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[Ultrastructural study of the activity of phospholipids in experimental liver damage induced by isoniazide].

The authors studied the activity of egg-derived phospholipids on the hepatotoxic effect induced in rats by isoniazid (INH) given orally for 20 consecutive days in doses of 25, 50 and 100 mg/kg/day. In the animals treated with the highest dose of INH, a great number of liver cells showed structural and ultrastructural changes. Their hyaloplasm was more electron-dense, the cytoplasmic structure was condensed and collapsed, without apparent endoplasmic reticulum and ribosomes. A very different structural and ultrastructural picture was observed in the animals treated with INH + phospholipids. The structure was quite normal without degenerating cells. There was a greater richness of endoplasmic reticulum, ribosomes and glycogen particles.

Animals↗

Atomic structure of intracellular amorphous calcium phosphate deposits.

The radial distribution function calculated from x-ray diffraction of mineralized cytoplasmic structures isolated from the hepatopancreas of the blue crab (Callinectes sapidus) is very similar to that previously found for synthetic amorphous calcium phosphate. Both types of mineral apparently have only short-range atomic order, represented as a neutral ion cluster of about 10 A in longest dimension, whose probable composition is expressed by the formula Ca9(PO4)6. The minor differences observed are attributed to the presence in the biological mineral of significant amounts of Mg-2+ and ATP. Synthetic amorphous calcium phosphate in contact with a solution containing an amount of ATP equivalent to that of the biological mineral failed to undergo conversion to the thermodynamically more stable hydroxyapatite. The amorphous calcium phosphate of the cytoplasmic mineral granules is similarly stable, and does not undergo conversion to hydroxyapatite, presumably owing to the presence of ATP and Mg-2+, known in inhibitors of the conversion process. The physiological implications of mineral deposits consisting of stabilized calcium phosphate ion clusters are discussed.

Animals↗

Non-A/non-B hepatitis in experimentally infected chimpanzees: cross-challenge and electron microscopic studies.

Inoculation of eight chimpanzees with factor VIII, factor IX, or "H" strain plasma resulted in enzymatic and histopathologic evidence of non-A/non-B hepatitis in all eight animals. Challenge of two chimpanzees convalescent from factor VIII-induced disease with either factor IX or "H" strain plasma resulted in non-A/non-B hepatitis only in the animal inoculated with factor IX materials. Reciprocal cross-challenge of a chimpanzee convalescent from factor IX-induced disease with factor VIII also produced unequivocal enzymatic and histopathologic evidence of non-A/non-B hepatitis. Cross-challenge of a chimpanzee convalescent from "H" strain-induced non-A/non-B hepatitis with factor VII did not cause a second bout of non-A/non-B hepatitis. These findings suggest the factor VIII materials and "H" strain plasma used in these studies share a common etiologic agent (or agents), but that factor VIII and factor IX may contain two distinct agents. Electron microscopic (EM) examination of thin-sectioned, acute-phase liver biopsies from all but one of the chimpanzees receiving the primary inocula revealed the presence of abnormal hepatocyte cytoplasmic structures previously shown to be associated with non-A/non-B hepatitis. Crystalline structure containing 25 to 30 nm particles were visualized by EM in the cytoplasm of endothelial or Kupffer cells in acute-phase liver biopsies obtained from three chimpanzees inoculated with either factor VIII materials or "H" strain plasma.

Animals↗

Ultrastructure of matrix vesicles in chick growth plate as revealed by quick freezing and freeze substitution.

The ultrastructure of extracellular membrane-bound matrix vesicles (MVs), their biogenesis, and the surrounding matrix in chick tibial growth plate were studied after quick freezing and freeze substitution (FS) in an organic solvent. There were several notable differences in the ultrastructural preservation of cartilage when FS was used as compared with conventional fixation. The ultrastructural appearance of MVs after FS was extremely variable. Within the MVs, intravesicular filaments, amorphous material, and membrane-associated undercoat structures were observed. Intravesicular filaments, similar in diameter to microfilaments seen in the cytoplasm, were attached to the inside of MV membranes. This observation indicates the similarity of MV membranes and the plasma membrane. In some MVs in the proliferative zone an electron-dense material was present along the inner side of the MV membrane. In the prehypertrophic zone, crystalline material often appeared within the electron-dense material, which may be a precursor form of hydroxyapatite. The earliest crystals observed were in MVs but not in the extracellular matrix. Regarding MV formation, in addition to budding from cell surfaces and to cellular disintegration, this study also indicates that a sequential process of extrusion of preformed cytoplasmic structures may occur. Also, small MVs measuring 25-40 nm seem to arise from the disruption of large MVs. This is a previously unreported observation on MV biogenesis. FS preserves proteoglycans in the cartilage matrix as a fine, filamentous network. Initial extracellular calcification was not associated with this network.

Animals↗

Ultrastructure of cultured hepatocytes from fat- and cholesterol-fed rats.

Hepatocytes were enzymatically dissociated from the livers of rats maintained for eight weeks on diets of (1) standard rat chow, (2) chow plus 20% olive oil, and (3) chow plus 20% olive oil and 2% cholesterol. Cells were cultured for up to one week and characterized by phase contrast light microscopy and transmission electron microscopy. Cultured hepatocytes derived from the cholesterol-fed rats (3) were distinguishable by phase contrast light microscopy from those derived from chow-or chow plus olive oil-fed (1 and 2) cells, since they contained numerous refractile cytoplasmic structures. Transmission electron microscopy demonstrated that these structures were lipid droplets. Hepatocytes were observed to accumulate non-membrane bound cytoplasmic lipid droplets in the order control-fed less than olive oil-fed less than cholesterol-fed. In addition to varying quantitatively among the feeding groups, lipid droplets also varied in size and osmiophilia as a function of the feeding regimen. Other than the differential accumulation of lipid droplets, the ultrastructure of the cultured hepatocytes was similar among cells derived from the various feeding groups.

Animals↗

Structural changes on Entamoeba histolytica trophozoites after cryopreservation in liquid nitrogen.

Trophozoites of Entamoeba histolytica cultures which had been deep-frozen in the presence of 5% DMSO, along with untreated cells and cells treated with DMSO (5%), were examined for fine-structural changes. After deep-freezing in liquid nitrogen only a few amoebae exhibited normal nuclear and cytoplasmic structure. One frequently observed but unspecific finding pertaining to recovered cells is the separation of the cytoplasm into large vacuolated (coarse-granular) and electron-optically fine-granular (hyaline) zones. The glycogen which normally lies in the cytoplasm is always eluted. In many cases numerous short RNP helices are scattered unevenly in the vesicular plasma, but they are also found in larger masses adjacent to the membranes of still intact and already damaged nuclei. Moderately damaged nuclei have a poorly folded membrane and their chromatin is markedly denatured. More heavily damaged nuclei have a membrane which has partly fibrillated or ruptured and then formed conspicuous folds, where the nuclear membrane has ruptured nucleoplasmic remnants of chromatin and button-like bodies appear to pour into the surrounding cytoplasm. The final destruction of the cell is marked by coalescing autolytic zones, first in the vacuolated and later in the fine-granular cytoplasm. Finally only remnants of the nuclear membrane and of the membranes of numerous vacuoles remain. It is assumed that most of the changes in the cytoplasm are of a secondary nature and are caused by the early functional disturbance of the nucleus.

Animals↗

Neuronal differentiation in the rat hippocampus involves a stage-specific reorganization of subnuclear structure both in vivo and in vitro.

Pyramidal neurons from the hippocampus undergo a well characterized programme of differentiation in vitro involving five distinct stages (1-5). While some important aspects of the dynamic organization of cell cytoplasmic structure that underlie neuronal polarization have been elucidated, little is known about corresponding changes in nuclear organization. Here we identify major changes affecting nuclear structure and gene expression during late stages of differentiation. At stage 4 a sustained increase in global transcriptional activity occurs. This is followed at stage 5 by proliferation of coiled bodies, i.e. subnuclear organelles containing splicing factors, which form a novel domain around the nucleus that we refer to as the rosette. Both the morphology and timing of rosette formation are identical in neurons in vitro and in situ in the developing hippocampus in rat brain. Long-term synaptic inhibition in vitro or growth at low density does not prevent either nuclear reorganization, enhanced transcriptional activity or the formation of pre-synaptic specializations. These data indicate that stage-specific changes in nuclear structure and function, similar to distinct rearrangements of cytoplasmic components, are pre-programmed aspects of the neuronal differentiation pathway in the hippocampus.

Animals↗

Formation and involution of Mallory bodies ("alcoholic hyalin") in murine and human liver revealed by immunofluorescence microscopy with antibodies to prekeratin.

Antibodies raised against prekeratin intensely and specifically stain, in immunofluorescence microscopy, Mallory bodies ("alcoholic hyalin") present in livers of human alcoholics and griseofulyin-treated mice. The high sensitivity of this method allows the identification of small distinct cytoplasmic structures that are observed during early stages of Mallory body formation, especially frequent in the perinuclear cytoplasm, as well as during stages of Mallory body disintegration and disappearance, such as after withdrawal of the drug. In the latter situation, the prekeratin-containing small particles exhibit a characteristic pattern of arrangement in the hepatocyte periphery. Electron microscopy illustrates that such small bodies are heap-like aggregates of typical Mallory body filaments. Immunofluorescence studies with antibodies to isolated prekeratin polypeptides from bovine hoof or muzzle epidermis show that Mallory body filaments, in particular those in human liver, are immunologically more closely related to prekeratin of tonofilaments from living epidermal cells (stratum spinosum). The data indicate that Mallory bodies contain a pathologic form of prekeratin-like material. They also suggest that disorders of cytoskeletal structures of the intermediate-sized filament class are associated with specific diseases and can be visualized and characterized by immunofluorescence microscopy by using antibodies to constitutive proteins of such filaments.

Animals↗

Ten-nanometer filaments and mitosis: maintenance of structural continuity in dividing endothelial cells.

By indirect immunofluorescence the behavior of the 10-nm filaments was studied at various stages of mitosis in guinea pig vascular endothelial cells. Interphase cells contain a ring of 10-nm filaments that encircles the nucleus and is maintained in a plane parallel to the substrate. During prophase and metaphase the cells round up and the 10-nm filament ring becomes wavy though still a closed structure. As anaphase progresses the ring then elongates into a rectangle that contains the spindle apparatus and chromosomes. In late telophase, cytokinesis cleaves the 10-nm filaments into crescents at the site of the contractile ring. These crescents then close into rings in the daughter cells. If cytokinesis is inhibited with 5 microgram of cytochalasin B per ml, then cleavage of the 10-nm filaments is blocked and the daughter nuclei remain surrounded by the parent ring. At no point during mitosis does the array of 10-nm filaments undergo major disassembly. These results indicate that, in contrast to the other major cytoplasmic structures, ventral microfilament bundles and cytoplasmic microtubules, which disassemble and reassemble during mitosis, 10-nm filaments remain intact throughout this process. The possibility is discussed that these filaments may function in transport of organelles and structural proteins, and provide the daughter cells with topological information about placement and assembly of these elements within the microtrabecular lattice.

Animals↗

Solution structure of the cytoplasmic domain of the human immunodeficiency virus type 1 encoded virus protein U (Vpu).

The HIV-1-specific Vpu protein is an 81 amino acid class I integral membrane phosphoprotein that induces degradation of the virus receptor CD4 in the endoplasmic reticulum and enhances the release of virus particles from infected cells. Vpu is of amphipathic nature and consists of a hydrophobic N-terminal membrane anchor proximal to a polar C-terminal cytoplasmic domain. In our recent work, focussed on the structural analysis of the cytoplasmic tail, we established an alpha-helix-flexible-alpha-helix-turn model. Now we present the experimental solution structure of the Vpu cytoplasmic domain which has been elucidated in aqueous 50% trifluoroethanol solution by 2D 1H NMR spectroscopy, and restrained molecular dynamics and energy minimization calculations. Under these conditions the peptide, Vpu32-81, is predominantly monomeric and adopts a well defined helix-interconnection-helix-turn conformation, in which the four regions are bounded by residues 37-51, 52-56, 57-72 and 73-78. The presence of the cis isomer of Pro-75 manifests itself as a doubling of cross peaks of neighbouring residues in the 2D spectra. A related variant peptide, Vpum32-81, in which the Vpu-phosphoacceptor sites Ser52 and Ser56 were exchanged for Asn, adopts a very similar structure and, taken together, provides evidence that the second helix and the turn form a comparatively rigid region. Both helices are amphipathic in character, but show different charge distributions. In general the cytoplasmic region is N-terminally positively charged, passes through a region of alternating charges in helix 1 and then becomes negatively charged. The flexibility of the interconnection permits orientational freedom of the two helices. The motif found here is the first experimentally refined solution structure of the cytoplasmic domain of Vpu, and it is conceivable that these alpha-helices are important for a previously defined physical interaction with an alpha-helical Vpu-responsive element located within the cytoplasmic tail of CD4.

Amino Acid Sequence↗

Secondary structure of eukaryotic cytoplasmic 5S ribosomal RNA.

A five-helix secondary structural model is proposed for eukaryotic cytoplasmic 5S rRNA. All available sequence data are consistent with this model including those from Chlorella 5S rRNA whose sequence is revised by data included here. Various architectural features of eukaryotic 5S rRNA are summarized in terms of this secondary structural model. It is observed that previous failures to identify universal models for 5S rRNA secondary structure stem from significant differences in architecture between eukaryotic cytoplasmic and eubacterial 5S rRNAs. The usual four-helix model for eubacterial 5S rRNA secondary structure nevertheless does share several structural features with the five-helix model presented here for cytoplasmic 5S rRNA. It is thus likely that these two classes of 5S rRNA are the result of evolutionary divergence rather than convergence.

Animals↗

Multifractality in intracellular enzymatic reactions.

Enzymatic kinetics adjust well to the Michaelis-Menten paradigm in homogeneous media with dilute, perfectly mixed reactants. These conditions are quite different from the highly structured cell plasm, so applications of the classic kinetics theory to this environment are rather limited. Cytoplasmic structure produces molecular crowding and anomalous diffusion of substances, modifying the mass action kinetic laws. The reaction coefficients are no longer constant but time-variant, as stated in the fractal kinetics theory. Fractal kinetics assumes that enzymatic reactions on such heterogeneous media occur within a non-Euclidian space characterized by a certain fractal dimension, this fractal dimension gives the dependence on time of the kinetic coefficients. In this work, stochastic simulations of enzymatic reactions under molecular crowding have been completed, and kinetic coefficients for the reactions, including the Michaelis-Menten parameter KM, were calculated. The simulations results led us to confirm the time dependence of michaelian kinetic parameter for the enzymatic catalysis. Besides, other chaos related phenomena were pointed out from the obtained KM time series, such as the emergence of strange attractors and multifractality.

Animals↗

Sequential ultrastructural changes in vinblastine-induced cell death of secretory ameloblasts of rat incisors in vivo.

Secretory ameloblasts in the continuously growing incisors of the rat were used to study the sequential changes in a mature cell type degenerating after administration of vinblastine at a dosage of 2 mg per kg body weight. In less than half an hour nearly all microtubules vanished. This was succeeded by progressive displacement of the nuclei and disorganization of the cytoplasmic structure. After 1 to 3 hours attached and free polyribosomes were converted into monoribosomes. All these cytoplasmic changes were seen in viable as well as in necrotic cell. Between 5 and 61/2 hours after application of the drug degeneration of nuclei began; these changes from the outset indicated that a particular ameloblast had been drawn into a sequence of events which would ultimately lead to its death. The progressive alterations of the nucleus and cytoplasm of the degenerating cells and the concurrent fragmentation and elimination of the fragments are described.

Ameloblasts↗

Ultrastructure and function of interdigitating cells in the guinea pig thymus.

Electron micrsocopic investigation of the thymus of normal guinea pigs of both sexes, approximately 3 months of age, have shown that the organ contains at least two types of non-lymphoid cells: epithelial reticulum cells and so-called interdigitating cells. The latter have been observed in the inner part of the cortex and are morphologically characterized by an irregularly shaped or kidney-shaped nucleus, many tubulovesicular cytoplasmic structures accumulated mostly within the cytocentre as well as by finger-like protrusions of the cytoplasm. These interdigitating cells are in close contant with neighbouring lymphocytes with partly destroyed pycnotic nucleus.

Animals↗

[The morphofunctional characteristics of the interstitial endocrinocytes (Leydig cells) of the testes in vertebrates under conditions of seasonal change in reproductive activity].

By means of light and electron microscopy the structural organization of Leydig cells was studied in Rana ridibunda, Lacerta agilis, Columba livia in the periods of reproductive activity and reproductive break. The dynamics of structural changes of some parameters of the testicles (interstitial tissue square, endocrinocytes number, state of the cytoplasm, structural components and the volume of nuclei) was shown in the process of the reproductive activity seasonal changes. Nuclear volume and the degree of the agranular endoplasmic reticulum development were found to correlate. Clear dependence between the Leydig cells functional activity and reproductive activity in lizards and pigeons was demonstrated. This dependence is slightly expressed in frog.

Animals↗

Improved detection of virus-specific IgM antibodies. Elimination of non-specific IgM binding.

A non-specific reaction between human IgM and cytoplasmic structures of virus infected cells can often be observed if MgM antibodies to virus antigens are detected by indirect immunofluorescence or by immuno enzyme assays. Formaldehyde selectively inactivates the cytoplasmic receptors for human IgM without affecting the virus structural proteins. Alternatively, receptor-free antigens can be obtained by isolation of nuclei from virus infected cells. Due to reduced background, a more specific and more sensitive detection of IgM antibodies to Epstein-Barr virus, cytomegalovirus or central European encephalitis virus is possible.

Antibodies, Viral↗