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Comparative study of antifungal activity of sertaconazole, terbinafine, and bifonazole against clinical isolates of Candida spp., Cryptococcus neoformans and dermatophytes.

The in vitro activity of sertaconazole was compared with that of terbinafine and bifonazole against 180 Candida spp., Cryptococcus neoformans yeasts and 53 dermatophytes. Minimum inhibitory concentrations (MICs) were determined by a microdilution method in Sabouraud's buffered liquid medium (pH 5.6). Sertaconazole (arithmetic mean MIC 1.24 mg/l) was statistically more active than bifonazole (MIC 6.54 mg/l) and terbinafine (MIC 12.61 mg/l) against yeasts strains, MIC values for sertaconazole being generally and specifically lower for each tested yeast species. MIC for C. parapsilosis (0.26 mg/l) demonstrated a higher activity of sertaconazole against this species, in contrast to C. tropicalis (MIC 1.49 mg/l). Against dermatophytes, MIC for terbinafine (0.05 mg/l) was lower than sertaconazole (MIC 0.41 mg/l) and bifonazole (MIC 1.04 mg/l). These results, obtained under the same experimental conditions, confirm the good antifungal activity of sertaconazole against both yeasts and dermatophytes with lower MICs obtained in the topical application. This in vitro activity correlates with the clinical efficacy of sertaconazole compared with other antifungal agents.

Antifungal Agents↗

Atypical cytomorphologic appearance of Cryptococcus neoformans: a report of five cases.

BACKGROUND: Cryptococcus neoformans is not generally recognized as producing pseudohyphae. Although atypical morphologic forms have been described in the microbiology literature, we believe this is the first complete cytologic report describing this uncommon and unusual cytologic appearance of cryptococcal infection. CASES: In five cases of cryptococcal infection, C neoformans formed chains of budding yeasts, pseudohyphae and germ tube-like structures. The atypical forms of C neoformans were seen in cerebrospinal fluid, imprints and in histopathologic sections from multiple organs from two human immunodeficiency virus (HIV)-positive patients; in pleural fluid from a patient with non-Hodgkin's lymphoma; in crush smears from a stereotactic biopsy of the brain; and in a fine needle aspirate of a lung nodule in two patients with no known risk factors for HIV infection. CONCLUSION: Recognition of atypical cytomorphologic variants of C neoformans is important since there are potential diagnostic pitfalls for confusing these atypical-appearing organisms with a Candida-type species or fungal contaminants. Special stains for capsular material and culture can be helpful in making a correct diagnosis.

AIDS-Related Opportunistic Infections↗

HIV-1 envelope protein (gp120) inhibits the activity of human bronchoalveolar macrophages against Cryptococcus neoformans.

Cryptococcus neoformans infections are a major cause of morbidity and mortality for HIV-infected persons. Containment of the initial respiratory inoculation to the lung appears defective in patients with AIDS despite the low burden of HIV in bronchoalveolar macrophages. We have studied the fungistatic activity of human bronchoalveolar macrophages (BAM) cultured with an encapsulated strain of C. neoformans in the presence of pooled human serum. We observed 51.6% fungistasis after 24 h of culture. Fungistasis was diminished if the pooled human serum was heat-inactivated but was not affected by anticryptococcal capsular IgG. HIV envelope protein (gp120) has been shown to interfere with lymphocyte activation in vitro. We studied the effects of gp120 on BAM function and found that fungistatic activity was inhibited 25% (p < 0.001). Although binding of yeasts was not affected, gp120 inhibited the internalization of bound yeasts by 46% (p = 0.025). These experiments indicate that gp120 decreases the internalization and fungistasis of C. neoformans by human BAM, and they suggest a mechanism to explain how a small number of HIV-1-infected cells in the lung could impair the containment of C. neoformans.

Bronchoalveolar Lavage Fluid↗

Pleural effusions due to Cryptococcus neoformans: a review of the literature and report of two cases with cryptococcal antigen determinations.

Pleural effusions due to Cryptococcus neoformans occurred in 2 patients, 1 with localized pulmonary infection and 1 with disseminated cryptococcosis. Cryptococcal antigen was present in the pleural fluid from both patients and it was present also in the serum and cerebrospinal fluid of the patient with disseminated infection. The cryptococcal antigen test is a sensitive and specific indicator of cryptococcoal infection, and it was not positive in pleural fluid samples from a variety of other conditions including bacterial and mycobacterial infections and primary or metastatic malignancies. Twenty-eight additional cases of cryptococcal pleural effusions have been reported in the English literature, equally divided between patients with infection localized to the thorax and those with disseminated disease. Cryptococcal infection must be considered in the differential diagnosis of patiients with pleural effusion, especially patients with serious underlying diseases treated with corticosteroids. The cryptococcal antigen test appears to be a useful adjunct in diagnosis, and serial determinations may be helpful in assessing response to treatment.

Adolescent↗

Early cytokine production in pulmonary Cryptococcus neoformans infections distinguishes susceptible and resistant mice.

A murine pulmonary infection model utilizing intratracheal inoculation of Cryptococcus neoformans was used to analyze cytokines produced in response to opportunistic pathogens acquired via the respiratory tract. The specific question asked was whether early cytokine secretion in lung-associated lymph nodes (LALN) would predict whether this organism would be cleared from the lung. Lung colony-forming units (CFU) were analyzed in two strains of mice over 12 wk, and lung clearance was found to be strain dependent. C.B-17 mice reduced their lung CFU burden between day 7 and day 14 of infection, had significantly higher in lung CFU than C.B-17 mice. The capacity of cells from lungs and LALN to secrete cytokines was significantly different between the strains when assessed at day 7 and day 14 after inoculation. When compared with sensitive C57BL/6 mice 7 days after infection, resistant C.B-17 mice demonstrated (1) increased interferon-gamma secretion by LALN cells in vitro in response to media alone, heat-killed cryptococci, and the T cell mitogen concanavalin A and (2) increased interleukin (IL)-2 secretion by both LALN and lung cells in response to concanavalin A. IL-4 and IL-10 were comparable or undetectable in both mouse strains, whereas IL-5 was significantly higher in all lung cell cultures of C57BL/6 mice. Thus, an early regional Th1 immune response in C.B-17 mice correlated with resistance to the organism, whereas the absence of this response in C57BL/6 mice correlated with susceptibility.

Animals↗

Interferon-gamma reduces the capacity of human alveolar macrophages to inhibit growth of Cryptococcus neoformans in vitro.

Cytokine stimulation of mouse and rat macrophages has previously been shown to enhance their capacity to phagocytose and inhibit the growth of Cryptococcus neoformans. To extend these observations to primary human macrophages, we investigated the anticryptococcal activity of human alveolar macrophages stimulated with interferon-gamma (IFN-gamma), tumor necrosis factor-alpha (TNF-alpha), or macrophage-colony stimulating factor (M-CSF). Neither TNF-alpha nor M-CSF had any effect on fungal growth inhibition compared with unstimulated macrophages. Alveolar macrophages stimulated with IFN-gamma demonstrated reduced fungistasis for C. neoformans compared with controls (49% +/- 15% versus 75% +/- 12%; mean % growth inhibition +/- SD, P < 0.001). Confocal laser scanning microscopy was used to assess binding and phagocytosis of yeast. No difference was observed between unstimulated macrophages and macrophages stimulated with any of the cytokines tested. These data suggest that the cytokine regulation of anticryptococcal macrophage functions in humans differs from the rat and mouse. Conclusions drawn from these models may not necessarily be applicable to human cryptococcosis. In particular, the effects of IFN-gamma on the interaction of human alveolar macrophages with C. neoformans was not predicted based on the mouse and rat macrophage responses.

Animals↗

Complementation of a capsule deficient Cryptococcus neoformans with CAP64 restores virulence in a murine lung infection.

Cryptococcosis is a systemic infection in humans caused by the opportunistic fungal pathogen, Cryptococcus neoformans. The infection usually presents as chronic meningoencephalitis, but infects via the respiratory tract. A polysaccharide capsule is a major virulence factor, which allows the yeast to resist host defenses. However, the essential role of the capsule in allowing it to resist host defenses during the initial lung infection has not been clearly shown. A mutant acapsular C. neoformans strain 602 was complemented with the CAP64 gene to obtain an encapsulated strain, TYCC38-602. TYCC38-602 persisted in the lungs of C.B-17 mice after intratracheal inoculation and disseminated to the brain, whereas the mutant acapsular 602 and the plasmid control transformant CIP3-602 strains grew less readily in the lung and were infrequently detected in the brain. T cell-mediated immunity, developed to the encapsulated organism, was required to control growth within the lungs and had a significant impact on numbers of yeasts detected in the brain. The parent acapsular strain, but not the transformant control, also required T cells for optimal inhibition of growth within the lung, but not for maintaining control of the colony-forming units (cfu) in the brain. In summary, the cryptococcal capsule plays an important role in lung virulence and dissemination to the brain, and intact immunity is required to control lung growth of the encapsulated yeast.

Animals↗

Role for C5 and neutrophils in the pulmonary intravascular clearance of circulating Cryptococcus neoformans.

Although C5a-induced intravascular pulmonary sequestration of neutrophils has been investigated with regards to lung injury, relatively few studies have addressed the possible role for this mechanism in the intravascular clearance of circulating microorganisms. A murine model was used in which the complement-fixing, encapsulated yeast Cryptococcus neoformans (Cne) was inoculated intravenously (IV), and lung clearance of the organism was measured 24 h later. In normal mice, clearance was remarkably effective, but in leukocyte-depleted or C5-deficient (C5-) animals, clearance was significantly decreased. In vitro assays indicated that C5 was necessary for neutrophils to kill encapsulated Cne and evidence was obtained that C5a was involved. In vivo studies using light and electron microscopy demonstrated that 30 min after an IV inoculation of encapsulated yeast into C5-sufficient (C5+) mice, neutrophils accumulated in pulmonary vessels and engulfed Cne. However, in C5- mice, neutrophils failed to accumulate in pulmonary vessels and there was no endocytosis of encapsulated yeasts. These studies suggested that following Cne interaction with complement in the blood, release of C5a activated circulating neutrophils to adhere to Cne, and perhaps to adjacent endothelium, which facilitated rapid phagocytosis and killing of the organism. In contrast to the IV infection model, when Cne was inoculated into the tracheas of C5+ and C5- mice, no evidence was obtained for an early PMN-C5-dependent clearance mechanism. C5a-dependent neutrophil killing in the lung vasculature may provide important host protection against Cne during vascular dissemination and perhaps against other disseminating microorganisms that activate complement.

Animals↗

Role of interleukin-4 in resistance to Cryptococcus neoformans infection.

The role of interleukin (IL)-4 in cryptococcal disease was studied in IL-4 knockout (IL-4KO) and wild-type (WT) mice infected with Cryptococcus neoformans isolates that vary widely in their virulence. Delayed-type hypersensitivity responses were reduced in IL-4KO mice following primary infection with either isolate. Splenic T helper 1 (Th1) cytokine responses were increased in the IL-4KO mice infected with the weakly virulent isolate (184A) but did not change during infection with the highly virulent isolate (NU-2). Th2 cytokine responses (IL-5, IL-10) were downregulated in the IL-4KO mice infected with either isolate. Survival after primary infection with either isolate was not influenced by the absence of IL-4. Fewer colony-forming units were found in the lungs of 184A-infected, IL-4KO mice as compared to WT mice, suggesting that some immunity had developed. IL-4KO mice, primed with small doses of cryptococcal antigen (CneF), had significantly enhanced delayed-type hypersensitivity responses after intravenous infection with 184A and were more resistant to infection compared with WT mice. Increased expression of IL-5 with decreased interferon-gamma contributed to the inability of primed WT mice to resist infection with 184A. Enhanced immunity in the primed IL-4KO mice was reflected in a more moderate increase in IL-5 and IL-10 with maintenance of interferon-gamma levels.

Animals↗

Binding of Cryptococcus neoformans by human cultured macrophages. Requirements for multiple complement receptors and actin.

We studied the receptors on human cultured macrophages (MO-M phi) responsible for binding encapsulated and isogenic mutant acapsular strains of Cryptococcus neoformans, and whether such binding leads to a phagocytic event. Both strains required opsonization with complement components in normal human serum in order for binding to occur. Binding of the acapsular, but not the encapsulated, strain led to phagocytosis. MAb directed against any of the three defined complement receptors (CR) on MO-M phi (CR1, CR3, and CR4) profoundly inhibited binding of serum-opsonized encapsulated (and to a lesser extent acapsular) organisms to MO-M phi. Immunofluorescence studies demonstrated migration of CR to the area of the cryptococcal binding site. Trypsin and elastase inhibited binding of encapsulated and, to a lesser extent, acapsular yeasts to MO-M phi. Binding of encapsulated C. neoformans was profoundly inhibited by incubation in the cold or by inhibitors of receptor capping and actin microfilaments. Thus, multiple CR appear to contribute to binding of serum-opsonized encapsulated C. neoformans by MO-M phi. Binding is an energy-dependent process that requires conformational changes in actin yet does not lead to phagocytosis of the organism. In contrast, energy is not required for binding of acapsular yeasts by MO-M phi and binding triggers phagocytosis.

Actins↗

Phenotypic and functional characterization of human lymphocytes activated by interleukin-2 to directly inhibit growth of Cryptococcus neoformans in vitro.

Recently we demonstrated that the nonadherent (to plastic) fraction of human PBMC could be activated by IL-2 to inhibit Cryptococcus neoformans growth. Here we characterize the antifungal effector cells. Depletion by panning of natural killer (NK) (CD16+, CD56+) cells from nylon wool-treated, IL-2-activated PBMC markedly decreased lytic activity against a tumor cell target (K562) but did not affect antifungal activity. Panning out T (CD3+, CD5+) cells enhanced activity against tumor cells but partially abrogated activity against C. neoformans. IL-2-activated T cells of 95% purity, obtained by panning out NK cells from PBMC forming rosettes with sheep erythrocytes, had excellent antifungal activity but suboptimal antitumor activity. The nonrosetted cells (which were virtually free of T cells and enriched for NK cells) had both antitumor and antifungal activity, even if cultured without IL-2. CD4+, CD8+, and CD56+ cells, purified by positive selection by panning, directly inhibited cryptococcal growth. Conjugate formation between fungi and both CD56+ and CD5+ effector cells was demonstrated by videomicroscopy and immunoperoxidase staining. Thus, IL-2-activated T cells and NK cells form conjugates with and directly inhibit the growth of C. neoformans. To our knowledge, these data are the first demonstration of human T cells directly inhibiting growth of a microbial target.

Animals↗

Direct interactions of human lymphocytes with the yeast-like organism, Cryptococcus neoformans.

Lymphocytes, especially CD4+ T cells, are essential for clearance of the yeast-like organism Cryptococcus neoformans from the infected host. The mechanism(s) by which the lymphocytes facilitate elimination of cryptococci has not been elucidated. It is generally thought, however, that lymphocytes reactive with C. neoformans indirectly function by production of lymphokines to enhance clearance of the organism by natural effector cells such as macrophages. In the present study, we assessed the ability of freshly isolated human lymphocytes to interact directly with C. neoformans and to limit the growth of the organism in vitro. We found that large granular lymphocytes (LGL) as well as T cells bound to cryptococcal cells when the lymphocytes were mixed with the cryptococcal cells at a 2:1 ratio. The physical binding interactions of the two lymphocyte populations were different. LGL attached to the cryptococcal cells by many microvilli; T lymphocytes associated with the yeast through broad areas of membrane attached to the cryptococcal cell surface. The two types of lymphocyte interactions did not result in phagocytosis but resulted in direct inhibition of cryptococcal growth, making these lymphocyte interactions with cryptococci distinctly different from interactions of monocytes with cryptococci. With the human natural killer (NK) cell line, NK 3.3, we confirmed that NK cells that were present in the LGL population were capable of limiting the growth of C. neoformans. Through immunoelectron microscopy, human CD3+ lymphocytes were seen attached to cryptococcal cells and by mass cytolysis, human CD3+ lymphocytes were shown to be responsible for inhibition of C. neoformans growth. The direct inhibitory interactions of NK cells and T lymphocytes with cryptococcal cells may be important means of host defense against this ubiquitous organism that frequently causes life-threatening disease in AIDS patients.

CD3 Complex↗

Urokinase is required for the pulmonary inflammatory response to Cryptococcus neoformans. A murine transgenic model.

Urokinase (uPA) is hypothesized to provide proteolytic activity enabling inflammatory cells to traverse tissues during recruitment, and it is implicated as a cytokine modulator. Definitive evaluation of these hypotheses in vivo has previously been impossible because uPA could not completely and irreversibly be eliminated. This limitation has been overcome through the development of uPA-deficient transgenic mice (uPA-/-). Using these mice, we evaluated the importance of uPA in the pulmonary inflammatory response to Cryptococcus neoformans (strain 52D). C. neoformans was inoculated into uPA-/- and control mice (uPA+/+), and cell recruitment to the lungs was quantitated. The number of CFU in lung, spleen and brain was determined to assess clearance, and survival curves were generated. By day 21 after inoculation, uPA-/- mice had markedly fewer pulmonary inflammatory (CD45+), CD4+, and CD11b/CD18+ cells compared with uPA+/+ controls (P<0.0007); pulmonary CFUs in the uPA-/- mice continued to increase, whereas CFUs diminished in uPA+/+ mice(P<0.005). In survival studies, only 3/19 uPA+/+ mice died, whereas 15/19 uPA-/- mice died (p<0.001). We have demonstrated that uPA is required for a pulmonary inflammatory response to C. neoformans. Lack of uPA results in inadequate cellular recruitment, uncontrolled infection, and death.

Animals↗

Chloroquine induces human mononuclear phagocytes to inhibit and kill Cryptococcus neoformans by a mechanism independent of iron deprivation.

Infections due to Cryptococcus neoformans are common in AIDS patients. We investigated the effect of chloroquine, which raises the pH of phagolysosomes, on the anticryptococcal activity of mononuclear phagocytes. C. neoformans multiplied within monocyte-derived macrophages (MDM) in the absence of chloroquine but were killed with the addition of chloroquine. Ammonium chloride was also beneficial, suggesting that effects were mediated by alkalinizing the phagolysosome. Chloroquine inhibits growth of other intracellular pathogens by limiting iron availability. However, chloroquine-induced augmentation of MDM anticryptococcal activity was unaffected by iron nitriloacetate, demonstrating that chloroquine worked by a mechanism independent of iron deprivation. There was an inverse correlation between growth of C. neoformans in cell-free media and pH, suggesting that some of the effect of chloroquine on the anticryptococcal activity of MDM could be explained by relatively poor growth at higher pH. Chloroquine enhanced MDM anticryptococcal activity against all tested cryptococcal strains except for one large-capsule strain which was not phagocytosed. Positive effects of chloroquine were also seen in monocytes from both HIV-infected and -uninfected donors. Finally, chloroquine was therapeutic in experimental cryptococcosis in outbred and severe combined immunodeficient mice. Thus, chloroquine enhances the activity of mononuclear phagocytes against C. neoformans by iron-independent, pH-dependent mechanisms and is therapeutic in murine models of cryptococcosis. Chloroquine might have clinical utility for the prophylaxis and treatment of human cryptococcosis.

Ammonium Chloride↗

Phenotypic switching of Cryptococcus neoformans occurs in vivo and influences the outcome of infection.

Phenotypic switching has been linked to the virulence of many pathogens, including fungi. However, it has not been conclusively shown to occur in vivo or to influence the outcome of infection. Cryptococcus neoformans undergoes phenotypic switching in vitro to colony types that differ in their virulence in mice. In this study, we asked whether C. neoformans undergoes phenotypic switching in vivo and whether this phenomenon contributes to virulence. By using a small inoculum to preclude the introduction of variants that had already switched during in vitro propagation, we demonstrated that in vivo switching to a mucoid phenotype occurred in two mice strains and was associated with a lethal outcome. Phenotypic switching resulted in changes of the capsular polysaccharide that inhibited phagocytosis by alveolar macrophages. This promoted a more vigorous inflammatory response and rapid demise. These data document in vivo switching in a fungus and associate this phenomenon with enhanced virulence and a lethal outcome. The importance of this finding is underscored by the increased likelihood of phenotypic switching in chronic cryptococcosis; thus this mechanism may account for the inability to eradicate the organism in immunocompromised hosts.

Animals↗

Identification of App1 as a regulator of phagocytosis and virulence of Cryptococcus neoformans.

Cryptococcus neoformans is a fungal pathogen that, after inhalation, can disseminate to the brain. Host alveolar macrophages (AMs) represent the first defense against the fungus. Once phagocytosed by AMs, fungal cells are killed by a concerted mechanism, involving the host-cellular response. If the cellular response is impaired, phagocytosis of the fungus may be detrimental for the host, since C. neoformans can grow within macrophages. Here, we identified a novel cryptococcal gene encoding antiphagocytic protein 1 (App1). App1 is a cryptococcal cytoplasmic protein that is secreted extracellularly and found in the serum of infected patients. App1 does not affect melanin production, capsule formation, or growth of C. neoformans. Treatment with recombinant App1 inhibited phagocytosis of fungal cells through a complement-mediated mechanism, and Deltaapp1 mutant is readily phagocytosed by AMs. Interestingly, the Deltaapp1 mutant strain showed a decreased virulence in mice deficient for complement C5 (A/Jcr), but it was hypervirulent in mice deficient for T and NK cells (Tgepsilon26). This study identifies App1 as a novel regulator of virulence for C. neoformans, and it highlights that internalization of fungal cells by AMs increases the dissemination of C. neoformans when the host cellular response is impaired.

Animals↗

Glucosylceramide synthase is an essential regulator of pathogenicity of Cryptococcus neoformans.

The pathogenic fungus Cryptococcus neoformans infects humans upon inhalation and causes the most common fungal meningoencephalitis in immunocompromised subjects worldwide. In the host, C. neoformans is found both intracellularly and extracellularly, but how these two components contribute to the development of the disease is largely unknown. Here we show that the glycosphingolipid glucosylceramide (GlcCer), which is present in C. neoformans, was essential for fungal growth in host extracellular environments, such as in alveolar spaces and in the bloodstream, which are characterized by a neutral/alkaline pH, but not in the host intracellular environment, such as in the phagolysosome of macrophages, which is characteristically acidic. Indeed, a C. neoformans mutant strain lacking GlcCer did not grow in vitro at a neutral/alkaline pH, yet it had no growth defect at an acidic pH. The mechanism by which GlcCer regulates alkali tolerance was by allowing the transition of C. neoformans through the cell cycle. This study establishes C. neoformans GlcCer as a key virulence factor of cryptococcal pathogenicity, with important implications for future development of new antifungal strategies.

Animals↗