Localization of testicular plasminogen activator in discrete portions (stage VII and VIII) of the seminiferous tubule.
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Biomedical subjects
Publications and source records attributed to M Parvinen.
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In a survey of all malignant soft tissue tumors in the extremities and limb girdles in Finland between 1960 and 1969, only one alveolar soft part sarcoma was found among 246 tumors (0.4%). Another alveolar soft part sarcoma, diagnosed in 1976, was more thoroughly studied. There was evidence that the characteristic crystals of alveolar soft part sarcoma are formed from the dense granules. Both were PASM-positive at ultrastructural level. No monoamines were detected in the cells by formaldehyde-induced fluorescence. This is a further fact to nullify the theory of the paraganglionic origin of alveolar soft part sarcoma, but the question of the histogenesis of the tumor still remains open.
Recent data indicate that the chromatoid body typical of rat spermatogenesis may contain RNA synthesized in early spermatids by the haploid genome. Analyses of living step-1 and step-3 spermatids by time-lapse cinephotomicrography have shown that the chromatoid body moves in relation to the nuclear envelope in two different ways. Predominantly in step 1, the chromatoid body moves along the nuclear envelope on a wide area surrounding the Golgi complex and has frequent transient contacts with the latter organelle. In step 3, the chromatoid body was shown to move perpendicular to the nuclear envelope. It was seen located very transiently at the top of prominent outpocketings of the nuclear envelope with apparent material continuities through nuclear pore complexes to intranuclear particles. The rapid movements of the chromatoid body are suggested to play a role in the transport of haploid gene products in the early spermatids, including probably nucleocytoplasmic RNA transport.
A sensitive (sensitivity 2.2 X 10(-9) mol/l) and specific (practically no cross-reaction with circulating folates) radioimmunoassay for the determination of methotrexate concentrations in biological fluids in described and compared with a commercial competitive protein binding assay. Antiserum with high titer was produced in rabbits immunized with MTX-human serum albumin conjugate. Fitness for use in pharmacokinetic drug level determinations was shown in three patients, who received both low doses and high dose therapy combined with citrovorum factor rescue. An excellent correlation was found between plasma and urine MTX concentrations obtained by RIA and competitive protein binding assay. A two-compartment pharmacokinetic model was found adequately describing the serum decay curves, but there was a great interindividual variability in the calculated pharmacokinetic parameters.
Male sterility belongs to the recently recognized complications of cancer chemotherapy and has an increasing importance. Therefore, more information about the mode of action of anticancer drugs on mammalian spermatogenesis is needed. We have developed a technique based on transillumination of living, freshly isolated unstained rat seminiferous tubules, where the cells specifically killed by the drugs are recognized as dull zones. Early stages of cell degeneration can be rapidly analyzed by phase contrast microscopy of living cells. Because the transillumination technique, in addition, permits an accurate recognition of the segments of the seminiferous epithelial wave, the cells representing various stages of the mitotic and meiotic cell cycles during spermatogenesis can be isolated in living state for morphological analysis. Vinblastine and vincristine cause an arrest of mitotic and meiotic divisions to metaphase followed by cell death, which was more rapid after vincristine administration. Both alkaloids had a slight damaging effect on the pachytene spermatocytes. Large doses of both drugs primarily affected the Sertoli cells by destroying their microtubules and mitochondria. Vincristine specifically damaged the acrosomic system and the cytoplasmic bridges of the young spermatids.
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In the seminiferous tubules of the rat, as in most mammalian species, the developing germ cells form associations with constant cell composition. These cellular associations or stages follow each other in a regular manner along the seminiferous tubules giving rise to seminiferous epithelial wave. When a freshly isolated unstained seminiferous tubulus of the rat is subjected to transillumination under a stereomicroscope, the different segments of the seminiferous epithelial wave absorb light in a characteristic manner permitting their recognition. Using this technique, small segments with accurately known cell composition can be isolated and studied in living state with phase-contrast microscopy. In several cases, the phase-contrast microscopy gives more information about the cell morphology than conventional histological methods. In this study all major developmental steps from early spermatogonia to mature spermatids have been described. The findings of the present study can be used as reference material in the evaluation and identification of the various cell types of the seminiferous tubules obtained, e.g. by the Staput fractionation method. In addition, the findings may be helpful in the evaluation of spermatogenic and Sertoli cells in culture conditions.
Parts of human seminiferous tubules containing late spermatids with condensed nuclei (Stage II) absorbed more transmitted light than did parts at other stages. Spermatogenic stages I, III, IV and VI were identifiable by phase-contrast microscopy.
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The movement and transport of material between intranuclear dense particles, the chromatoid body and the Golgi complex have been studied in early spermatids of the rat. The analyses involved observation of living accurately identified cells, time-lapse cinemicrography and electron microscopy. The chromatoid body establishes transient contacts with intranuclear material during early spermiogenesis. The chromatoid body also makes contacts with the Golgi complex. It is suggested that the chromatoid body receives material from the nucleus during the postmeiotic period and particites in the early formation of the acrosomic system.
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The in vitro incorporation of tritiated uridine into RNA by the spermatogenic cells of the rat has been analyzed by high-resolution autoradiography. Special attention has been focused on the unique cytoplasmic organelle, the chromatoid body. After a short labeling time (2 h), this organelle remains unlabeled in the vast majority of the early spermatids although the nuclei are labeled. When the 2-h incubation with (3H)uridine is followed by a 14-h chase, the chromatoid body is seen distinctly labeled in all spermatids during early spermiogenesis from step 1 to step 8. Very few grains are seen elsewhere in the cytoplasm of these cells. When RNA synthesis in the spermatid ceases, the chromatoid body also remains unlabeled. It is likely that the chromatoid body contains RNA which is synthesized in the nuclei of the spermatids. The function of this RNA as a stable messenger RNA needed for the regulation of late spermiogenesis is discussed.
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