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Y Koseki

Publications and source records attributed to Y Koseki.

5 recordsLinked to original sources

Prolactin receptors in primary cultures of carcinogen-induced rat-mammary tumors.

7,12-Dimethylbenz[alpha]anthracene-induced rat mammary tumors were dissociated with collagenase and hyaluronidase and placed into primary culture. In most cultures, specific binding of 125I-labeled ovine prolactin was (i) lower than that for the original tumors unless bovine prolactin (1 microgram/ml) had been added to the dissociation medium, and (ii) varied with the type of growth medium used. The level of prolactin binding in cultured cells was relatively constant for the first 7-10 days. Prolactin binding in cultured cell homogenates was maximal at pH 7.0, proportional to cell protein, specific for prolactin, and reached a steady state by 12 h at 22 degrees C. The half-maximum inhibition of 125I-labeled prolactin binding by unlabeled prolactin was 100 ng/ml for cells grown in 5-1000 ng of prolactin/ml. After prolactin was removed from the growth medium, the level of available binding sites progressively increased, reached a maximum at 48 h and then declined. At 48 h, the dissociation constant for prolactin binding (Kd approximately 1 x 10(-10) M) was comparable to that in tumors. In some cultured tumors, a 48-h treatment with 0.5 or 1.0 ng of prolactin/ml caused an apparent increase in the level of prolactin binding. Prolactin increased DNA synthesis and its removal caused a reduction in [3H]estradiol and [3H]-R5020 binding to cultured cell cytosols.

9,10-Dimethyl-1,2-benzanthracene

Estrogen control of progesterone receptor in human breast cancer: role of estradiol and antiestrogen.

Estrogen antagonists are widely used in the treatment of breast cancer, and studies of their mechanism of action may provide clues to an understanding of tumor growth regulation and mechanisms of normal estrogen action. We have used human breast cancer cells in long term culture as an in vitro model to study the roles of estradiol and the antiestrogens, tamoxifen and nafoxidine, on cell growth and progesterone receptor (PgR) induction. Tamoxifen is found to have dual dose-dependent estrogenic/antiestrogenic properties. With 1 micrometer tamoxifen, cell growth and PgR induction are suppressed. These effects are reversed by estradiol. At lower doses (less than 0.1 micrometer), however, tamoxifen is a potent estrogen and rapidly induces (24--48 h) PgR, which increases 4- to 10-fold after 4--6 days and falls if tamoxifen is removed. Induction of PgR by estradiol is weaker but follows a similar time course. Tamoxifen-induced PgR is similar to that induced by estradiol; it sediments at 8S on sucrose density gradients, is a tight binder (R5020 Kd, 1.7 micrometer at 4 C and 0.87 nM at 15 C), and can be translocated to the nucleus by R5020. The dual properties of tamoxifen are not due to metabolic formation of an active antiestrogen from a prohormone precursor. In contrast, the action of the antiestrogen nafoxidine is not biphasic in MCF-7 cells; it does not induce PgR over a wide dose range and at high doses, the compound inhibits cell growth.

Breast Neoplasms

Progesterone interaction with estrogen and antiestrogen in the rat uterus--receptor effects.

Daily injections of estradiol or the antiestrogen tamoxifen initially stimulate uterine weight increase and progesterone receptor synthesis, though continued tamoxifen fails to maintain the increased weight. The stimulatory actions of both estradiol and tamoxifen are inhibited or reversed by a single injection of progesterone. It has been hypothesized that progesterone antagonizes estrogen action by reducing estrogen receptor levels, but in the present experiments neither cytoplasmic nor nuclear estrogen receptor was affected. We conclude that progesterone acts at a point beyond estrogen receptor availability or translocation to antagonize estrogen action.

Animals