• Title/Summary/Keyword: apoptosis inducer

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Cell Cycle Alteration and Apoptosis Induced by Ceramide in IM-9 Cells (IM-9세포에 있어서 세라마이드에 의한 세포주기 변화와 아포프토시스)

  • 윤기호;최관수;김원호;최경희;김미영
    • YAKHAK HOEJI
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    • v.39 no.6
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    • pp.689-694
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    • 1995
  • Sphingolipids play important roles in cell regulation and signal transduction. Recently, a sphinogomyelin cycle has been described in which activation of neutral sphingomyelinase leads to the breakdown of sphingomyelin and the generation of ceramide. Ceramide, in turn, has emerged as a candidate intracellular mediator for the action of certain cell agonists and has multiple biologic actions. Ceramide is a potent suppressor of cell growth and an inducer of apoptosis. The present studies show that exposure of IM-9 cells to ceramide resulted in internucleosomal cleavage of DNA, yielding laddered patterns of oligonucleosomal fragments characteristic of apoptosis. DNA fragmentation induced by ceramide was also confirmed by diphenylamine assay. The effect of ceramide on cell cycle progression was also studied. The addition of ceramide increase G$_{1}$ phase distribution in cell cycle. Cell cycle-related cyclin D$_{1}$ gene expression was decreased in a time-dependent manner. These results suggest that apoptosis induced by ceramide is related to cell cycle associated with the alteration of cell cycle in IM-9 cells.

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TNF-${\alpha}$ Regulates Potassium Cyanate-induced Apoptosis via NF-${\kappa}B$ Activation in HCT 116 Cells

  • Yang, Eun Ju;Chang, Jeong Hyun
    • Biomedical Science Letters
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    • v.20 no.1
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    • pp.32-38
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    • 2014
  • Potassium cyanate (KOCN) that is known as an inducer of the protein carbamylation is an inorganic compound and is the conjugate based of cyanic acid (HOCN). Based on these studies, we confirmed that KOCN induces the apoptosis of the human colorectal cancer cell line, HCT 116 cells, by various mitochondrial pathways. To investigate other mechanisms of KOCN-mediated apoptosis, in the present study, we examined KOCN-induced cytokines production in HCT 116 cells and identified the intracellular signaling pathway in these processes. We first demonstrated that KOCN considerably increased the cell apoptosis via intracellular $Ca^{2+}$ signaling, mitochondrial dysfunction and ROS production. And then we examined TNF-${\alpha}$ and IL-$1{\beta}$ levels mediated by KOCN in HCT 116 cells. Although IL-$1{\beta}$ was not involved in KOCN-mediated HCT 116 cell apoptosis, the release of TNF-${\alpha}$ was mediated by KOCN in HCT 116 cells via NF-${\kappa}B$ activation. Apoptosis was also enhanced by incubation with supernatants from HCT 116 cells after KOCN treatment and this effect was partially reduced by BAY 11-7085 pre-treated supernatant. Taken together, our results indicate that KOCN-induced apoptosis in HCT 116 cells is dependent on the releases of TNF-${\alpha}$ and the increased factors and that the mechanism involves the activation of NF-${\kappa}B$.

Basic Studies on the Apoptosis Mechanism of Trichoplusia ni cell line

  • Lee, Jong-Min;Sohn, Bong-Hee;Kim, Yong-Soon;Kang, Pil-Don;Lee, Sang-Uk;Chang, Seung-Jong;Chung, In-Sik
    • Proceedings of the Korean Society of Sericultural Science Conference
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    • 2003.04a
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    • pp.41-41
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    • 2003
  • To elucidate the apoptosis mechanism of Trichoplusia ni cell, fundamental studies for apoptosis induction and suppression were performed. Hygromycin B, a known inducer of apoptosis, started the inhibition of T ni cell growth at 200 ug/$m\ell$ concentration. Furthermore, at 400 $\mu\textrm{g}$/$m\ell$ concentration, DNA fragmentation was detected on day 2 of incubation. (omitted)

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Costunolide Induces Apoptosis via Modulation of Cyclin-Dependent Kinase in HL-60 Human Leukemia Cells

  • Kim, Dong-Hee;Choi, Jung-Hye;Park, Hee-Juhn;Park, Jae-Hoon;Lee, Kyung-Tae
    • Biomolecules & Therapeutics
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    • v.18 no.2
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    • pp.178-183
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    • 2010
  • Costunolide is an active compound isolated from the stem bark of Magnolia sieboldii, and is considered a potential therapeutic for the treatment of various cancers. In this study, we investigated the underlying mechanism whereby costunolide induces the apoptosis of human leukemia cells. Using apoptosis analysis and quantitative reverse transcription-polymerase chain reaction (RT-PCR) results obtained during this study show that costunolide is a potent inducer of apoptosis and that it is triggered due to the premature activation of Cdc2. $G_1$-synchronized cells, which cannot undergo mitosis, were found to be more sensitive to costunolide, and Cdc2 mRNA levels were increased by costunolide treatment. Furthermore, the Cdk inhibitors, olomucine and butyrolactone I, were found to suppress costunolide-induced apoptosis. In addition, the PKC activator TPA rescued cells from cell death by costunolide, and this was prevented by the PKC inhibitor staurosporin. The present study suggests that costunolide induces the apoptosis of HL-60 leukemic cells by modulating cyclin-dependent kinase Cdc2.

Effects of retinoic acid isomers on apoptosis and enzymatic antioxidant system in human breast cancer cells

  • Hong, Tae-Kyong;Lee-Kim, Yang-Cha
    • Nutrition Research and Practice
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    • v.3 no.2
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    • pp.77-83
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    • 2009
  • Retinoic acids (RAs) modulate growth, differentiation, and apoptosis in normal, pre-malignant & malignant cells. In the present study, the effects of RA isomers (all-trans RA, 13-cis RA, and 9-cis RA) on the cell signal transduction of human breast cancer cells have been studied. The relationship between RAs and an enzymatic antioxidant system was also determined. Estrogen-receptor (ER) positive MCF-7 and ER-negative MDA-MB-231 human breast cancer cells were treated with different doses of each RA isomers, all-trans RA, 13-cis RA, or 9-cis RA. Treatment of RA isomers inhibited cell viability and induced apoptosis of MCF-7 cells as a result of increased caspase activity in cytoplasm and cytochrome C released from mitochondria. All-trans RA was the most effective RA isomer in both cell growth inhibition and induction of apoptosis in MCF-7 cells. However, no significant effect of RA isomers was observed on the cell growth or apoptosis in ER-negative MDA-MB-231 cells. In addition, activities of antioxidant enzymes such as catalase and glutathione peroxidase were decreased effectively after treatment of RA in MCF-7 cells, whereas SOD activity was rarely affected. Thus, the present data suggest that all-trans RA is the most potential inducer of apoptosis and modulator of antioxidant enzymes among RA isomers in MCF-7 human breast cancer cells.

ER Stress-Induced Jpk Expression and the Concomitant Cell Death

  • Kim Hye Sun;Chung Hyunjoo;Kong Kyoung-Ah;Park Sungdo;Kim Myoung Hee
    • Biomedical Science Letters
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    • v.11 no.2
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    • pp.135-141
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    • 2005
  • A Jopock (Jpk), a trans-acting factor associating with the position-specific regulatory element of murine Hoxa-7, has shown to have a toxicity to both prokaryotic and eukaryotic cells when overexpressed. Since Jpk protein harbors a transmembrane domain and a putative endoplasmic reticulum (ER)-retention signal at the N-terminus, a subcellular localization of the protein was analyzed after fusing it into the green fluorescent protein (GFP): Both N-term (Jpk-EGFP) and C-term tagged-Jpk (EGFP-Jpk) showed to be localized in the ER when analyzed under the fluorescence microscopy after staining the cells with ER- and MitoTracker. Since ER stress triggers the ER-stress mediated apoptosis to eliminate the damaged cells, we analyzed the expression pattern of Jpk under ER-stress condition. When MCF7 cells were treated with the ER-stress inducer such as DTT and EGTA, the expression of Jpk was upregulated at the transcriptional level like that of Grp78, a molecular chaperone well known to be overexpressed under ER-stress condition. In the presence of high concentration of ER-sterss inducer (10 mM), about 70 (DTT) to $95\%$ (EGTA) of cells died stronly expressing ($10\~12$ fold) Jpk. Whereas at the low concentration ($0.001\~1.0\;mM$) of the inducer, the expression of Jpk was increased about 2.5 (EGTA) to 5 fold (DTT), which is rather similar to those of ER chaperone protein Grp78. These results altogether indicate that the ER-stress upregulated the expression of Jpk and the excess stress induces the ER-stress induced apoptosis and the concomitant expression of Jpk.

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Basic Studies on the Apoptosis Mechanism of Trichoplusia ni Cell Line (Trichoplusia ni 세포의 apoptosis 메커니즘 규명을 위한 기초연구)

  • Lee, Jong-Min;Yang, Jai-Myung;Lee, Youn-Hyung;Chung, In-Sik
    • Applied Biological Chemistry
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    • v.44 no.1
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    • pp.1-6
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    • 2001
  • To elucidate the apoptosis mechanism of Trichoplusia ni cell, fundamental studies for apoptosis induction and suppression were performed. Hygromycin B, a known inducer of apoptosis, started the inhibition of T. ni cell growth at $200\;{\mu}/ml$ concentration. Furthermore, at $400\;{\mu}/ml$ concentration, DNA fragmentation was detected on day 2 of incubation. Although both dexamethasone and sodium butyrate inhibited T. ni cell growth, DNA fragmentation was not detected by both treatments. Also, when apoptosis induced T. ni cells with $200\;{\mu}/ml$ hygromycin B were treated with caspase inhibitor (Ac-DEVD-CHO), the apoptotsis was suppressed by 36%. In addition, N-acetylcysteine, another apoptosis repressor, also inhibited the apoptosis of T. ni cells. In order to express the anti-apoptosis gene (bcl-2), T. ni cells were transiently transformed with bcl-2 and its expression was confirmed by western blot analysis. These results showed the potential of developing new insect cell lines with suppressed apoptosis.

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Antioxidants May Protect Cancer Cells from Apoptosis Signals and Enhance Cell Viability

  • Akan, Zafer;Garip, Ayse Inhan
    • Asian Pacific Journal of Cancer Prevention
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    • v.14 no.8
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    • pp.4611-4614
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    • 2013
  • Quercetin is one of the most abundant dietary flavonoids widely present in many fruits and vegetables. Previous in vitro studies has shown that quercetin acts as an antioxidant and anti-inflammatory agent and it has potent anticarcinogenic properties as an apoptosis inducer. In this study we examined apoptotic effects of quercetin on the K562 erythroleukemia cell line. K562 cells were induced to undergo apoptosis by hydrogen peroxide. Cell viability and apoptosis level were assessed by annexin V and PI staining methods using flow cytometry. Viability of K562 cells was increased by low dose of quercetin (5-100 ${\mu}M$) for 3 hours. High doses of quercetin proved toxic (100-500 ${\mu}M$, 24 hours) and resulted in decrease of K562 cell viability as expected (p<0.01). As to results, 100 ${\mu}M$ quercetin was defined as a protective dose. Also, K562 cell apoptosis due to hydrogen peroxide was decreased in a dose dependent manner. As indicated in previous studies, reduction of superoxides by free radical scavengers like quercetin could be beneficial for prevention of cancer but consumption of such flavonoids during cancer treatment may weaken effects of chemotherapeutics and radiotherapy. Especially cancer patients should be carefully considered for traditional phytotherapy during cancer treatment, which can lead to controversial results.

Inhibition of Proliferation and Induction of Apoptosis by EGCG in Human Osteogenic Sarcoma (HOS) Cells

  • Ji Sang-Jin;Han Dong-Hoon;Kim Jeong-Hee
    • Archives of Pharmacal Research
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    • v.29 no.5
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    • pp.363-368
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    • 2006
  • EGCG [(-)-epigallocatechin-3-gallate], a major component of green tea has been considered as a major antioxidant constituent. In addition to having been considered for cancer treatment as a chemopreventive and chemotherapeutic agent, EGCG has recently been attributed an anti-proliferative effect. We re-examined the latter finding in this study and added specific focus on the ability of EGCG to induce apoptosis in human osteogenic sarcoma (HOS) cells. Antiproliferative action of EGCG $(IC_{50}=35.3{\pm}6.0{\mu}g/mL)$ appeared to be linked to apoptotic cell death based on morphological changes, chromosomal DNA degradation, and an increase in the $sub-G_1$ apoptotic cell population. Treatment of HOS cells with EGCG gradually activated caspase-3, an established inducer of apoptotic cell death.