Serum from an atopic patient undergoing a hyposensitization therapy to birch pollen allergens was used to carry out immunocytochemical mapping of specific IgE/IgG binding sites within ultrathin sections of birch pollen grains. There was a distinct rise in the density of specific IgG labelling in the course of therapy, whereas the density of IgE labelling remained fairly constant. However, the patterns of IgG and IgE binding in the pollen grain did not completely coincide since there was only IgE binding to certain pollen structures such as the apertural region. If the widely accepted concept of specific antibodies as ‘blocking antibodies’ is taken as a basis, the success of therapy must be questioned in this case because no IgG antibodies were formed to some of the allergens localized in the pollen grain and relevant to this patient. Very probably this result must be attributed to an incomplete pollen extract used in hyposensitization therapy. The results of the biochemical measurements (RAST, ELISA) agreed well with the immunocytochemical observations.
Pollen from birch trees (Betula pendula) was fixed in paraformaldehyde with or without the addition of 0.5% cetylpyridinium chloride, dehydrated and embedded in Lowicryl K4M in the cold. Ultrathin sections were incubated using the following sequence of antibodies and antisera: IgE-containing serum from an atopic human individual allergic to birch pollen allergens, rabbit anti-human IgE antibodies, and colloidal gold-labelled goat anti-rabbit antibodies. Controls were performed by replacing the specific human antiserum by serum from an atopic person with a similar level of IgE antibodies directed against allergens other than birch pollen allergens, or by omitting the human antiserum or the anti-IgE antibody or both. In test experiments, there was a dense specific labelling of the exine and the cytoplasmic matrix of the pollen grain. There was moderate labelling of the apertural regions (poral plugs). There was no labelling of the intine. In pollen grains fixed with the addition of cetylpyridinium chloride, an electron-dense surface coat was precipitated on the outside of the pollen wall. This surface material also remained completely unlabelled.
Ultra-thin sections of vegetative tissues from birch (anthers and leaves) were labeled for pollen antigens and allergens using a commercial rabbit IgG antibody preparation directed against birch pollen antigens and allergens. Antibody binding sites were visualized using the protein A-gold technique. Specific labeling occurred in anther tissue (tape-tum cells, anther wall cells) as well as in the birch leaf (assimilation parenchyma). In both types of tissue, antigens and allergens were detected throughout the living protoplast (including cell organelles such as nuclei, mitochondria, and plastids). The cellulose cell walls were always free from anti-birch-pollen IgG-binding sites. The immunological controls (normal rabbit IgG) showed a low degree of nonspecific labeling. In plant tissues belonging to genera quite different from birch (tulip anther, rhododendron leaves), after incubation with the specific IgG weak labeling was observed. The immunological basis for these results is discussed.
Using serum from human atopic individuals with a sufficiently high titre of IgE and IgG antibodies to birchor hazel-pollen allergens and antigens, the localization of IgE binding sites in birch- and hazel-pollen grain was determined by pre- and post-embedding electron microscopic immunoautoradiography with 125J-anti-IgE, whereas the IgG binding sites were localized in ultrathin sections of birch-pollen grains by the protein-A/gold technique. Concerning the distribution patterns of both IgE/IgG binding sites within the pollen grains, no difference could be observed in the dormant pollen grain: Labelling was found in the exine part of the pollen wall and throughout the highly condensed cytoplasm except for starch grains and lipid droplets. The intine part and the germination pores were almost completely unlabelled. In pollen grains which had been soaked in a hypotonic buffer for 15 min, however, IgE binding sites were predominantly localized within the intine and the germination pores. The specificity of the labelling reactions and the observed differences in the localization patterns are discused.
The microdistribution of type V collagen, fibronectin, and laminin on the luminal surface of perfusion-fixed normal rat aortic endothelium has been studied by an immunoelectron microscopic method using monospecific antibodies and a protein A-gold complex. Gold particles indicating the presence of these biologically active connective tissue proteins were localized in groups on and in the vicinity of the interendothelial border. They were also found on the small flaps of cell junctions as well as on certain cell projections and scattered on the cell surface. Correlative transmission electron-microscopic examinations proved the specificity of these localizations. The endothelial cells of the aorta differed markedly in the amount of scattered connective tissue proteins on their surface, suggesting that there are several types of aortic endothelial cells with distinct functional differences. The findings provide evidence that connective tissue proteins may contribute to the surface pattern of the normal endothelium, especially on cell borders. It is likely that these proteins influence functions such as the permeability and chemotactic activity of the endothelium pertinent to the development of vascular disease.
The erythrocyte magnesium content was determined using two different analytical systems (atomic absorption spectrometry and the laser microprobe mass analyzer) with specimens from 18 patients with normal renal function and from 10 patients with chronic renal insufficiency. There was a good correlation (r = 0.73) between the two analytical systems. Additionally, the laser microprobe mass analyzer was used to determine the aluminum content of plasma and erythrocytes in specimens from patients who ingested moderate quantities of aluminum hydroxide for several months. Results showed a significant elevation of the plasma aluminum concentration, but a normal erythrocyte aluminum content. The laser microprobe mass analyzer may be useful in studies of mineral metabolism in humans.
Pollen from birch trees (Betula pendula) was fixed in glutaraldehyde containing 0.5% cetylpyridinium chloride (CPC), incubated with concanavalin A (Con A)-ferritin, postfixed in osmium, dehydrated, and embedded in Epon. On ultrathin sections, ferritin particles were observed closely associated with the electron-dense material precipitated by CPC on the surface of the pollen grains. Controls for CPC, which were fixed in glutaraldehyde alone, showed no electron-dense material on the surface. In controls for Con A, which were incubated in Con A-ferritin in the presence of the inhibitory sugar (alpha-methyl-D-mannopyranoside), no ferritin particles were observed. The above-described procedure thus allows the localization of sugar residues in highly soluble pollen wall glycoproteins.
t i o n connue.Abstract -For calibrating an energy dispersive X-ray detecting system fitted t o a STEM a set of relative peak intensities of all elements being of interest was established.For this purpose multielement salt standards were prepared using an aerosol generating and collecting system.The calibration spectra obtained show relative values.They were converted into absolute calibration curves by comparing them with analytical values originated from measurements of one organic calibration standard of known concentration.
Pollen grains from Betula pendula were fixed in a mixture of p-formaldehyde and cetylpyridinium chloride (CPC) for the precipitation of soluble pollen glycoproteins. After dehydration and embedding at low temperatures in the water-soluble resin, Lowicryl K4M, ultrathin sections of the pollen grains were incubated using specific antibodies against birch-pollen extract and protein-A/gold complexes. Antigen activity was found in the CPC-precipitated surface material and within the exine (bacular cavities) and the cytoplasm (except for starch grains and lipidic droplets). There was no labelling within the intine. The region of the germinal aperture also showed a very low degree of antigen activity. The control sections were almost completely free of background staining.
During fixation of an allergenic pollen (Corylus avellana) the addition of cetylpridinium chloride (CPC) to the buffered glutaraldehyde led to the preservation of specific material which was lacking after fixation in glutaraldehyde alone. CPC-reactive substances form a distinct covering layer around the pollen grains, but they also occur within the baculoid region of the sexine and the spherosomes of the cytoplasm. In a non-allergenic pollen (Pinus mugo) no CPC-reactive material was found. A chemical similarity between the acid mucopolysaccharides precipitated by CPC in animal connective tissue and the material stained in pollen must be assumed. The possible importance of the visualized substances as to their role as allergens is briefly discussed.
The age-dependent interrelationship of galactolipids and plastids in heterotrophic cell suspension cultures of Glycine max (soybean) was studied with regard to aging of nonphotosynthetic cells. Cells were propagated in the dark and under illumination with white light, and were harvested at days 7 (end of logarithmic phase), 14, and 21 (extended stationary phase). Electron microscopy revealed in dark-grown cells a proliferating decay of the amyloplast-type plastids, which could be correlated to a decrease of galactolipids. This trend was dramatically reversed in irradiated cultures, where the plastids of day 21 cells appeared rejuvenated. A concomitant increase of galactolipid content in the cells was observed, yet chlorophyll synthesis and photosynthetic activity were not induced. The dynamics of galactolipid contents did not correlate with total lipid contents in dark-grown as well as in irradiated cultures. [(3)H]Galactose served as a radioactive probe for the subcellular localization of galactolipids by electron microscopic autoradiography. Apart from plastids, galactolipids may also be constituents of the plasma membrane. The results render the heterotrophic cell suspension culture a suitable model to study the impact of senescence on plastids of nonphotosynthetic cells.
A method was used which combines immunocytochemical techniques with surface replication by carbon films in order to localize fibronectin and N-acetyl-beta-hexosaminidase on cell surfaces of human fibroblasts in vitro. Similar results were received combining the replica techniques with conventional enzyme-cytochemistry.
By immunoelectron-microscopic techniques and the recently developed carbon-film cytochemistry it was possible to localize fibronectin or fibronectin-containing material on cultured human skin fibroblasts. In carbon-film replicas of cell surfaces this material is arranged in the form of a fibrous network. In ultrathin sections, this network appears as rather bulky patches on the cell surfaces. In addition fibronectin is often observed in the interspaces between neighboring cells. This finding supports the assumption that fibronectin is involved in the mechanisms of cell-cell contact, cell-substrate adhesion, and cell recognition.