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Biomedical subjects

Yoshiyuki Kinoshita

Publications and source records attributed to Yoshiyuki Kinoshita.

7 recordsLinked to original sources

Retention of paclitaxel in cancer cells for 1 week in vivo and in vitro.

PURPOSE: Clinically, the administration of paclitaxel for ovarian cancer on a dose-dense weekly schedule, rather than the conventional every-3-week schedule, might demonstrate greater tumor-cell death. Here, we investigate the pharmacokinetics and the pharmacodynamics of weekly paclitaxel in cancer cells in vivo and in vitro. EXPERIMENTAL DESIGN: Paclitaxel concentrations were measured by HPLC, and apoptotic cells were detected by TUNEL assay in paclitaxel-pretreated cervical cancer cells treated with paclitaxel (10 ng/ml) and in the tissues of cervical cancer patients treated with weekly paclitaxel (60 mg/m2/week). Polymerized tubulin was detected with a tubulin polymerization assay, and the BrdU cell proliferation assay was used to assess the effect of paclitaxel. RESULTS: Paclitaxel remained in the cancer tissues of six patients for 6 days after the last medication. In vitro, paclitaxel was retained in all cell lines for 24 h after its removal from the medium, and paclitaxel was still detectable in CaSki cells on day 7. Simultaneous treatment with depolymerizing drugs inhibited the retention of paclitaxel in cells and paclitaxel-induced polymerization of tubulin. After paclitaxel treatment, apoptotic cells were detected in cancer tissues and CaSki cells for 1 week. Under high magnification, apoptotic cells on day 7 after paclitaxel treatment showed multinucleation. CONCLUSIONS: Paclitaxel is unusual in that it accumulates especially in cancer cells and induces apoptosis for 1 week in vivo and in vitro. On the other hand, paclitaxel could not be detected in cancer tissues after 2 weeks. The administration of paclitaxel on a weekly schedule, rather than the standard every-3-week schedule, might produce greater tumor-cell death.

Antineoplastic Agents, Phytogenic↗

Function of estrogen-related receptor alpha in human endometrial cancer.

INTRODUCTION: The estrogen-related receptor alpha (ERRalpha) is an orphan member of the nuclear receptor superfamily that is closely related to estrogen receptor alpha (ERalpha). ERRalpha binds an estrogen response element (ERE), directly competes with ERalpha for binding ERE, and represses ERE-dependent transcription in MCF-7 cells, ER-positive breast cancer cells. OBJECTIVE: We investigated whether ERRalpha modulate some ER-dependent activities in endometrial cancer. METHOD: We investigated protein and mRNA expression of ERRalpha in endometrial cancer using immunohistochemistry and RT-PCR, respectively. After transient transfection using the ERRalpha expression vector (pCI-ERRalpha) or ERRalphaSi, which suppressed the expression of endogenous ERRalpha, Ishikawa cells were assayed for ERE-dependent luciferase activity. Cells stably overexpressing ERRalpha were generated and compared with estrogen-dependent and -independent cell growth. RESULT: ERRalpha was detected in human endometrial cancer tissues by immunohistochemistry. An RT-PCR study showed that mRNA of ERRalpha was expressed in four endometrial cancer cell lines (Ishikawa, Hec1a, KLE, and SNGII) and 11 human endometrial tissues. Overexpression of ERRalpha repressed estrogen-induced ERE-dependent transcriptional activity in Ishikawa cells. After transfection with ERRalphaSi1, the expression of endogenous ERRalpha decreased to 0.5-fold, and estrogen-induced ERE luciferase activity increased to 1.5-fold. The cells stably overexpressing ERRalpha grew up more slowly than control cells in the presence of 10 nm estradiol. CONCLUSION: ERRalpha is expressed in human endometrial cancer tissues and cell lines and suppresses ERE-dependent transcriptional activity in the presence of estrogen. ERRalpha modulates estrogen-induced activity in estrogen-dependent endometrial cancer.

Cell Line, Tumor↗

Positive and negative transcriptional regulation of aromatase expression in human breast cancer tissue.

By performing primer-specific RT-PCR analyses, three laboratories including ours have found that exons I.3 and PII are the two major exon Is present in aromatase mRNAs isolated from breast tumors. These results suggest that promoters I.3 and II are the major promoters directing aromatase expression in breast tumors. The characterization of transcription factors that interact with the two elements near promoters I.3 and II, i.e., S1 and CREaro, helps us better understand the mechanism of the switch of promoter usage between normal breast tissue and cancer tissue. The positions of the two regulatory regions were mapped by DNase I footprinting and DNA deletion analyses. We applied the yeast one-hybrid approach to screen a human breast tissue hybrid cDNA expression library for genes encoding the proteins binding to these regions. Our results suggest that in normal breast tissue, the function of promoters I.3 and II is suppressed through the binding of EAR-2, COUP-TFI, and RARgamma to S1, and through the binding of Snail/Slug proteins to their binding site that quenches the CREaro activity. In cancer tissue, the expression levels of EAR-2, COUP-TF1, EARgamma, Snail, and Slug decrease, and aromatase expression is then up-regulated through the binding of ERRalpha to S1 and the binding of CREB1 or related factors to CREaro. In a separate study, we found that estrogen could up-regulate aromatase expression in breast cancer cells by a non-genomic action of ERalpha via cross-talk with growth factor-mediated pathways. Our preliminary results suggest that protein kinase C delta participates in this ERalpha-growth factor mediated regulation. To further understand the regulatory mechanism, we have recently initiated an in vivo footprinting analysis of the -260/+76 bp region of promoter I.3. The experiments were conducted with both MCF-7 and MDA-MB-231 breast cancer cells. Our results revealed several footprinted sites. Five regions (sites 1-5) were then selected for functional analysis through DNA site-directed mutagenesis experiments. This analysis has also confirmed the promoter I.3 TATA site and Snail/Slug binding site. These mutants showed higher luciferase activity when compared to the wild-type, indicating that the proteins binding to these sites were acting as repressors. By reviewing findings from our laboratory and other laboratories, a detailed mechanism for the transcriptional regulation of aromatase expression in breast cancer tissue is summarized and discussed.

Aromatase↗

Quantitative analysis of cellular fetal hemoglobin gamma chain messenger RNA (HbF-gamma mRNA) in maternal peripheral blood.

OBJECTIVE: Fetal cells cross the feto-maternal barrier and circulate in maternal peripheral blood; thus, this study aimed to show the relationship between clinical evidence in pregnancy and qualitative feto-maternal barrier changes. METHODS: The expression of fetal hemoglobin gamma chain messenger RNA (HbF-gamma mRNA) was measured by quantitative reverse transcriptase-polymerase chain reaction (RT-PCR) in maternal peripheral blood. RESULTS: HbF-gamma mRNA was detected in all pregnant women after 5 weeks of gestation. In normal pregnancy, there were two peaks at 10 and 40 weeks, and a significant increase 4 weeks prior to the onset of labor. In intrauterine growth restriction (IUGR), preterm delivery and placenta previa, the HbF-gamma mRNA expression was significantly higher than in normal pregnancies. CONCLUSION: The expression of HbF-gamma mRNA relative to that of beta-actin mRNA is thought to reflect the real-time leakage of fetal cells into maternal blood.

Case-Control Studies↗

Expression of IL-4, IL-8 and IL-18 messenger RNAs in maternal peripheral blood and relationships with the HbF-gamma chain mRNA in it.

PROBLEM: This study was designed to examine immunological changes in maternal peripheral blood and the relationship of these changes with the amount of fetal cells in the blood. METHOD OF STUDY: The expression of interleukin-4 (IL-4), IL-8, IL-18 and fetal hemoglobin gamma chain (HbF-gamma chain) messenger RNAs (mRNAs) in maternal peripheral blood was measured by a quantitative reverse transcription-polymerase chain reaction method. RESULTS: In maternal peripheral blood, the expression of IL-4 mRNA was up-regulated from the second gestational month (GM) to delivery. The expression of IL-8 and IL-18 mRNAs was down-regulated from the third or fourth GM until the eighth or ninth GM, respectively, and both increased before the onset of labor, though IL-4 mRNA decreased. The expression of IL-8 and IL-18, but not IL-4, mRNAs was correlated with that of HbF-gamma chain mRNA. CONCLUSIONS: Immunological interactions between maternal peripheral immune cells and fetal cells appear to be related to the onset of labor.

Female↗

Induction of aromatase (CYP19) expression in breast cancer cells through a nongenomic action of estrogen receptor alpha.

Aromatase plays a critical role in breast cancer development by converting androgen to estrogen. In this report, results are presented to demonstrate that estrogen, the product of aromatase, can up-regulate its expression. Estrogen receptor (ER) transient transfection experiments were performed using the SK-BR-3 breast cancer cell line, which is ER negative and expresses aromatase. When SK-BR-3 cells were transfected with the expression plasmid pCI-ER alpha, but not pCI-ER beta, aromatase activity was elevated by 17beta-estradiol (E(2)) in a dose-dependent manner. The E(2) induction could be enhanced by cotransfection with the coactivator GRIP1 and suppressed by antiestrogens such as tamoxifen and ICI 182,780. The aromatase activity in the ER alpha-transfected SK-BR-3 cells could also be induced by environmental chemicals that were known to have an estrogen-like activity. Using aromatase gene exon Is-specific reverse transcription-PCR, the level of promoter I.1-driven transcripts was found to be elevated in E(2)-treated ER alpha-transfected cells. This suggested that E(2) induced aromatase expression through the up-regulation of promoter I.1. Using DNA deletion analysis of the 5'-flanking region of promoter I.1, the section between -300 and -280 bp upstream from exon I.1 was identified to be important for mediating E(2) induction. However, a direct binding of ER alpha to this 20-bp region could not be demonstrated. It was found that E(2) induction could be suppressed by the mitogen-activated protein/extracellular signal-regulated kinase kinase inhibitor, PD98059, and the epidermal growth factor receptor tyrosine kinase inhibitor, PD153035 hydrochloride. A significant induction of aromatase expression was also detected in ER-positive MCF-7 breast cancer cells after transfection with pCI-ER alpha and E(2) treatment. Furthermore, after ER alpha transfection and E(2) treatment, the aromatase activity in Her-2-overexpressing MCF-7 cells was drastically higher than that of the wild-type MCF-7 cells. In addition, aromatase induction in MCF-7 cells could also be suppressed by PD153035 hydrochloride. These results suggest that E(2) up-regulates aromatase expression by a nongenomic action of ER alpha via cross-talk with growth factor-mediated pathways.

Aromatase↗