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Protection of mice against experimental cryptococcosis by anti-Cryptococcus neoformans monoclonal antibody.

Humoral immunity does not play a prominent role during experimental cryptococcosis. However, previous studies have shown that immunoglobulin G (IgG) anti-Cryptococcus neoformans antibodies can mediate cell-dependent yeast killing in vitro. Therefore, the protective effect of a previously described monoclonal IgG1 anti-C. neoformans antibody (E1) administered intraperitoneally 24 h before intravenous infection with a C. neoformans serotype A strain was evaluated in mice. Heavily infected (3 X 10(6) cells) untreated mice died in 2.9 +/- 0.5 (standard deviation) days. Survival time was 17.9 +/- 1.6 days for mice treated with 100 micrograms of E1 and 3.0 +/- 0.7 days for mice treated with 100 micrograms of a monoclonal IgG1 anti-thyroglobulin antibody used as a control. Protection was dose dependent and required at least 10 micrograms of E1 (mean antibody concentration in serum +/- standard deviation, 6.6 +/- 2.3 micrograms/ml). Insufficient concentrations of IgG anti-C. neoformans antibody could explain previous negative results obtained with polyclonal immune serum. After infection with a smaller inoculum (5 X 10(3) to 5 X 10(4)), the protective effect of E1 was confirmed by the presence of fewer CFUs in the spleens and brains of treated mice than in those of controls. CFU were still detected in the brains of protected mice 5 days after infection, although soluble antigen was negative in sera. These results suggest that passive serotherapy with monoclonal IgG antibodies could participate in the prevention or treatment of experimental cryptococcosis.

Animals↗

Cyclosporin A inhibits the growth of Cryptococcus neoformans in a murine model.

Cryptococcus neoformans is a frequent opportunistic infectious agent in patients with decreased T-lymphocyte-mediated immune function, including those with acquired immune deficiency syndrome. Cyclosporin A (CsA), a potent inhibitor of T-lymphocyte function, was administered subcutaneously to mice to study the pathogenesis of C. neoformans infections in the setting of impaired T-cell function. Surprisingly, survival was prolonged indefinitely in animals that received immunosuppressive doses of CsA following either intratracheal or intravenous inoculations of C. neoformans. Furthermore, following intratracheal inoculation, mice treated with CsA cleared C. neoformans from their lungs more rapidly than did control mice. CsA directly inhibited the growth of C. neoformans when it was added to cultures in vitro at concentrations comparable to the blood levels achieved in experimental mice. Thus, CsA inhibited both in vitro and in vivo growth of C. neoformans. While these results must be extended to studies in humans, these data suggest that patients who now receive CsA-immunosuppressive therapy may be fortuitously protected against infections with C. neoformans. Furthermore, research into cyclosporin derivatives may yield compounds with less immunosuppressive properties and enhanced antifungal activity.

Animals↗

Clearance of Cryptococcus neoformans from immunologically suppressed mice.

To assess the effects of cryptococcal antigen-induced immunosuppression on a Cryptococcus neoformans infection, CBA/J mice were injected intravenously with saline or suppressive doses of cryptococcal antigen (CneF) at weekly intervals and were then infected with viable C. neoformans cells. By the second week after infection, the cryptococcal antigen-injected mice had suppressed anticryptococcal delayed-type hypersensitivity (DTH) responses compared with the responses of the saline-treated, infected control mice. In addition, the immunosuppressed mice had higher numbers of cryptococcal CFU cultured from their lungs, livers, spleens, lymph nodes, and brains than did the control animals. A direct correlation of suppression of the anticryptococcal DTH response and reduced clearance of cryptococci from tissues was also observed after mice were given a single intravenous injection of CneF and infected. To determine whether or not the cryptococcal antigen was specifically reducing the clearance of C. neoformans or had a more generalized effect, mice were injected with saline or suppressive doses of CneF, infected with Listeria monocytogenes, and then followed daily for 7 days for the clearance of L. monocytogenes from spleens and on day 7 for DTH reactivity to Listeria antigen. There were no differences between the saline- and CneF-treated mice with respect to anti-Listeria DTH responses or clearance of L. monocytogenes from spleens, indicating that CneF was not altering natural resistance mechanisms responsible for early clearance of L. monocytogenes, nor was the CneF influencing the induction of the acquired immune response which was responsible for the late clearance of the bacteria. Together, these data indicate that the specific suppression of this cell-mediated immune response induced by cryptococcal antigen reduces the ability of the animals to eliminate the homologous organism (C. neoformans) but not a heterologous infectious agent, such as L. monocytogenes.

Animals↗

Killing of Cryptococcus neoformans strains by human neutrophils and monocytes.

The susceptibility of various strains of Cryptococcus neoformans to killing by human polymorphonuclear leukocytes (PMNs) and monocytes was investigated. Five previously characterized strains of C. neoformans serotype A, a capsule-free mutant, and six recent clinical isolates were compared. PMNs and monocytes were isolated from normal peripheral blood and allowed to adhere to the flat-bottom wells of microtiter plates. Yeast cells of C. neoformans were added in the presence of normal human serum, and the plates were incubated at 37 degrees C. After 4 h, killing was determined by comparing the quantitative plate counts of viable yeast cells in experimental wells with counts in control wells containing yeast cells in the absence of leukocytes. No appreciable growth of yeast cells occurred in the wells during the incubation period. Both PMNs and monocytes effectively killed yeast cells at effector-to-target ratios as low as 1:1, although monocytes failed to kill the capsule-free strain 602 at a 1:1 ratio. With 9 of 12 strains, PMNs killed C. neoformans more effectively than did monocytes. Significant interstrain variation in killing occurred for both monocytes and PMNs, and the recent, clinical isolates were more resistant to killing by monocytes and PMNs than were the previously characterized strains. The extent to which different strains were killed by monocytes and PMNs was not consistently related to the size of the capsule or the entire cell. Normal PMNs and monocytes are remarkably effective in killing strains of C. neoformans in the absence of specific antibody and appear to constitute a significant defense mechanism in the peripheral circulation.

Cryptococcus neoformans↗

Effects of Cryptococcus neoformans-specific suppressor T cells on the amplified anticryptococcal delayed-type hypersensitivity response.

Cell-mediated immunity is an important host resistance mechanism against Cryptococcus neoformans, the etiological agent of cryptococcosis. Previous studies from our laboratory have shown that the anticryptococcal cell-mediated immune response as measured by delayed-type hypersensitivity (DTH) is down-regulated by a cascade of antigen-specific T suppressor (Ts) cells. Recently, we have identified a population of CD4 T cells that up-regulate the anticryptococcal DTH response (Tamp cells). The Tamp cells are found in the spleens of donor mice at 6 days after immunization with cryptococcal antigen, and they amplify the anticryptococcal DTH response when transferred to syngeneic recipients at the time of immunization of the recipients. In this study, we determined the effects of C. neoformans-specific Ts cells on the induction of the Tamp cells in the Tamp cell-donor mice and on the induction and expression of the amplified anticryptococcal DTH response in the Tamp cell-recipient mice. When cryptococcal-specific Ts1 cells were given at the time of immunization of the Tamp cell-donor mice, induction of Tamp cells was inhibited. In contrast, when Ts1 cells were given at the time of adoptive transfer of Tamp cells, the recipients displayed amplified DTH responses, indicating that Ts1 cells do not affect the Tamp cells' function once the Tamp cells have been produced. C. neoformans-specific Ts2 cells given at the time of either immunization or footpad challenge of the Tamp cell-recipient mice did not alter, to any measurable extent, the amplified DTH response. These results indicate that in addition to amplifying the anticryptococcal DTH response, Tamp cells may protect the anticryptococcal TDH cells from suppression by C. neoformans-specific Ts cells, much like contrasuppressor cells do in other systems. However, further characterization of the Tamp cells revealed that they are not adherent to Viscia villosa lectin, indicating that the anticryptococcal Tamp cells do not have this characteristic in common with contrasuppressor cells of other antigen systems.

Animals↗

Facilitated isolation, purification, and analysis of glucuronoxylomannan of Cryptococcus neoformans.

Cryptococcus neoformans was cultured in a chemically defined medium. The culture was adjusted to 0.25% formaldehyde or autoclaved after 5 days of growth at 35 degrees C, and a cell-free supernatant was obtained by centrifugation. Solid calcium acetate was added to the supernatant to give a 5% solution, and the pH was adjusted to approximately 5 with glacial acetic acid. The polysaccharide (PS) was precipitated by the addition of 3 volumes of 95% ethanol. The PS was dissolved in 0.2 M NaCl, and insoluble calcium salts were solubilized by the addition of several drops of glacial acetic acid. The PS solution was treated by ultrasonic irradiation for 15 min. This concurrently decreased the molecular weight of the PS and reduced the viscosity of the solution. The ultrasonically irradiated PS was precipitated by differential complexation with hexadecyltrimethylammonium bromide at 23 degrees C, the complex was dissolved in 1 M NaCl, and the glucuronoxylomannan was precipitated by adding 3 volumes of ethanol. The glucuronoxylomannan was dissolved in 1 M NaCl and then ultrasonically irradiated for 2 h to reduce the molecular mass to a limiting value of approximately 100 kDa (GXMS). The purified GXMS was centrifuged, dialyzed, and finally recovered by lyophilization. GXMS was chromatographed on DEAE-cellulose at reasonable concentrations without the complication of high solution viscosity. The sugar composition and structure of GXMS were determined by gas-liquid chromatography, permethylation gas-liquid chromatography-mass spectrometry, and 13C nuclear magnetic resonance spectroscopy. The improved solution characteristics of GXMS were ideal for the determination of its chemical and serological properties.

Cryptococcus neoformans↗

Activation of human peripheral blood mononuclear cells by interleukin-2 and granulocyte-macrophage colony-stimulating factor to inhibit Cryptococcus neoformans.

The abilities of selected cytokines to activate human peripheral blood mononuclear cells (PBMC) to inhibit and kill the opportunistic fungus Cryptococcus neoformans were studied. PBMC were cultured for 7 days in cell wells containing no cytokines, tumor necrosis factor (TNF), gamma interferon (IFN-gamma), 1,25-dihydroxycholecalciferol (vitamin D3), granulocyte-macrophage colony-stimulating factor (GM-CSF), or interleukin-2 (IL-2) and were then challenged for 24 h with a fixed number of CFU of C. neoformans. The number of CFU increased in wells containing no cytokines, TNF, IFN-gamma, or vitamin D3 and remained about the same in wells containing GM-CSF. In contrast, the number of CFU in wells containing IL-2-stimulated PBMC decreased, suggesting fungicidal activity. Optimal conditions for IL-2 stimulation included a minimum of 5 days of incubation of PBMC with IL-2, a concentration of 100 U of IL-2 per ml, and a high ratio of effectors to fungi. Separation of IL-2-stimulated PBMC based upon their adherence to plastic revealed that antifungal activity resided in the nonadherent fraction. These data demonstrate that IL-2 and GM-CSF are capable of stimulating PBMC-mediated antifungal activity and suggest that these cytokines may play physiological or pharmacological roles in host defenses against cryptococcosis.

Cells, Cultured↗

Cryptococcus neoformans serotype A glucuronoxylomannan-protein conjugate vaccines: synthesis, characterization, and immunogenicity.

We synthesized Cryptococcus neoformans serotype A glucuronoxylomannan (GXM) conjugate vaccines under conditions suitable for human use to prevent disseminated cryptococcosis. The purified, sonicated GXM was derivatized with adipic acid dihydrazide through either hydroxyl or carboxyl groups and then covalently bound to tetanus toxoid (TT) or Pseudomonas aeruginosa exoprotein A (rEPA). The immunogenicity of these conjugates was evaluated in BALB/c and general purpose mice by subcutaneous injection in saline. The conjugates elicited higher GXM antibody responses than GXM alone. Booster immunoglobulin G (IgG) and IgM responses were elicited by all conjugates in BALB/c mice. The conjugates prepared through hydroxyl activation (GXM-TT2 and GXM-rEPA) were more immunogenic than the one prepared through carboxyl activation (GXM-TT1). GXM antibody response was enhanced by the administration of monophosphoryl lipid A 2 days following the injection of GXM-TT2 (P less than 0.03). The conjugates also elicited IgG antibodies to the carrier proteins. Gel diffusion tests using conjugate-induced hyperimmune sera and chemically modified GXMs suggested that the specificity of GXM-TT1-induced antibodies was conferred by the O-acetyl groups. Hyperimmune sera generated by GXM-TT2 precipitated with the chemically unmodified and the de-O-acetylated GXMs but not with the carboxyl-reduced and de-O-acetylated GXM. GXM-TT2-induced hyperimmune serum also precipitated with the capsular polysaccharides of C. neoformans serotypes D, B, and C. The conjugate vaccines prepared through hydroxyl activation of the GXM are sufficiently immunogenic and appear to be suitable for clinical evaluation.

Animals↗

Encapsulation of Cryptococcus neoformans impairs antigen-specific T-cell responses.

The encapsulated yeast Cryptococcus neoformans is a significant cause of opportunistic infection in patients with impaired cell-mediated immunity. The major virulence determinant of the organism is an antiphagocytic polysaccharide capsule synthesized after entry into the host. Using both an encapsulated virulent strain and an acapsular avirulent mutant, we have demonstrated the reduced ability of the encapsulated strain to stimulate specific T-cell responses in vitro. This reduction was mediated by the antiphagocytic action of the capsule rather than by direct inhibition of antigen processing and presentation, since prior opsonization with complement enhanced the ingestion of encapsulated yeast cells by purified antigen-presenting cells and allowed significant T-cell activation. Once ingestion had occurred, cryptococci were efficiently processed by activated macrophages via a chloroquine-sensitive pathway. Cryptococcal antigens were available for T-cell recognition within 1 to 2 h of interaction with macrophages and presented in a major histocompatibility complex-restricted manner. Our results suggest that the antiphagocytic action of the polysaccharide capsule is an important determinant for the development of T-cell immunity to C. neoformans.

Animals↗

Binding interactions of murine natural killer cells with the fungal target Cryptococcus neoformans.

Murine natural killer (NK) cells have been shown to inhibit the growth of the yeastlike organism Cryptococcus neoformans both in vivo and in vitro. An essential first step in NK cell-mediated damage of cryptococcal cells is the binding of the NK cell to the cryptococcal cell. The studies presented here focused on the binding event. Electron photomicrographs and three-dimensional reconstructions of NK cell-C. neoformans conjugates show that NK cells bind to cryptococci through many microvilli. This is in contrast to the broad membrane-membrane interactions which form the binding site of NK cell-YAC-1 tumor cell conjugates. NK cell binding to cryptococci is much slower than NK cell binding to YAC-1 targets. Maximal conjugate formation with cryptococcal targets is reached after 2 h, whereas maximal conjugate formation with YAC-1 targets is obtained after 20 min. Once maximum NK cell-C, neoformans conjugate formation is obtained, another 4 h is required before damage to the cryptococcal cells can be detected with the CFU assay. These data indicate that the binding and action of NK cells on C. neoformans cells requires considerably more time than is necessary for similar events to occur in the NK cell-tumor cell model. NK cell membrane integrity is necessary for NK cells to bind to tumor targets, since some disruption of membrane integrity with 0.1 M dimethyl sulfoxide reduces conjugate formation and tumor cell lysis. In contrast, 0.1 M dimethyl sulfoxide did not diminish NK cell binding to cryptococcal targets; however, it significantly reduced cryptococcal growth inhibition. Although we have observed several differences in NK cell binding to the cryptococcal target compared with NK cell binding to tumor cell targets, there are some similarities in binding interactions of NK cells with the two different targets. Disulfide bonding appears to play a role in the binding of NK cells to both targets, since 5 mM 2-mercaptoethanol, a reagent that reduces disulfide bonds, prevented NK cells from binding to the tumor targets as well as the cryptococcal targets. Actin filaments, components of the cytoskeletal network, must be intact for NK cells to bind to YAC-1 cells or cryptococci. Taken together, our data confirm that binding of NK cells to the cryptococcal target is prerequisite to the stages that result in damage to the cryptococcal cell and that there are similarities and differences in NK cell-binding interactions with structurally different target cells.

Animals↗

Responses of murine natural killer cells to binding of the fungal target Cryptococcus neoformans.

Natural killer (NK) cells bind to and inhibit the growth of the fungal target Cryptococcus neoformans. Since C. neoformans is structurally and chemically distinct from the standard tumor cell target used in the model of NK cell-mediated cytotoxicity, this study was designed to investigate the NK cell response after binding to cryptococci. Transmission electron micrographs and three-dimensional reconstructions of NK cell-cryptococci conjugates demonstrated focusing of the NK cell centrioles and Golgi apparatus toward the cryptococcal attachment site. NK cell cytoskeletal changes after cryptococcal binding were confirmed by immunofluorescence studies in which NK cells were allowed to bind to cryptococci in Mg2(+)-containing, Ca2(+)-free medium. One hour after the addition of Ca2+ to the preformed conjugates, the bound NK cells demonstrated a significant increase in the percentage of microtubule organizing centers focused toward the cryptococcal binding site. Colchicine, a drug that inhibits microtubule assembly, did not affect NK cell-cryptococci binding but abrogated NK cell-mediated cryptococcal growth inhibition, indicating that microtubule assembly, an important prerequisite for the secretory process, is not required for NK cell-cryptococci binding but is essential for inhibition of cryptococcal growth. In addition, the Ca2+ channel-blocking reagents, lidocaine and verapamil, did not affect NK cell-cryptococci binding but blocked the NK cell-mediated anticryptococcal activity, suggesting that a Ca2+ flux is essential for inhibition of cryptococcal growth. Considered together, these data indicate that NK cells respond to binding of a target cell that has a capsule and cell wall, in addition to a cell membrane, in a manner similar to that seen following binding to target cells that are surrounded by only a cell membrane; however, the response of the NK cells to the binding of C. neoformans is slower and possibly less efficient than the response after tumor cell binding.

Animals↗

Murine natural killer cells are fungicidal to Cryptococcus neoformans.

Murine natural killer (NK) cells have been shown to bind to and inhibit the growth of Cryptococcus neoformans in vitro and to contribute to clearance of the organism in vivo. However, it is unclear whether NK cells actually kill cryptococci or simply inhibit proliferation of the fungal target. Therefore, the studies presented here were designed to determine whether NK cells are fungicidal to C. neoformans targets. C. neoformans viability was determined on the basis of the metabolic function of two different enzyme systems, as measured by the two vital stains MTT [3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide] and fluorescein diacetate. Cryptococcal viability, as determined by vital stains, was compared with cryptococcal proliferation, as measured by microcolony formation in agarose at the individual cell level and by CFU counts or extinction dilution analysis in the total cell suspension. Initial comparisons of the vital stains and proliferation assays indicated that these methods effectively distinguished between live and heat-killed cryptococci at the individual cell level and in the total cell suspensions. After cryptococci were incubated with murine NK cells for 18 h, vital stains demonstrated that at the single conjugate level and in the total cell suspension, NK cells kill bound C. neoformans target cells. In addition, the numbers of dead cryptococci in the NK cell-C. neoformans suspensions as determined by the vital stains were comparable to the numbers of cryptococci that were unable to proliferate. Kinetics of NK cell-mediated C. neoformans binding and killing at the single conjugate level and in the total cell suspension were assessed by MTT staining at 2-h intervals after mixing effector and target cells, and the data support the concept that NK cell-C. neoformans binding precedes cryptococcal death. Furthermore, unbound, dead fungal cells were observed in the NK cell-C. neoformans suspensions after 18 h, suggesting that NK cell-C. neoformans interactions may involve both effector cell recycling and killing of unbound cryptococci by soluble cytotoxic factors. In conclusion, the results of these studies firmly establish that NK cells kill C. neoformans.

Animals↗

Inhibition of Cryptococcus neoformans replication by nitrogen oxides supports the role of these molecules as effectors of macrophage-mediated cytostasis.

Activated macrophages are able to inhibit the replication of intracellular microbes and tumor cells. In the murine system, this cytostatic effect is associated with the oxidation of L-arginine to L-citrulline, nitrite, and nitrate and is thought to be mediated by an intermediate of this reaction, possibly nitric oxide (NO.). By exposing replicating Cryptococcus neoformans cells to conditions under which NO. is chemically generated, we have observed a cytostatic effect similar to that caused by activated murine macrophages. Nitric oxide is formed as a decomposition product of nitrite salts in acidic, aqueous solutions. Although C. neoformans replicates well in the presence of high nitrite concentrations at physiologic pH, its growth in acidic media can be inhibited by the addition of low concentrations of sodium nitrite. The degree of cytostasis is dependent on both the pH and the nitrite concentration of the NO. generating solution. The cytostatic effector molecule appears to be a gas since, in addition to inhibiting C. neoformans replication in solution, it is able to exert its inhibitory effect across a gas-permeable but ion-impermeable membrane. At high nitrite concentrations, a fungicidal effect occurs. We propose that the growth inhibition of C. neoformans upon exposure to chemically generated NO. or some related oxide of nitrogen represents a cell-free system simulating the cytostatic effect of activated murine macrophages.

Cryptococcus neoformans↗

Early events in initiation of alternative complement pathway activation by the capsule of Cryptococcus neoformans.

The capsule of Cryptococcus neoformans is a powerful activator of the alternative complement pathway. This study examined the manner in which the cryptococcal capsule influences initiation of and early events in complement activation by C. neoformans. These studies examined the effects of the classical and alternative pathways on the kinetics and early sites for deposition of C3 fragments on encapsulated cryptococci, nonencapsulated cryptococci, and zymosan. The results showed that nonencapsulated cryptococci and zymosan are qualitatively and quantitatively similar in the manner in which they initiate complement activation. Both utilize the classical and alternative pathways. Initiation via the classical pathway occurs suddenly and simultaneously at sites distributed over the entire cell surface. Initiation of the alternative pathway by zymosan and nonencapsulated cryptococci is characterized by a lag of 6 to 8 min before appreciable amounts of C3 accumulate on the cells. Alternative pathway initiation by zymosan and nonencapsulated cryptococci occurs at a limited number of focal initiation sites that expand with alternative pathway amplification to cover the cell surface. Presence of the cryptococcal capsule blocks classical pathway initiation, which would normally occur at the cryptococcal cell wall, and produces an initiation that is dependent solely on the alternative pathway. Initiation of the alternative pathway by the cryptococcal capsule is characterized by a lag in C3 accumulation and the appearance of a limited number of focal initiation sites which resemble those observed when the alternative pathway is activated by zymosan and nonencapsulated cryptococci.

Complement Activation↗

A 34- to 38-kilodalton Cryptococcus neoformans glycoprotein produced as an exoantigen bearing a glycosylated species-specific epitope.

Three monoclonal antibodies (MAbs), all of the immunoglobulin G1 subclass, were raised against Cryptococcus neoformans by using the technique of cyclophosphamide ablation of B-cell responses against shared epitopes of the cross-reactive fungus Trichosporon beigelii. MAb 3C2 was reactive against the encapsulated and nonencapsulated isolates of C. neoformans var. neoformans by enzyme-linked immunosorbent assay (ELISA) and Western blot (immunoblot), and in addition to a 34- to 38-kDa determinant, it recognized a series of lower-molecular-weight species. 3C2 also reacted strongly with culture supernatant preparations of C. neoformans var. neoformans by ELISA. 3C2 showed no recognition of either T. beigelii or C. neoformans var. gattii antigens. Enzymatic deglycosylation followed by reaction with 3C2 on Western blots revealed that sialic acid was an integral part of the determinant, together with N-acetylglucosaminyl-asparagine and alpha-mannose. Proteolytic digestion showed that the epitope was pepsin sensitive and that it also contained tryptophan and glycine and/or leucine as determinants of recognition by 3C2. The pI of the glycoprotein was 7.1. Affinity chromatography-purified antigen did not exhibit proteolytic activity on sodium dodecyl sulfate-polyacrylamide substrate gels. Indirect fluorescence antibody tests revealed that 3C2 labelling was confined to the cell membrane and cytoplasm of yeasts. The remaining MAbs, 7H4 and 5G5, recognized both capsulated and nonencapsulated strains of C. neoformans var. neoformans by both ELISA and Western Blot, identifying linear determinants with molecular masses of 36 and 30 kDa. They were unreactive against culture supernatant antigen (exoantigen) from either variant of C. neoformans.

Animals↗

The glucuronoxylomannan of Cryptococcus neoformans serotype A is a type 2 T-cell-independent antigen.

The humoral immune response of inbred mice to immunization with the glucuronoxylomannan (GXM) of Cryptococcus neoformans was investigated both serologically and in plaque-forming cells (PFCs). The T-helper-cell-independent quality of the GXM was demonstrated by using BALB/c nu/nu mice. Primary and secondary dose responses to three antigenic forms of GXM, (i) the native antigen, (ii) a GXM-bovine serum albumin protein conjugate, and (iii) a cryptococcal whole-cell vaccine, revealed a lack of isotype class switching and anamnestic responses. Both the levels of complement-fixing anti-GXM antibody in serum and the PFC responses in the athymic mice showed no significant differences from those in the wild-type controls. However, T cells are involved in the suppression of the primary response to GXM. When BALB/cBy mice were given rabbit anti-mouse thymocyte serum along with 0.5 microgram of GXM, both antibody levels in serum and PFC responses were significantly increased over those of control mice that received GXM and normal rabbit serum. In addition, T cells were also shown to enhance the primary immune response to GXM. BALB/cBy mice were given GXM and anti-mouse thymocyte serum on day 1. On day 2, the experimental group was given anti-mouse thymocyte serum and the control group was given saline. On day 5, comparison of the PFC responses and anti-GXM antibody titers of the two groups revealed a significant increase in the immune response of the control over the experimental group. The type 2 T-cell-independent quality of GXM was also demonstrated in CBA/cHN xid mice. These mice lack the Lyb+ subset of B cells and are unable to respond to type 2 T-independent antigens but respond normally to type 1 T-independent antigens. Type III pneumococcal polysaccharide, a type 2 T-independent antigen, was used as a negative control, and trinitrophenyl-lipopolysaccharide, a type 1 T-independent antigen, was used as a positive control. The CBA/cHN xid mice failed to respond to either type III pneumococcal polysaccharide or GXM but did not respond to immunization with trinitrophenyl-lipopolysaccharide. BALB/cBy mice responded normally to all three antigens.

Animals↗

Protective murine monoclonal antibodies to Cryptococcus neoformans.

Several murine monoclonal antibodies (MAbs) specific for the capsular glucuronoxylomannan of Cryptococcus neoformans were studied for their capacity to confer protection when passively administered to lethally infected mice. The MAb group studied recognized at least three distinct epitopes and included immunoglobulin M (IgM), IgG3, IgG1, and IgA isotypes. The protection model used A/J and BALB/c mice infected intraperitoneally with 10(8) cryptococci. The MAbs were administered either immediately preceding or, in one experiment, 24 to 48 h prior to infection. Protective efficacy was assessed by the ability of passively administered MAbs to prolong the survival of lethally infected mice. Three IgM MAbs, each of which recognized a distinct epitope, were able to prolong survival of lethally infected mice to different extents. A set of IgM, IgG3, IgG1 and IgA MAbs which utilize the same immunoglobulin gene elements and were derived from the same B-cell clone exhibited significant class differences in protective efficacy with IgA, IgG1 > IgM > IgG3. The results confirm that protective MAbs against C. neoformans capsular polysaccharide exist and strongly suggest that both epitope specificity and isotype are important determinants of protective efficacy.

Animals↗

Genetic association of mating types and virulence in Cryptococcus neoformans.

A pair of congenic Cryptococcus neoformans var. neoformans strains, B-4476 (a mating type) and B-4500 (alpha mating type), that presumably differ only in mating type was constructed. This pair and their progeny, five alpha type and five a type, were tested for virulence in mice. In the parent strains as well as the progeny, alpha type was clearly more virulent than a type. In addition, death tended to occur earlier among the alpha-strain-infected mice that died than among the mice that died by infection caused by a strains. These data strongly suggest the genetic association of virulence with mating type in this human fungal pathogen.

Animals↗