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W C De Bruijn

Publications and source records attributed to W C De Bruijn.

At least 19 recordsLinked to original sources

Quantitative electron spectroscopic imaging in bio-medicine: evaluation and application.

Electron spectroscopic imaging (ESI) with the energy-filtering transmission electron microscope enables the investigation of chemical elements in ultrathin biological sections. An analysis technique has been developed to calculate elemental maps and quantitative distributions from ESI sequences. Extensive experience has been obtained with a practical implementation of this technique. A procedure for more robust element detection has been investigated and optimized. With the use of Fe-loaded Chelex beads, the measurement system has been evaluated with respect to the linearity of the element concentration scale, the reproducibility of the measurements and the visual usage of image results. In liver specimens of a patient with an iron storage disease the detectability of iron was tested and we tried to characterize iron-containing components. The concentration measurement scale is approximately linear up to a relative section thickness of approximately equal to 0.5. Monitoring of this parameter is therefore considered to be important. The reproducibility was measured in an experiment with Fe-Chelex. The iron concentration differed by 6.4% between two serial measurements. Element distributions are in many applications interpreted visually. For this purpose the frequently used net-intensity distributions are regarded as unsuitable. For the quantification and visual interpretation of concentration differences mass thickness correction has to be performed. By contrast, for the detection of elements the signal-to-noise ratio is the appropriate criterion. Application of ESI analysis demonstrated the quantitative chemical capabilities of this technique in the investigation of iron storage diseases. Based on an assumed ferritin iron loading in vivo, different iron components can be discerned in liver parenchymal cells of an iron-overloaded patient.

Ferritins↗

Effect of two new polysaccharides on growth, agglomeration and zeta potential of calcium phosphate crystals.

PURPOSE: To study the effect of semisynthetic sulphated polysaccharides in the different calcium phosphate crystallization processes in vitro. MATERIALS AND METHODS: Crystallization of hydroxyapatite (HAP) and brushite (DCPD) in the presence and absence of 2 new semisynthetic sulphated polysaccharides (G871, G872) were defined by a constant composition technique, particle size analysis and zeta potential measurement. RESULTS: These polysaccharides demonstrated strong inhibitory effect on HAP and DCPD crystal growth and agglomeration. The increase of negative zeta potential values after addition of polysaccharides suggests the binding of these polysaccharides to HAP and DCPD crystals. CONCLUSION: We conclude that both G871 and G872 could be of potential use for calcium phosphate urolithiasis prevention in addition to their use for calcium oxalate.

Calcium Phosphates↗

Crystal-cell interaction inhibition by polysaccharides.

PURPOSE: We studied the effect of polysaccharides on interactions between calcium oxalate monohydrate (COM) crystals and cultured renal cells. MATERIALS AND METHODS: Monolayers of Madin-Darby canine kidney (MDCK) cells were incubated with radiolabeled crystals in the presence of various concentrations of natural glycosaminoglycans (GAGs) and semisynthetic polysaccharides (SSPs). RESULTS: While most GAGs were found to have relatively little effect, SSPs (SP54, G871 and G872) were potent inhibitors of crystal-cell association. Pretreatment of crystals, but not of cells, was similarly effective, suggesting polysaccharide-induced modification of crystal surface properties. CONCLUSIONS: This result further supports the idea that SSPs, and especially G872, are of potential interest for treatment of recurrent stone disease.

Analysis of Variance↗

Zeta potential distribution on calcium oxalate crystal and Tamm-Horsfall protein surface analyzed with Doppler electrophoretic light scattering.

The zeta potential distribution (ZPD) and particle size of Tamm-Horsfall protein (THP) and of calcium oxalate monohydrate (COM) crystals were measured using a Doppler Electrophoretic Light Scattering Analysis Instrument. The studies showed differences in the ZPD pattern between THP derived from normal subjects (nTHP) and from stone patients (pTHP). Both nTHP and pTHP can shift the zeta potential of calcium oxalate crystals towards more negative values; nTHP is significantly more potent than pTHP. The zeta potential of both nTHP and pTHP becomes less negative with decreasing pH and with increasing calcium concentration or ionic strength. Tamm-Horsfall protein particle size measurements showed that nTHP particles are significantly smaller than pTHP particles. The size of both nTHP and pTHP increases with increasing calcium concentration or increasing ionic strength and with decreasing pH. The differences between nTHP and pTHP in surface charge and particle size may be based on differences in molecular structure and may cause functional differences in their ability to inhibit calcium oxalate crystal aggregation.

Calcium Oxalate↗

An ultrastructural study of experimentally induced microliths in rat proximal and distal tubules.

Calcium oxalate stone formation was induced in rats by oral application of ethylene glycol and ammonium chloride for 4, 8 and 24 days. After each induction period, light-microscopically, birefringent crystals were seen in the tubular lumen and, intracellularly, in proximal and distal tubular cells. After a postfixation which partially removed the crystalline material crystal ghosts were seen by electron microscopy. In the lumen, crystal ghosts were observed ranging from single crystals to crystal agglomerates. The large intraluminal agglomerates were surrounded by epithelial cells and cellular debris. Both crystal types had an organic interior. In the cytoplasm of ultrastructurally changed proximal tubular cells, small (200 to 600 nm. in diameter) single crystal ghosts were present in the terminal web at the basis of the microvilli. Others were present in large vacuolar structures, with a fine granular matrix. After the prolonged microlith induction periods, such vacuolar structures were seen throughout the cell. The organic matrix of the crystal ghosts therein had acquired a more aggregated and complex structure.

Ammonium Chloride↗

Electron energy-loss spectroscopical and image analysis of experimentally induced rat microliths. II.

Following a microlith-inducing diet of ethylene glycol plus ammonium chloride, intraluminal and intracellular crystals are observed in aldehyde-fixed rat proximal and distal tubule cells by light and electron microscopy. Qualitative, in-situ analysis with electron-probe X-ray microanalysis (EPMA) of these intraluminal and intracellular crystals shows the presence of calcium, a trace of magnesium, some chlorine and the virtual absence of phosphorus and sulphur. Electron energy-loss spectroscopical element (EELS) analysis and electron-spectroscopic imaging (ESI) confirm, at both sites, the presence of calcium. Selected area electron diffraction (a) confirmed the crystallinity of both the intracellular and intraluminal crystals; (b) produced identical diffractograms from intracellular crystals in proximal tubule cells and deliberately internalized exogenous COM-crystals in cultured LLC-PK1 cells and (c) produced mean dhkl-values, identical to the dhkl-values from calcium oxalate monohydrate (14-771) in the ASTM index, from 4 different intracellular crystals in proximal-tubule cells.

Ammonium Chloride↗

Quantitative analysis of electron energy-loss spectra from ultrathin-sectioned biological material. I. Optimization of the background-fit with the use of Bio-standards.

A computer program for quantitative spectral analysis is proposed for the elemental analysis of biological material by electron energy-loss spectroscopy in a conventional transmission electron microscope, the Zeiss EM902. Bio-standards are used to test the performance of this program. The application of a simplex optimization method for curve-fitting is proposed to separate the ionization edge from the background. Making use of Ce-, Ca- and Fe-bio-standards, this method is compared with Egerton's well-known two-area method.

Calcium↗

Quantitative analysis of electron energy-loss spectra from ultrathin-sectioned biological material. II. The application of bio-standards for quantitative analysis.

Electron energy-loss spectroscopy (EELS) has been used to determine elemental concentrations in biological specimens, consisting of ultrathin-sectioned cells and tissues. Chelex100-based Ca- and Fe Bio-standards are used for elemental quantification to establish iron and calcium concentrations. These Bio-standards, as well as the biological materials, are treated in a standard EM procedure such that 'known' and 'unknown' sites are located in one cross-section. Uncertainties and variabilities present in the equations for calculating the concentration in the 'unknown' site (determined by comparing simplex-fitted EEL spectra from Bio-standards with those from tissue) are outlined in two examples. Using an H+ Bio-standard, the matrix composition of such biological cell material is analysed, leading to values which approach each other closely. Quantitative EELS, using Chelex100-based Bio-standards, is advocated.

Animals↗

Hot knife microtomy for large area sectioning and combined light and electron microscopy in neuroanatomy and neuropathology.

The technical details given in this paper meet the demand in neuroanatomy and neuropathology for methods which combine broad light microscopical surveys with detailed ultrastructural studies of logically selected areas in well perfused brain material, and emerge directly from experiences in Palay's laboratory at the National Institutes of Health in 1956. Using the procedures recommended will give good sections of exceptionally large areas (up to, and above 1 cm x 1 cm) of fully hardened blocks available at all points for electron microscopy. On such large blocks fully correlative, combined light and electron microscopy may be carried out easily. The process is termed 'hot knife microtomy'. In three different laboratories, primary aldehyde fixation by perfusion and hot knife microtomy have given uniformly excellent data from normal, diseased, and virus-infected brain tissues. These techniques permit full neuroanatomical control and orientation, make comprehensive correlative mapping throughout the CNS feasible, and allow study of the time course of infective processes.

Animals↗

Quantitative energy-filtered image analysis in cytochemistry. I. Morphometric analysis of contrast-related images.

A combination of energy-filtered electron microscopy (EFEM) and an image-analyzing system (IBAS/2000) is used for morphometric analyses of cells and (reaction) products. Image contrast is objectively established and segmentation is based upon intrinsic contrasts, in ultrathin sections. Cross-sectioned platinum-stained erythrocytes are used as a model to determine optimal conditions for constant measuring results for contrast, area and perimeter. Results are related to changes in: (1) the objective-lens diaphragm diameter, (2) three most frequently used contrast modes obtainable by electron spectroscopical imaging (ESI) in a Zeiss EM 902 transmission electron microscope (e.g., global, zero loss (or deltaE - 0 eV) and deltaE = 250 eV), and (3) the number of image integrations (1-250X) acquired by real-time video. A thresholding procedure is proposed for objective segmentation of such contrast-related images and applied to measure the area fraction of nuclear chromatin and the diameter of nominal 1 nm colloidal gold particles.

Animals↗

Quantitative energy-filtered image analysis in cytochemistry. II. Morphometric analysis of element-distribution images.

A combination of energy-filtered electron microscopy (EFEM) and an image-analysis system (IBAS/2000) is used for a morphometric analysis of chemical reaction products in cells. Electron energy-loss spectroscopic element-distribution images are acquired from cytochemical reaction products in a variety of cellular objects: (1) colloidal thorium particles in extra-cellular coat material, (2) iron-containing ferritin particles in liver parenchymal cells, (3) barium-containing reaction products in endoplasmic reticulum stacks, (4) elements present in lysosomal cerium- and barium-containing precipitates connected with acid phosphatase (AcPase) or aryl sulphatase (AS) enzyme activity. Areas or area fractions are determined from such element-distribution images by application of an objective image segmentation method. By superposition of two or more element-distribution images, mutual element relations are qualitatively established in lysosomal cerium- and barium-containing precipitates connected with acid phosphatase (AcPase) or aryl sulphatase (AS) enzyme activity. By comparing electron spectroscopic images (ESI) with element-distribution images, the mutual contrast per element relations are quantitatively investigated. The obtained gain in resolution in such electron energy-loss spectroscopic element-distribution images will be explained and discussed.

Animals↗

Integrated image and X-ray microanalysis of hepatic lysosomes in a patient with idiopathic hemosiderosis before and after treatment by phlebotomy.

Morphometrical and X-ray elemental information was extracted from Scanning Transmission Electron Microscopy (STEM) images of hepatic lysosomes of a patient with idiopathic hemosiderosis before and after treatment by phlebotomy. The elements of interest were iron, stored in pathological quantities in hepatic lysosomal structures and cerium, used as a capture ion after a cytochemical reaction to detect acid phosphatase activity in the lysosomal structures. Morphologically the lysosomal structures are heteromorph and the elements iron and cerium are heterogeneously distributed. With "reduced raster" (= reduced scanning area) analysis at 16 X 16 pixelpoints (integrating image and X-ray microanalysis), a marked difference in the area of the cross sectioned lysosomal structures before and after treatment could be demonstrated. Simultaneously the difference in the relative orientation of the elements iron and cerium before and after phlebotomy could be visualized. Chelex ion exchange beads, loaded with 11.5% w/w iron, and coembedded with the tissue blocks, were used as an internal standard. A mean iron peak to background ratio was obtained and a factor, converting ratio to absolute iron concentration, was calculated. The same calculation procedure, now per pixelpoint, was followed for the hepatic lysosomal structures. A marked difference in iron concentration in the individual lysosomal structures was observed before and after treatment by phlebotomy.

Bloodletting↗

Chemical aspects of glycogen contrast-staining by potassium osmate.

To obtain contrast-staining of glycogen in electron microscopy, various contrast-enhancing additives can be used in combination with potassium osmate. Examples are potassium ferrocyanide and certain nitrogen heterocyclic compounds, such as triazoles. In the reaction sequence leading to contrast-stained glycogen, a primary reaction is the formation of glycogen osmate. This reaction was studied with isolated glycogen. On the basis of the stoichiometric findings, a molecular structure of the reaction product is proposed; apparently, osmate is bound by glycogen because of the presence of suitably located hydroxyl groups. The resulting compound is not itself sufficiently electron dense, but it binds 1,2,4-triazole as an additional ligand. Secondary reactions can result in additional osmium binding, and finally to osmium (IV) deposits, leading to contrast.

Glycogen↗

The effect of digitonin-containing fixatives on the retention of free cholesterol and cholesterol esters.

The influence of several fixation and dehydration procedures on the retention of free cholesterol and cholesterol esters was studied in filter paper preparations. The retention of free cholesterol by the filter paper proved to be decreased by the addition of digitonin to the aldehyde fixative (aqueous phase) and was only slightly enhanced by partial dehydration (alcoholic phase, up to 70% ethanol). Furthermore, digitonin or the presumably formed cholesterol-digitonide complex bound hardly any osmium oxides in glass-fibre paper. Up to 26% of the cholesterol esters was mobilized during the aqueous phase when digitonin was added to the aldehyde fixative. When the glass-fibre papers containing the digitonin cholesterol-ester-osmate complexes were stored in distilled water after fixation, the fluid became turbid. Particulate material isolated from this turbid solution showed ultrastructurally a close resemblance to the 'whorls' observed by several authors in tissue fixed by a digitonin-containing aldehyde fixative. Digitonin also changed the ultrastructural appearance of liposomes, containing lecithin: cholesterol: phosphatidic acid; in a molar ratio 7:2:1. Our observations lead to the conclusion that the use of digitonin-containing fixatives should be abandoned, because they give results which cannot be interpreted. By the use of K4 [Fe(CN)6] containing OSO4 in the post-fixation step were able to demonstrate an increase in the visualization of membranous structures (liposomes).

Cholesterol↗

Ultrastructural findings on lipoproteins in vitro and in xanthomatous tissue.

The application of OSO4 plus K3 [Fe(CN)6] as a secondary fixative following aldehyde fixation, permitted demonstration of the presence of 30-300 nm 'membrane-bound' particles in xanthomatous tissue. With the same fixation method, isolated low density lipoprotein particles in a fibrin matrix could be observed in the transmission electron microscope in a way permitting comparison with similarly fixed tissue. However, isolated particles of very low density lipoproteins treated in the same way as low density particles had an irregular appearance and a diameter varying between 30 and 80 nm.

Cholesterol↗

Glycogen, its chemistry and morphological appearance in the electron microscope.11. The complex formed in the selective contrast staining of glycogen.

Selective contrast staining of glycogen in untreated ultrathin sections of aldehyde-fixed tissues, double-fixed with 1% osmium tetroxide containing 0.05 M K3Fe(CN)6 as reported previously (De Bruijn, 1973), may also be obtained by the addition of either K4Fe(CN)6,K3Co(CN)6,K2Ru(CN)6, or K4Os(CN)6. On the other hand, addition of K3Cr(CN)6, K2Ni(CN)4, K3Mn(CN)6, K3Rh(CN)6, K2Pd(CN)4, K2Pt(CN)4, or K3Ir(CN)6 produces no effect. Hexavalent osmium oxide compounds, such as K2OsO4 and OsO3-2 pyridine, react selectively with a native (or acquired) ligand in the aldehyde-fixed glycogen, but do not render it more electron dense than its immediate surroundings. The presence of these osmium oxides is detected and they are rendered more electron dense by an accumulation reaction by the application on ultrathin sections of phosphotungstic acid (PTA) or a mixture of K2OsO4 and K4Fe(CN)6. As selective contrast staining of glycogen is also obtained by double fixation of the aldehyde-fixed tissue with 0.05 M K2OsO4 solutions containing 0.05 M K4Fe(CN)6 or 0.05 M K4Os(CN)6, it is postulated that in such tissue, both the selective reaction of K2OsO4 with the ligand in the aldehyde-fixed glycogen, and the accumulation of heavy metal at the sites occupied by the K2OsO4, occur simultaneously. A proposal for the constitution of this heavy metal osmium/cyanide complex is formulated and arguments are presented that both compounds are formed in the selective contrast stained glycogen areas of such treated tissues. The relative contribution of the components to the final contrast and its complex character is demonstrated by staining ultrathin glutaraldehyde sections intermittently with 0.05 M solutions of K2OsO4 and K4Fe(CN)6; it is shown that after at least three intermittent reactions with both K2OsO4 and K4Fe(CN)6, the glycogen areas in such sections became contrast stained.

Animals↗