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Biomedical subjects

M Kotani

Publications and source records attributed to M Kotani.

At least 163 records · Page 9Linked to original sources

Lymph macrophages enter the germinal center of lymph nodes of guinea pigs.

To determine the fate of macrophages within the afferent lymph stream, the popliteal lymph nodes at various times (3 h to 6 months) after subcutaneous injection of india ink into the footpads of guinea pigs were examined. Two types of cells which had phagocytized india ink were observed in the germinal centers. A small number of type I phagocytes (engulfing india ink as small particles which were often found together with tingible bodies in their cytoplasm) were scattered through the germinal center. A large number of type II phagocytes (packed full of india ink) presented preferentially in the medullary portion of the germinal center, together with many pyroninophil lymphoblastoid cells. In the second experiment, the afferent lymphatics of the popliteal lymph node were ligated 15-20 min after india ink injection. Although the type I phagocytes were distributed as in the first experiment, the type II phagocytes were scanty. In the third experiment, the afferent lymphatics of the popliteal lymph node were ligated 7 days after india ink injection. The type II phagocytes disappeared rapidly from the germinal center, whereas the type I phagocytes remained and were not affected by ligature. These results suggest that the type I phagocytes are the fixed macrophages or tingible body macrophages in the germinal center, and that the type II phagocytes are the macrophages migrating from the peripheral tissues. It was also shown that many macrophages reaching the regional node via afferent lymphatics entered the germinal center through the medullary pole where the cap of small lymphocytes became thinner or disappeared.

Animals↗

Volume of sella turcica in normal subjects and in patients with primary hypothyroidism and hyperthyroidism.

In an attempt to assess a possible relationship between pituitary size and TSH secretion, the volume of sella turcica was measured in 570 subjects, 26 primary hypothyroid patients, and 34 thyrotoxic patients. The volume of sella turcica, measured by a 3-dimensional approach, increased progressively with age until 20 years of age and was rather constant thereafter in normal subjects. In thyrotoxic patients, the volume of sella turcica was normal in spite of decreased plasma TSH concentration. In contrast, 81% of primary hypothyroid patients had an abnormal enlargement of the sella turcica. The magnitude of an increase of sella turcica inversely related with a decrease in serum T4 and T3 concentrations. On the other hand, the magnitude of an increase of sella turcica correlated well with an increase of circulating TSH. We suggest that an increase of sella turcica indirectly reflects an increase in pituitary size and TSH-secreting capacity, possibly due to hypertrophy and hyperplasia of TSH cells in primary hypothyroid patients.

Adolescent↗

Observations on the migration and proliferation of gonocytes in Xenopus laevis.

The process of primordial germ cell formation in the normal course of development of Xenopus laevis was examined with a light microscope on paraffin and Epon sections of embryos or tadpoles, extending over the period from the gastrula to the feeding tadpole stage. Positional changes of gonocytes with development were nearly the same as those reported on the same species by Blackler (1958) and Whitington & Dixon (1975). The following points were newly demonstrated. Gonocytes which have been located in a deep endodermal position till mid tail-bud stage come to be located in a rather peripheral region of the endoderm cell mass at stage 31 (late tail-bud), suggesting that the initial step of migration of the gonocytes towards the future genital ridge has already begun at this stage. Gonocytes at stages 33/34 and 35/36 were observed in a more dorsal part of the endoderm than at stage 31. Gonocytes which seem to have begun their migration are roundish in external shape and have a large intercellular space around them. At stage 40 gonocytes were located in the dorsal endodermal crest, and at stage 41 gonocytes were found with cell bodies extending over both the dorsal endoderm crest and the dorsal mesentery, indicating that the separation of the gonocytes from the endoderm was in progress at this stage. The present results seem to indicate that gonocytes migrate not passively but actively from the deep endodermal position to the genital ridge, passing through the dorsal mesentery. Counting the number of gonocytes at successive stages of development revealed that gonocytes proliferated exponentially throughout the developmental stages from gastrula to tadpole.

Animals↗

Studies of thyroid-stimulating hormone binding to bovine thyroid plasma membranes.

131I-TSH prepared by the lactoperoxidase method was used to study the binding of hormone to bovine thyroid plasma membrane. Specific binding was obtained using as little as 0.12 mU/ml 131I-TSH. Half-maximal binding occurred with 17.1 plus or minus 3.5 mU/ml and saturation at approximately 40 mU/ml. Scatchard plot analysis revealed two classes of binding sites, with association constants of 1.1 plus or minus 0.06 x 10(8) M(-1) and 1.4 x 10(7) M(-1) for the high- and low-affinity sites, respectively. Binding of 131I-TSH was linearly related to the amount of thyroid plasma membrane protein. Other polypeptide hormones and prostaglandin E1 did not inhibit specific TSH binding. Identical results were obtained using two TSH preparations of different biologic specific activity. 12.5 mU/ml unlabeled TSH decreased 131I-TSH binding 50%, and 156 mU/ml caused complete inhibition. After equilibrium of 131I-TSH binding was established, maximal displacement was achieved by 120 min using about 300 mU/ml TSH. However, only about one-half of the 131I-TSH was displaced. Although GTP potentiated the stimulation of adenylate cyclase by TSH, it inhibited binding of 131I-TSH. Binding of TSH correlated very well with activation of adenylate cyclase.

Adenylyl Cyclases↗

The generation of large pyroninophilic cells in the lymphoid tissues of rats infused with cell-free lymph.

The thoracic duct of Wistar strain rats was cannulated during 5 days for studying the effect of selective lymphocyte depletion on the lymphoid tissue. A technique for the continuous infusion of cell-free lymph, whole lymph of Eagle's medium to the rat with the thoracic duct fistula is described in detail. The prolonged drainage of lymph from rats was followed by lymphopenia, sever atrophy of lymphoid tissues and the depletion of small lymphocytes in the thymus-dependent areas of spleen and lymph nodes. The infusion of cell-free lymph into the drained rat resulted in the recovery of the weight of lymphoid tissues and in the massive proliferation and accumulation of large cells with prominent nucleoli and intensely pyroninophilic cytoplasm in the lymphocyte depleted areas of the peripheral lymphoid tissues and thymic cortex. There was histological evidence that the large pyroninophilic cells developed well in the spleen and tended to localize preferentially around the periarteriolar region through the marginal zone bridging channels to the red pulp. The infusion of Eagle's medium was found ineffective in restoring the weight of the lymphoid tissues and in bringing about the proliferation of lymphoid cells. The rats infused with whole lymph showed almost similar findings biologically and histologically to those of sham-operated rats.

Animals↗

Histological observations of inhibitory effect of testosterone on lymphoid regeneration in the thymus-independent areas of B mice.

High doses of testosterone were subcutaneously given to B mice, neonatally thymectomized, lethally irradiated and reconstituted with syngeneic bone marrow cells. Histological observations of the peripheral lymphoid tissues revealed that testosterone inhibited the regeneration of the thymus-independent areas which were considered to be composed mainly of B lymphocytes. This result suggests that testosterone would inhibit the differentiation of B lymphocytes.

Animals↗