Ultrastructure of the hyphae of Phytophthora palmivora with special reference to intrahyphal hyphae and vesicular elements.
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We previously showed that unopsonized Candida albicans hyphae stimulated a delayed rise in the putative neutrophil second messengers Ca2+ and inositol 1,4,5-trisphosphate and subsequent O2- release, as compared with opsonized hyphae or zymosan. Therefore, cytoskeletal and degranulation temporal responses to these stimuli were examined. Unopsonized zymosan elicited no neutrophil responses under the experimental condition used. Neutrophil actin polymerization (quantitated by fluorescent measurements of NBD phallacidin) was rapid after stimulation by opsonized hyphae or zymosan (peaking at 1 and 2 min, respectively). This corresponded to observed changes in microscopic actin polymerization, measured with rhodamine phalloidin, which progressed from initially diffuse to collarlike to cylinderlike staining patterns surrounding the hyphae. Compared with opsonized hyphae, unopsonized hyphae resulted in a delayed appearance of the last two visible patterns (P less than 0.05) and in quantitative actin polymerization despite similarly rapid initial contact and spreading over the hyphae by neutrophils. Unlike other neutrophil responses, degranulation did not follow the delayed patterns of responses to stimulation with unopsonized hyphae. In the absence of the release of the cytoplasmic marker lactate dehydrogenase, the release of beta-glucuronidase, an azurophil granule marker, gradually and progressively rose in response to all of the stimuli but unopsonized zymosan. The low but significant levels observed were within a range consistent with published results for degranulation responses to particulate stimuli without cytochalasin B. A quantitative immunoassay of lactoferrin, a specific granule marker, detected no release into supernatants, and immunofluorescent staining indicated concomitant depletion of lactoferrin from neutrophil granules and binding to hyphal and neutrophil surfaces after stimulation by unopsonized hyphae. Thus, the delayed actin polymerization response to unopsonized hyphae occurred subsequent to neutrophil attachment and spreading and resembled the temporal sequence of other neutrophil responses linked to the respiratory burst. In contrast, the degranulation responses to all stimuli appeared to begin and progress gradually after observed attachment and spreading of the neutrophil over hyphal surfaces without a clear temporal relationship to rises in cytoplasmic Ca2+ or F-actin. In addition, the avid binding of released lactoferrin to cell surfaces eliminates its value as a quantitative marker of enzyme release but raises the possibility that it might participate in fungicidal activity.(ABSTRACT TRUNCATED AT 400 WORDS)
We previously noted differences between neutrophil responses to unopsonized Candida albicans hyphae and responses to other particulate stimuli such as opsonized hyphae or zymosan; these differences include delayed rises in cytosolic calcium [( Ca2+]i), 1,4,5-inositol trisphosphate, and superoxide release and the total absence of early membrane depolarization. Respiratory burst stimulation is required for killing of C. albicans hyphae. Since an early rise in [Ca2+]i may act as a second messenger for burst activation by most agonists, we chelated (Ca2+)i and extracellular Ca2+ [( Ca2+)e] to compare requirements for superoxide responses to hyphae and other stimuli. Intracellular chelation, which ablated early [Ca2+]i rises, eliminated the fMet-Leu-Phe-induced respiratory burst and profoundly reduced that response to opsonized zymosan (by 96.7%), but chelation of both (Ca2+)i and (Ca2+)e only partially inhibited responses to opsonized and unopsonized hyphae (60.5 and 23.3%, respectively; the latter exceeded absolute responses evoked by opsonized zymosan, a 12-fold-more-potent stimulus for unchelated cells). Simultaneous (Ca2+)i and (Ca2+)e chelation further decreased superoxide responses to opsonized zymosan and hyphae (99.4 and 90.4%, respectively) but not to unopsonized hyphae (26.7% inhibition). Though both ingestible (zymosan) and uningestible (hyphae) opsonized particulate stimuli elicited reduced but significant respiratory bursts without early [Ca2+]i rises, the greater superoxide responses and sensitivity to chelation with opsonized zymosan suggest important differences in initiation and/or regulation of responses to these particulate stimuli. In contrast, the respiratory burst elicited by unopsonized hyphae appeared largely Ca2+ independent. If different events mediate neutrophil activation by opsonized and unopsonized hyphae, candidacidal activity in vivo may vary under divergent conditions with specific localized sites of infection.
A cell observation chamber was designed to perform continuous photomicroscopic observations of hyphal anastomosis and the origin of intra-hyphal hyphae in Trichophyton terrestre and T. rubrum. These data were correlated with ultrastructural features of intra-hyphal hyphae. Hyphal fusions occurred commonly in either species of Trichophyton when incubated alone. In T. terrestre, empty phyphal segments adjoined by live units were invaded at the septa from both directions by new hyphal ingrowth. Continuous observations revealed that the intra-hyphal hyphae subsequently anastomosed via a lateral fusion peg. Similar intra-hyphal hyphae were shown in T. rubrum. Electron microscopic studies revealed ascomycetous septa in both conventional hyphae and intra-hyphal hyphae. For the latter, the cytoplasm and wall of the inner hypha were bounded by cytoplasmic organelles and another cell wall of the outer hypha.
Using a metabolic test of hyphal viability, the interaction between neutrophils and Aspergillus hyphae was investigated over a broad range of hyphae-to-neutrophil ratios. Normal neutrophils were found to damage hyphae whereas neutrophils from patients with both chronic granulomatous disease (CGD) and myeloperoxidase (MPO) deficiency did not. Further, both azide and catalase + superoxide dismutase inhibited the ability of normal neutrophils to damage hyphae, suggesting that this damage is mediated by products of the respiratory burst and by the MPO-halide system. Also, mixtures of small numbers of normal neutrophils with larger numbers of CGD neutrophils (range, 1:5 to 1:15) damaged hyphae more efficiently than either population of cells alone. Further, mixtures of CGD and MPO-deficient neutrophils, neither of which alone could efficiently damage hyphae, were able to damage the hyphae almost as well as a comparable number of normal neutrophils. These data demonstrate that intact neutrophils can cooperate to synergistically damage Aspergillus hyphae, possibly by extracellular mixing of hydrogen peroxide and MPO.
The synchrony of nuclear replication in individual, multinucleate hyphae of Aspergillus nidulans has been investigated. Samples were taken from cultures of germinating conidiospores, and the relative frequency of hyphae containing two to eight nuclei was determined. Because the conidiospores are mononucleate, complete synchrony will yield populations of hyphae containing only 2(n) nuclei, n being the number of doublings after germination. The appearance of hyphae with total numbers of nuclei other than 2(n) will indicate lack of synchrony. The relative frequency of hyphae not having 2(n) nuclei will depend on the degree of synchrony in the individual hyphae; numerical aspects of this relation are discussed. In two different strains, replication of the nuclei in any one hypha was highly synchronized when the dry weight doubling time was 1.4 to 1.8 hr. As the doubling time was made longer by changing the nitrogen or carbon source, synchrony was progressively lost. At the slowest growth rate tested, the interval between the division of the fastest and the slowest nucleus equaled 48% of the dry weight doubling time. The active replication of some nuclei in a hypha where other nuclei were resting suggested that nuclear duplication in this eukaryotic organism may be controlled by specific initiators.
Previous experiments suggest the critical central role of the neutrophil (PMN) respiratory burst in the prevention and containment of disseminated candidiasis. A rise in cytosolic free calcium concentrations ([Ca2+]i) has been documented as an early event after PMN stimulation which is involved in the subsequent genesis of microbicidal and inflammatory respiratory burst products. [Ca2+]i were therefore determined in individual PMN, loaded with the fluorescent calcium probe fura-2 as they attached to and spread over serum-opsonized or unopsonized Candida albicans hyphae, particles that are too big to be completely ingested. After contact between hyphae and PMN, the PMN rapidly spread over hyphal surfaces. Although both opsonized and unopsonized hyphae stimulated similar magnitudes of peak median increases in PMN [Ca2+]i, the kinetics of responses differed; median [Ca2+]i peaked within 1 min after contact with opsonized hyphae versus 4 min after contact with unopsonized hyphae. Moreover, a detectable calcium transient did not invariably follow contact and spreading of each individual PMN over a hyphal surface. In contrast to patterns seen after stimulation of PMN with opsonized zymosan, in which [Ca2+]i is greatest in the periphagosomal region, there was a more uniform distribution throughout the cytoplasm in PMN stimulated with the noningestable hyphae. These alterations in the early patterns and timing of PMN stimulation may reflect analogous differences in subsequent events which control the efficiency and specificity of microbicidal responses to uningestible hyphae and which also determine whether host tissues are damaged by the generation of toxic PMN activation products.
Cells of Candida albicans strain WO-1 and related strains switch frequently and reversibly between a white-colony-forming unit (white phase) and a gray-colony-forming unit (opaque phase). Cells in the budding white phase exhibit the usual smooth round phenotype observed in other C. albicans strains, but cells in the budding opaque phase exhibit a unique elongate shape with surface pimples or protrusions. In this study, it was demonstrated that opaque cells formed hyphae at low to negligible levels in suspension cultures but could be induced to form hyphae at high levels when anchored to the chamber wall of a perfusion chamber or to a monolayer of human skin epithelial cells. Variability in the proportion of hyphae formed between experiments appeared to be due to variability between individual opaque clones. The hyphae formed by opaque cells were morphologically identical to hyphae formed by white cells (i.e., they were devoid of pimples or protrusions and exhibited the same shape and septal locations). They also did not stain with an opaque-specific antiserum which differentially stained opaque budding cells in a punctate fashion. However, when stimulated to form buds, opaque hyphae formed opaque-shaped daughter buds, demonstrating that although they are morphologically similar to hyphae formed by white cells, they are genetically opaque.
Intracellular hyphae and vesicles in mycorrhizal roots of yellow poplar were examined by electron microscopy. An investing layer of host wall material and cytoplasm enclosed the endophyte within the cells. Young developing hyphae contained abundant cytoplasm and few vacuoles. As hyphae matured, they became highly vacuolated and accumulated carbohydrate (glycogen) and lipid reserves. Mature vesicles were engorged with lipid droplets, possessed a trilaminate wall and were also enclosed by host wall material and cytoplasm. Compared with uninfected cells, infected cortical cells showed an increase in cytoplasmic volume, enlarged nuclei, and a reduction of starch reserves. Host nuclei were always proximal to the hyphae during hyphal development and deterioration. While other cytoplasmic components of infected and uninfected cells were comparable large electron-dense bodies occurred in vacuoles of most cells containing hyphae. Deterioration of intracellular hyphae occurred throughout the samples examined. Septa separated functional and degenerating portions of the hyphae. Hyphal deterioration involved degeneration and ultimate disappearance of fungal cytoplasm as well as collapse of hyphal walls. Based on these observations, the authors hypothesize that deterioration of the endophyte may release significant quantities of mineral nutrients, via hyphal contents, which are absorbed by the host.
Nonopsonized Candida hyphae elicit from human neutrophils a transient rise in cytosolic calcium concentrations and an oxidative burst without a detectable change in membrane potential. To determine if the signal-transduction pathway used by these organisms is mediated by guanine nucleotide-binding proteins (GNPs), we examined the functional responsiveness of neutrophils pretreated with pertussis toxin (PT). In response to serum-opsonized hyphae or zymosan, the rise in cytosolic calcium, membrane depolarization, and the respiratory burst were only partially abrogated. The transient rise in calcium induced by unopsonized hyphae was, however, completely eliminated in PT-treated neutrophils. Despite total abrogation of the calcium response, PT-treated cells could still mount a respiratory burst in response to these nonopsonized hyphae. Thus, neutrophil signaling by both serum-opsonized particles and nonopsonized hyphae is only partially mediated by PT-sensitive GNPs. Furthermore, the ability of unopsonized hyphae to elicit a respiratory burst without a calcium response suggests these events are separable and confirms the versatility of these organisms as probes for investigating neutrophil activation.
Through guanosine triphosphate (GTP) regulatory proteins are crucial components in signal transduction by most soluble and opsonized particulate stimuli, previous data suggest that neutrophil (PMNL) activation by unopsonized hyphae differs. Most of the PMNL superoxide response evoked by unopsonized hyphae was independent of both Ca++ ions and pertussis toxin-sensitive guanine nucleotide regulatory proteins. To determine whether related regulatory proteins were involved in PMNL activation by unopsonized hyphae, separated PMNL plasma membranes were incubated with GTP and a poorly hydrolyzed, radiolabeled GTP analogue, 5'-guanylylimido-diphosphate, then stimulated. Particulate Candida albicans hyphae and soluble chemotactic peptide induced comparable guanine nucleotide release. In contrast, while unopsonized hyphae caused release, it was considerably delayed, though opsonization discernibly affected neither PMNL attachment nor spreading over hyphal surfaces. This paralleled earlier observations of other delayed responses by intact PMNL to unopsonized hyphae: phospholipase C activation, the rise in cytosolic free Ca++ ions, and actin polymerization.
During the recently completed double-blind, placebo-controlled, randomized trial of recombinant interferon-gamma (rIFN-gamma) therapy in chronic granulomatous disease (CGD), a metabolic assay of neutrophil damage to Aspergillus fumigatus hyphae was used to monitor neutrophil function before and during therapy. In this assay, 5 x 10(4) conidia that had germinated into hyphae were exposed to 5 x 10(5), 15 x 10(5), or 50 x 10(5) CGD neutrophils. By analysis of variance, neutrophils from patients on rIFN-gamma were found to produce significantly more damage to hyphae than those from the placebo group (P less than .01). In subgroup analysis, this effect was best seen in the hyphae exposed to 50 x 10(5) CGD neutrophils, where neutrophils from patients receiving rIFN-gamma produced significantly more damage to the hyphae than those from the placebo group (P less than .05). In vivo rIFN-gamma therapy improves the ability of CGD neutrophils to damage Aspergillus fumigatus hyphae in an in vitro assay.
Stationary phase cells of Candida albicans can form either a bud or a hypha, depending upon the pH of the medium into which they are released. At low pH, cells form an ellipsoidal bud and at high pH, cells form an elongated hypha. By staining cells with rhodamine-conjugated phalloidin, we have compared the dynamics of actin localization during the formation of buds and hyphae. Before evagination, actin granules were distributed throughout the cytoplasmic cortex in both budding and hypha-forming cells. Just before evagination, actin granules clustered at the site of evagination, then filled the early evagination in both budding and hypha-forming cells. With continued bud growth, the actin granules then redistributed throughout the cytoplasmic cortex. In marked contrast, with continued hyphal growth, the majority of actin granules clustered at the hyphal apex. This distinct difference in actin granule localization may be related to the distinct differences in the expansion zones of the cell wall recently demonstrated between growing buds and hyphae. The spatial and temporal dynamics of the large neck actin granules and of actin fibres are also described.
Changes in the fine structure of the hyphae were studied in the course of spore formation by Micropolyspora fascifera. Sporulating hyphae differ from vegetative hyphae by a less dense cytoplasm, a large zone of the nucleoid with distinctly fibrillar structure, and a thin layerless cell wall. Spore formation is accompanied with autolysis of the vegetative hyphae, which consists in vacuolization of the hyphae and appearance of a large number of tubular membrane structures within them. Spores are formed, like in Actinomyces spp., by simultaneous division of the hyphae with septa; the structure of sporulating septa is similar to that of the fragmenting mycelium in Nocardia; the structure of mature spores is similar to that in some Actinomyces spp. Therefore, M. fascifera differs from other Micropolyspora spp. not only by the chemical composition of the cells (the presence of nocardiomicolic acids) but also by their structure. Taxonomic position of the species is discussed.
Male strains of the water mold Achlya ambisexualis produce antheridial hyphae in response to the steroid hormone antheridiol. The antheridial hypha is postulated to be initiated through a localized wall softening with the enzyme cellulase. Freeze-etch studies of hormone-treated hyphae were conducted to determine if aggregates of vesicles are induced at the location of new antheridial hyphae. Localized aggregates of vesicles were found in conjunction with areas of wall thinning. These data suggest that the processes of vesiculation and secretion provide a mechanism for concentration of cellulase at the site of initiation of antheridial hyphae.
Activated peritoneal macrophages obtained from Listeria-immune mice were demonstrated to kill nonphagocytosable Candida albicans hyphae by contact-mediated mechanisms in a serum-free synthetic medium. The actual killing of hyphae was confirmed by a microculture technique utilizing the dimorphic nature of the fungus. The most efficient candidacidal activity was demonstrated by the macrophages obtained from mice first immunized with live Listeria monocytogenes and then elicited with heat-killed L. monocytogenes cells. Resident macrophages from control mice showed only low candidacidal activity against C. albicans hyphae and yeast cells. Direct physical contact appeared to be required for macrophages to efficiently kill oversized C. albicans hyphae. Efficient in vitro killing of hyphae also required relatively high effector/target cell ratios (50 or higher). The contact-mediated candidacidal activity of activated macrophages was not significantly abrogated by oxygen-radical scavengers, suggesting the involvement of oxygen-independent mechanisms. These results suggest that the enhanced nonspecific immunity to candidiasis seen in Listeria-immune hosts can be attributed, at least in part, to activated fungicidal macrophages. The ability of macrophages to detect and destroy both yeast and hyphal C. albicans cells is clearly an important element of the host defense against candidiasis.
This paper describes the results of an ultrastructural study on the subcellular events occurring in nematode-infecting (trophic) hyphae of the nematophagous fungus Arthrobotrys oligospora. In early stages of the infection process (30 min-4 h), the infection bulb and developing trophic hyphae are characterized by a highly proliferated endoplasmic reticulum (ER). Its membranes often appeared vesiculated and occur in close association with the cell membrane of the cells. Upon further invasion of the nematode, lipid droplets developed in the trophic hyphae; these droplets were first observed 4-5 h after the infection but were abundantly present after 24-36 h. Along with the formation of lipid droplets proliferation of microbodies was observed. These organeles were characterized by the presence of catalase and thiolase and were frequently observed in close association with the lipid droplets. Later on the lipid droplets disappeared. During this period new vegetative mycelium developed from the trap that had originally captured the nematode. Our results suggest that part of the nutrients released from the nematode are first converted into lipids by the fungus which in turn are degraded via the beta-oxidation pathway and further metabolized to support growth of new vegetative hyphae.
A method to immobilize fungal hyphae onto the wells of 96-well microplates for use in an in-direct ELISA to screen for antifungal antibodies in sera and cell culture supernatants is described. The hyphae from three genera (Penicillium, Eurotium and Fusarium) were successfully attached by overnight drying onto wells precoated with poly-L-lysine and glutaraldehyde. Microscopy revealed that the hyphae remained attached to the wells throughout the ELISA and antiserum titrations showed that the attached hyphae were uniformly coated and remained reactive. Background absorbances were low and the plates could be stored at -20 degrees C without loss of reactivity.