immunological aspects underlying the complex host-virus interaction.

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CD4+ subset expression in murine candidiasis. Th responses correlate directly with genetically determined susceptibility or vaccine-induced resistance.

Previous work has shown that in hybrid (BALB/cCr x DBA/2Cr)F1 mice the development of a fatal disseminated disease by systemic infection with virulent Candida albicans is associated with the detection of strong Th2-like responses. However, a predominant Th1-like response and long-lived antifungal protection are induced by vaccinating these mice with live blastospores of attenuated C. albicans strains. When injected into DBA/2Cr mice, one such live vaccine strain was found in the present study to result in a progressive disease characterized by strong Th2 responses. Elevated serum IgG1, IgA, and IgE responses, weak or absent footpad reactions, sustained production in vitro of Th2 (IL-4 and IL-10) but not Th1 (IL-2 and IFN-gamma) cytokines by CD4+ cells, and eosinophilia were all detected in DBA/2 mice after infection with the attenuated vaccine. This was in marked contrast with the development of strong Th1 responses and persistent anticandidal protection in similarly infected, H-2-compatible BALB/cCr mice. Therefore, our data suggest that the type of Th response that predominates in mice after C. albicans infection correlates with genetically determined susceptibility or vaccine-induced resistance. Moreover, the genetic control of this resistance may not be associated with the H-2 complex.

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Interleukin-4 and interleukin-10 inhibit nitric oxide-dependent macrophage killing of Candida albicans.

Mouse peritoneal and splenic macrophages treated with interferon-gamma (IFN-gamma) and infected with the yeast Candida albicans expressed high fungicidal activity in vitro that correlated with increased nitrite concentrations in culture supernatants. Both effects were reduced by an inhibitor of nitric oxide (NO) synthesis which, in vivo, impaired the animals' ability to mount a footpad reaction and clear the fungus from infected organs. Because T helper type-2 (Th2) cytokines in candidiasis are known to limit the expression of protective Th1 functions, we tested the effect of interleukin (IL)-4 and IL-10 on candidacidal activity and NO production of IFN-gamma-activated macrophages. Fungal killing and NO secretion were inhibited, in a dose-dependent manner, by the two cytokines either separately or in combination. Impaired candidacidal activity was also demonstrable in the presence of monoiodoacetic acid, an inhibitor of phagocytosis. These data demonstrate that NO is involved in macrophage killing of C. albicans and support the notion that regulation of Th1 effector function by IL-4 and IL-10 might involve modulation of NO synthesis.

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