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Biochemical studies of phenoloxidase and utilization of catecholamines in Cryptococcus neoformans.

Protoplasts of Cryptococcus neoformans contain phenoloxidase as a membrane-bound enzyme. The enzyme appeared to be attached on the inner side of cytoplasmic membranes. Synthesis of the enzyme was derepressed by low levels of glucose but was not affected by the level of ammonium. Copper chelators which inhibited the phenoloxidase of other organisms did not affect cryptococcal enzymes. However, cyanide- or iron-chelating agents such as hydroximide derivates or 8-hydroxyquinoline were effective inhibitors, suggesting that cryptococcal phenoloxidase is an iron-containing enzyme. Phenoloxidase of C. neoformans catalyzed the oxidation of various diphenols via dopachrome and labile intermediates to melanin polymers. The kinetic constants (Km) of the phenoloxidase and the permease for dopamine and norepinephrine were low. The correlation between phenoloxidase and the preferential growth of C. neoformans in the host brain is discussed.

Ammonia↗

Genetic and phenotypic characterization of capsule mutants of Cryptococcus neoformans.

Stable mutants with reduced capacity to produce capsules were isolated from suspensions of Cryptococcus neoformans after treatment of the wild type with a mutagen. The mutants could be assigned one of two phenotypes, hypocapsular or acapsular. Hypocapsular mutants were immunochemically and physicochemically indistinguishable from the wild type, whereas acapsular mutants lacked a major capsular antigen and a negatively charged exterior. In genetic analysis, the mutant trait segregated as a Mendelian gene (1:1) when random basidiospores from an outcross were studied, and analysis of products of single meiotic events from outcrossed mutants was likewise consistent with meiotic segregation. Two-factor crosses yielded the expected four classes of progeny, with recombinants equal to parentals. We concluded that chromosomal genes are responsible for synthesis of the cryptococcal capsule and that random basidiospore analysis represents a useful technique for genetic analysis in this species.

Antigens, Fungal↗

Melanin-lacking mutants of Cryptococcus neoformans and their virulence for mice.

A double mutant of Cryptococcus neoformans which lacked the ability to produce melanin (Mel-) on media containing diphenols and failed to grow at 37 degrees C (temperature sensitive, Tem-) was obtained by UV irradiation and subsequent cloning. The mutant showed two lesions in melanogenesis in that it lacked the active transport system for diphenolic compounds and also lacked phenoloxidase. Ultrastructures of the mutant and wild-type cells grown on a medium with or without L-dopa showed that only the wild-type cells grown on L-dopa medium formed a dark cell wall layer, presumably containing melanin. The mutant was crossed with a wild type, and the phenotypes of the progeny were analyzed. The analysis showed no linkage between the mating type and either Mel or Tem loci, but loose linkage was seen between Mel and Tem loci. The progeny, Mel+ Tem+, Mel+ Tem-, Mel- Tem+, and Mel- Tem-, were studied for their virulence in mice. Only Mel+ Tem+ types killed mice with an inoculum of 5 X 10(5) cells within 50 days.

Animals↗

Occurrence of diploid strains of Cryptococcus neoformans.

A mating between niacin and pantothenate auxotrophs of Cryptococcus neoformans gave a few prototrophic progeny that were self-fertile. These were uninuclear but contained twice as much DNA as the parental strains. Segregation of nutritional markers was observed upon sporulation. We conclude that these self-fertile strains are diploids.

Cryptococcus↗

Genetic complementation in Cryptococcus neoformans.

A complementation test was devised for the fungus Cryptococcus neoformans. Complementation was signalled by the growth of prototrophic heterokaryons generated in crosses of the type aB X Ab, where a and b represent any two of the genetic markers ilv1, cys1, cys2, and cys3. The cloned complementing heterokaryons formed characteristic hyphal colonies that contained both hyphae and yeast cells. The heterokaryon-derived yeasts were of three kinds: parental haploids, recombinant haploids, and diploids.

Cloning, Molecular↗

Cloning of 18S and 25S rDNAs from the pathogenic fungus Cryptococcus neoformans.

Cryptococcus neoformans is an important pathogenic fungus that has been classified as a basidiomycete. Little is known of the molecular genetics of this fungal pathogen. To begin such studies, we devised a procedure for extraction of DNA from cryptococci; this method involved the use of the cell wall-active enzyme NovoZym 234. Using cloned rDNA of Saccharomyces cerevisiae as a probe, we identified homologous restriction fragments in a Southern blot of digested C. neoformans DNA. An 8.6-kilobase HindIII fragment that hybridized with the yeast rDNA probe was ligated with the vector pBR322 and cloned into Escherichia coli. When the fragment was used as a probe, it hybridized to the 18S and 25S rRNAs of C. neoformans in Northern (RNA) blots of native and denatured RNA. It bound at high stringency only weakly to the rRNAs of the ascomycete S. cerevisiae. The locations of the genes for 5/5.8S, 18S, and 25S subunits in the cloned fragment were identified with labeled rRNA of these different types.

Blotting, Northern↗

Localization of mannoprotein in Cryptococcus neoformans.

Cell wall mannoprotein of nonpathogenic yeasts is surface exposed, since the cells are agglutinated by concanavalin A and antimannoprotein antibodies. However, nonencapsulated cells of Cryptococcus neoformans were agglutinated neither by concanavalin A nor by antimannoprotein antibodies. Immunogold electron microscopy located most mannoprotein in the inner cell wall. Chemical analysis of purified cell walls showed the lack of mannose, xylose, and galactose residues. These data indicate that cryptococcal mannoprotein recovered from the cultural supernatant is a nonstructural element of the cell wall.

Cell Wall↗

Regulation of melanin production by Cryptococcus neoformans.

Species of Filobasidiella, the agents of cryptococcosis, produced melanin-like pigments within 4 to 48 h with diphenol, aminophenol, and diaminobenzene compounds as substrates. The rate of phenyloxidase activity was found to be regulated by glucose and nitrogen catabolite repression. Increased glucose concentration reduced pigmentation of all serotypes of Filobasidiella, whereas repression by nitrogen sources varied with the strain. Glutamine repressed the phenyloxidases of all isolates except those of serotype B, and (NH4)2SO4 repressed the phenyloxidase of all isolates except that of serotype A. Tyrosine and glycine appeared to be near optimal for phenyloxidase activity but not necessarily for growth of all strain examined. Representatives of serotype C were unique in that their phenyloxidase system was adpative in contrast to the constitutive system found in the other serotypes. No single medium was found to support pigmentation of all strains of Cryptococcus neoformans within a 72-h incubation period; false-negative reactions can occur.

Catechol Oxidase↗

Clinical laboratory evaluation of a screening medium (CN screen) for Cryptococcus neoformans.

Results obtained with 433 yeast isolates indicated that the CN screen medium could be used with confidence for presumptive identification of Cryptococcus neoformans. Of 49 C. neoformans isolates tested, only four stock isolates yielded false-negative results upon initial testing. After repeated subculturing on Sabouraud agar and retesting, these four isolates yielded correct results. Essentially, no false-positive results were obtained, and the data suggested that false-negative results could be eliminated by using fresh isolates of C. neoformans preincubated at 25 degrees C on Sabouraud glucose agar.

Agar↗

Esculin-based medium for isolation and identification of Cryptococcus neoformans.

A simple medium was developed, using esculin as the substrate, for the isolation and identification of Cryptococcus neoformans. C. neoformans produced a brown-black pigment on the medium; all other yeasts produced no pigment or were light yellow. Esculin is beta-glucose-6,7-dihydroxycoumarin. C. neoformans produced pigment because the 6,7-dihydroxycoumarin component of the esculin molecule was converted to a melanin-like pigment. We think the reaction was similar to the conversion of diphenols, aminophenols, and diaminobenzenes to melanin. Laboratory studies with isolates of C. neoformans, C. albidus, C. luteolus, and C. terreus and representatives of the genera Candida, Torulopsis, Geotrichum, and Rhodotorula, plus environmental field studies, demonstrated that over 95% of C. neoformans isolates were correctly identified, whereas all other fungi were excluded. Esculin agar was a sensitive, specific medium for the isolation and identification of C. neoformans. It was inexpensive and had a long storage life.

Cryptococcus↗

Cryptococcus neoformans: pitfalls in diagnosis through evaluation of gram-stained smears of purulent exudates.

The recognition of Cryptococcus neoformans in Gram-stained smears of purulent exudates may be hampered by the presence of the large gelatinous capsule which apparently prevents definitive staining of the yeast-like cells. In such stained preparations, C. neoformans may appear either as round cells with gram-positive granular inclusions impressed upon a pale lavender cytoplasmic background or as gram-negative lipoid bodies.

Cryptococcosis↗

Serotypes of Cryptococcus neoformans strains isolated in Germany.

An examination of 21 strains of Cryptococcus neoformans isolated from environmental and clinical sources in Germany revealed only serotypes A, D, and AD. Of these, 13 isolates were serotype A, 5 isolates were serotype D, and 3 isolates were identified as serotype AD. The absence of serotypes B or C confirms earlier reports from other European countries.

Animals↗

Serotyping Cryptococcus neoformans by immunofluorescence.

Four serotypes of Cryptococcus neoformans designated A, B, C, and D are currently recognized. Although an agglutination test is most often used to serotype C. neoformans in cultures, this test is not appropriate for typing the fungus in fixed tissues. A study to prepare fluorescent-antibody reagents for typing C. neoformans in cultures and to determine whether they can be used to type this fungus in fixed tissues was carried out. Antisera to one strain belonging to each of the four serotypes were prepared in rabbits by intravenous injection of whole Formalin-killed cryptococci. Each antiserum was labeled with fluorescein isothiocyanate and then adsorbed with cells of each of the heterologous serotypes. The adsorbed conjugates were then tested against six serotype A isolates and five isolates of each of the other three serotypes. Labeled serotype A or D antiserum adsorbed with either B or C cells stained the A and D, but not the B or C, isolates. Labeled serotype B antiserum adsorbed with A cells stained the B and C, but not the A or D, isolates. Labeled A antiserum absorbed with D cells differentiated A from D; labeled C antiserum absorbed with B cells differentiated C from B. Of the 21 test isolates, 17 could be serotyped in paraffin sections of tissues of experimentally infected mice.

Animals↗