Effects of adrenaline and noradrenaline discharging agents on the diazosulfanilic acid azure A staining of rat adrenal medulla.
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A sensitive, nonradioactive azure A-silver staining method combining agarose gel electrophoresis was established and evaluated. Unfractionated heparins (UFHs), low-molecular-weight heparins (LMWHs), heparan sulfate (HS), chondroitin sulfate A (CSA), dermatan sulfate (DS), keratan sulfate (KS), and hyaluronic acid (HA) were analyzed. The detection limit of the method was 0.5 ng for heparin, LMWH, HA, CSA, and DS, 2 ng for KS, and 6 ng for HA in the 2-microliter sample volume. Dilution curves demonstrated linear correlation between the logarithm of the concentration of glycosaminoglycans (GAGs) and their optical absorbance at 548 nm. The linear ranges were 1 to 500 ng/microliter for heparins, LMWHs, HS, DS, and CSA, 3 to 500 ng/microliter for KS, and 8 to 500 ng/microliter for HA. GAGs have their characteristic migration patterns and their Rf value decreased from CSA to KS, DS, HS, heparin, and HA. The differences were described for heparins and LMWHs. LMWHs migrated faster and displayed broader bands than unfractionated heparins. It was also observed that some unfractionated heparins contained low sulfated GAGs as contamination, which seemed to be DS as judged by their migration patterns.
A quantitative study of azure B-eosin-stained blood cells is reported. The effects of variation in stain formulation and staining technique on the binding of azure B and eosin by acidophilic, basophilic and neutrophilic substrates were measured by scanning microdensitometry. The variables considered were stain concentration (the azure B-eosin concentration ratio was constant), azure B concentration (at constant eosin concentration), eosin concentration (at constant azure B concentration), staining time, buffer pH, metal salt contamination, dye contamination, buffer concentration and fixation time. The last two were the only variables which failed to produce changes in dye uptake. Tentative explanations of the observed effects are advanced.
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We present an in vitro flattened retinal-scleral preparation suitable for electrophysiological studies from visually targeted amacrine and ganglion cells of the rabbit retina. In a newly designed superfusion chamber, the retinal-scleral tissue is stained with Azure B allowing for imaging of neurons in the ganglion cell layer with an infrared (IR)-sensitive CCD camera via trans-scleral IR illumination. Neurons can be visually identified and targeted for both extracellular and intracellular recordings made singly or in simultaneous pairs. The quality and stability of the recordings are excellent and the tissue remains viable for up to 10 h. This relatively simple preparation avoids the extensive surgical manipulations inherent to those based on isolated retinas or retinal slices. Moreover, the use of trans-scleral IR illumination rather than fluorescent dyes to visualize and target neurons allows for electrophysiological studies of the retina under controlled adaptational states including dark-adapted conditions.
HeLa cells in tissue cultures infected with types 3, 4, or 7 of adenovirus (RI-APC virus) were studied in order to correlate certain histochemical and electron microscopic findings. Adjacent thin (ca. 0.05 micro) and thick (2-4 micro) sections of osmium-fixed, methacrylate-embedded cells were cut; by mapping the sections the same cells could be identified with both the electron and the light microscope. Intranuclear crystalline aggregates seen with the electron microscope to be composed of ordered arrays of viral particles were found by means of the Feulgen reaction to contain DNA. DNA is therefore assumed to be a constituent of the viral particle. The virus appeared to develop from an osmiophilic Feulgen-negative matrix. Displacement of nuclear chromatin occurred during this process. A Feulgen-azure staining method was found to permit clear distinction between viral and nuclear (host) DNA in thick sections.
Removal of deoxyribonucleic acid from meristematic onion root cells grown in solutions of kinetin, followed by metachromatic staining in azure B bromide, indicated the presence of appreciable amounts of ribonucleic acid in nuclei exposed to the cell division factor.
The new azure B-eosine stain shows a greater inhomogeneity of the granule population of human neutrophil leucocytes than Pappenheim's stain. This difference seems to be dependent on the number of azure granules within the single neutrophil.
Standardized (i.e. purified) Azure B (AB), now commercially available, is recommended as the standard dye for reticulocyte staining. AB is compared with the frequently used cationic dye Brilliant Cresyl Blue by visual observation and computer-guided image analysis. The staining performance of the two dyes is similar but, in the interests of laboratory economy, AB is preferable for practical use because, like Eosin Y, it is also present in the standard Romanowsky Giemsa stain.
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The stability of azure B-eosin Y staining solutions of varying composition and of a routine May Grunwald Giemsa (MGG) stain were studied by analysis of the density histogram of white blood cells obtained by an image analysis computer. The stability appeared to be variable and depended on the concentration of the dyes, the molarity of the buffer solutions and the presence of dimethylsulfoxide (DMSO) as a stabilizer. Although most staining solutions including the routine MGG stain showed marked loss of staining capacity soon after preparation, it was possible to obtain an azure B-eosin Y mixture with very satisfactory staining properties which did not decrease during 8 h after its preparation.
A comparison has been made between reticulocyte preparations stained with purified azure B and with several commerically available batches of brilliant cresyl blue and new methylene blue. Marked variations were observed in the composition and staining performances of the various batches of the two commerically available dyes. Although there were no significant differences in reticulocyte counts obtained with these two dyes, varying amounts of an extraneous, particulate dye deposit were present in these preparations, making accuracte counting both tedious and timeconsuming. Purified azure B, on the other hand, gave reproducibly stained, deposit-free preparations. Reticulocyte counts obtained from azure B preparations correlated almost exactly with those determined using new methylene blue. Purified azure B is therefore recommended as a convenient reticulocyte stain for routine use.
A rapid, sensitive, and nonradioactive method has been developed for the quantification and characterization of glycosaminoglycans. The method is based on the separation of different types of glycosaminoglycans in agarose gel and subsequent fixation and staining with the cationic dye azure A, followed by silver enhancement. Densitometric analysis of the silver deposition gives a linear response between 1 and 20 ng for chondroitin and dermatan sulfate and between 2 and 40 ng for heparan sulfate. The detection limit is about 250 pg. The staining procedure was applied for the quantification and characterization of glycosaminoglycans in human serum, urine, and lung and in mouse kidney glomeruli. It requires only 10 microliters serum, 2 microliters urine, and only a single cryosection in case of tissue. The method is at least as sensitive as staining with radioactive markers and about 200 times more sensitive than conventional glycosaminoglycan-staining methods.
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