• 제목/요약/키워드: Tumor Proliferation

검색결과 1,230건 처리시간 0.028초

Overexpression of tumor necrosis factor receptor-associated protein 1 (TRAP1), leads to mitochondrial aberrations in mouse fibroblast NIH/3T3 cells

  • Im, Chang-Nim;Seo, Jeong-Sun
    • BMB Reports
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    • 제47권5호
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    • pp.280-285
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    • 2014
  • Cancer cells undergo uncontrolled proliferation, and aberrant mitochondrial alterations. Tumor necrosis factor receptor-associated protein 1 (TRAP1) is a mitochondrial heat shock protein. TRAP1 mRNA is highly expressed in some cancer cell lines and tumor tissues. However, the effects of its overexpression on mitochondria are unclear. In this study, we assessed mitochondrial changes accompanying TRAP1 overexpression, in a mouse cell line, NIH/3T3. We found that overexpression of TRAP1 leads to a series of mitochondrial aberrations, including increase in basal ROS levels, and decrease in mitochondrial biogenesis, together with a decrease in peroxisome proliferator-activated receptor gamma coactivator-$1{\alpha}$ (PGC-$1{\alpha}$) mRNA levels. We also observed increased extracellular signal-regulated kinase (ERK) phosphorylation, and enhanced proliferation of TRAP1 overexpressing cells. This study suggests that overexpression of TRAP1 might be a critical link between mitochondrial disturbances and carcinogenesis.

Tumor bioenergetics: An emerging avenue for cancer metabolism targeted therapy

  • Kee, Hyun Jung;Cheong, Jae-Ho
    • BMB Reports
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    • 제47권3호
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    • pp.158-166
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    • 2014
  • Cell proliferation is a delicately regulated process that couples growth signals and metabolic demands to produce daughter cells. Interestingly, the proliferation of tumor cells immensely depends on glycolysis, the Warburg effect, to ensure a sufficient amount of metabolic flux and bioenergetics for macromolecule synthesis and cell division. This unique metabolic derangement would provide an opportunity for developing cancer therapeutic strategy, particularly when other diverse anti-cancer treatments have been proved ineffective in achieving durable response, largely due to the emergence of resistance. Recent advances in deeper understanding of cancer metabolism usher in new horizons of the next generation strategy for cancer therapy. Here, we discuss the focused review of cancer energy metabolism, and the therapeutic exploitation of glycolysis and OXPHOS as a novel anti-cancer strategy, with particular emphasis on the promise of this approach, among other cancer metabolism targeted therapies that reveal unexpected complexity and context-dependent metabolic adaptability, complicating the development of effective strategies.

Niclosamide Enhances NK cell Proliferation and Anti-Tumor Activity for Cancer Immunotherapy

  • Min Hwa Shin
    • 대한의생명과학회지
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    • 제29권4호
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    • pp.382-385
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    • 2023
  • NK (Natural killer) cells are innate immune cells and play important roles as the first immune cells to act when cancer occurs. In many cancer patients, NK cells can be seen to be inactivated, suggesting that NK cells are important in cancer treatment. In order to overcome the disadvantages of NK cells in cancer treatment, it is critical to develop strategies that enhance the proliferation and cytolytic function of NK cells. We applied niclosamide to measure the degree of NK cell activation, and obtained unexpected results of increased NK cell numbers and anti-tumor activity. Although further investigation is required to uncover the detailed mechanisms, our results suggest that Niclosamide is a promising candidate to increase the efficacy of cancer immunotherapy using NK cells.

TJP1 Contributes to Tumor Progression through Supporting Cell-Cell Aggregation and Communicating with Tumor Microenvironment in Leiomyosarcoma

  • Lee, Eun-Young;Kim, Minjeong;Choi, Beom K.;Kim, Dae Hong;Choi, Inho;You, Hye Jin
    • Molecules and Cells
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    • 제44권11호
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    • pp.784-794
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    • 2021
  • Leiomyosarcoma (LMS) is a mesenchymal malignancy with a complex karyotype. Despite accumulated evidence, the factors contributing to the development of LMS are unclear. Here, we investigated the role of tight-junction protein 1 (TJP1), a membrane-associated intercellular barrier protein during the development of LMS and the tumor microenvironment. We orthotopically transplanted SK-LMS-1 cells and their derivatives in terms of TJP1 expression by intramuscular injection, such as SK-LMS-1 Sh-Control cells and SK-LMS-1 Sh-TJP1. We observed robust tumor growth in mice transplanted with LMS cell lines expressing TJP1 while no tumor mass was found in mice transplanted with SK-LMS-1 Sh-TJP1 cells with silenced TJP1 expression. Tissues from mice were stained and further analyzed to clarify the effects of TJP1 expression on tumor development and the tumor microenvironment. To identify the TJP1-dependent factors important in the development of LMS, genes with altered expression were selected in SK-LMS-1 cells such as cyclinD1, CSF1 and so on. The top 10% of highly expressed genes in LMS tissues were obtained from public databases. Further analysis revealed two clusters related to cell proliferation and the tumor microenvironment. Furthermore, integrated analyses of the gene expression networks revealed correlations among TJP1, CSF1 and CTLA4 at the mRNA level, suggesting a possible role for TJP1 in the immune environment. Taken together, these results imply that TJP1 contributes to the development of sarcoma by proliferation through modulating cell-cell aggregation and communication through cytokines in the tumor microenvironment and might be a beneficial therapeutic target.

Overexpression of NDRG2 Can Inhibit Neuroblastoma Cell Proliferation through Negative Regulation by CYR61

  • Zhang, Zhi-Guo;Li, Gang;Feng, Da-Yun;Zhang, Jian;Zhang, Jing;Qin, Huai-Zhou;Ma, Lian-Ting;Gao, Guo-Dong;Wu, Lin
    • Asian Pacific Journal of Cancer Prevention
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    • 제15권1호
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    • pp.239-244
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    • 2014
  • Several recent studies have showed that the n-myc downstream regulated gene 2 (NDRG2) is a new tumor suppressor gene, and that it plays an important role in tumor suppression in several cancers or cancer cell lines. However, few studies focused on its function in neuroblastoma cells. In the present investigation, we demonstrated that NDRG2 overexpression inhibited their proliferation. Using a cDNA microarray, we found that overexpression of NDRG2 inhibited the expression of cysteine-rich protein 61 (CYR61), a proliferation related gene. From our research, CYR61 may partially hinder NDRG2-mediated inhibition of cell proliferation. Overexpression of NDRG2 resulted in accumulation of cells in the G1 phase, which was accompanied by upregulation of p21 and p27 and downregulation of CDK4 and cyclin D1. Taken together, these data indicate that NDRG2 inhibits the proliferation of neuroblastoma cells partially through suppression of CYR61. Our findings offer novel insights into the physiological roles of NDRG2 in neuroblastoma cell proliferation, and NDRG2 may prove to be effective candidate for the treatment of children with neuroblastoma.

Effects of PTTG Down-regulation on Proliferation and Metastasis of the SCL-1 Cutaneous Squamous Cell Carcinoma Cell Line

  • Xia, Yong-Hua;Li, Min;Fu, Dan-Dan;Xu, Su-Ling;Li, Zhan-Guo;Liu, Dong;Tian, Zhong-Wei
    • Asian Pacific Journal of Cancer Prevention
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    • 제14권11호
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    • pp.6245-6248
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    • 2013
  • Aims: To study effects of down-regulation of pituitary tumor-transforming gene (PTTG) on proliferation and metastasis ability of the SCL-1 cutaneous squamous cell carcinoma (CSCC) cell line and explore related mechanisms. Methods: SCL-1 cells were divided into 3 groups (untreated, siRNA control and PTTG siRNA). Cell proliferation assays were performed using a CCK-8 kit and proliferation and metastasis ability were analyzed using Boyden chambers. In addition, expression of MMP-2 and MMP-9 was detected by r-time qPCR and Western blotting. Results: Down-regulation of PTTG could markedly inhibit cell proliferation in SCL-1 cells, compared to untreated and control siRNA groups (P < 0.05). Real-time qPCR demonstrated that expression levels of PTTG, MMP-2 and MMP-9 in the PTTG siRNA group were 0.8%, 23.2% and 21.3% of untreated levels. Western blotting revealed that expression of PTTG, MMP-2 and MMP-9 proteins in the PTTG siRNA group was obviously down-regulated. The numbers of migrating cells ($51.38{\pm}4.71$) in the PTTG siRNA group was obviously lower than that in untreated group ($131.33{\pm}6.12$) and the control siRNA group ($127.72{\pm}5.20$) (P < 0.05), suggesting that decrease of proliferation and metastasis ability mediated by PTTG knock-down may be closely correlated with down-regulation of MMP-2 and MMP-9 expression. Conclusion: Inhibition of PTTG expression may be a new target for therapy of CSCC.

內消散의 抗癌效果에 관한 實驗的 硏究 (Experimental Study of Naesosan(內消散) on the Effects of Anti-Cancer)

  • 박수연;최정화
    • 한방안이비인후피부과학회지
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    • 제14권1호
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    • pp.154-166
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    • 2001
  • Naesosan(NSS) has been used in Oriental Medicine as a drug that treated carbuncle and cellulitis. So, the purpose of this Study was to investigate effects of NSS on the cytotoxicity of cancer cell lines and lymphocytes in vitro, proliferation of Ll210 cells and lymphocytes in L1210 cells transplanted mice, improvement of blood count in Ll210 cells transplanted mice, tumor weight and body weight in sarcoma-180 cells transplanted mice, survival prolongation in sarcoma-180 cells transplanted mice. We used NSS extract with freeze-dried, 8wks-old male mice(balb/c and ICR mouse $18{\pm}2g$). Ll210 cell lines, and sarcoma-180 cell lines for this Study, The proliferation of cells was tested using a colorimetric tetrazoliun assay(MTT assay). The results of this Study were obtained as follows ; 1. NSS showed significantly cytotoxicitic effects of cancer cell lines, did not show cytotoxicitic effects of lymphocytes. 2, Proliferation of lymphocytes in L1210 cells transplanted mice did not effects by NSS. 3. NSS inhibited significantly the proliferation of L1210 cells in L1210 cells transplanted mice. 4. NSS improved significantly the blood count in Ll210 cells transplanted mice. 5. NSS increased significantly th body weight in sarcoma-180 cells transplanted mice. 6. NSS dereased significantly the tumor weight in sarcoma-180 cells transplanted mice. 7. NSS prolonged significantly the survival time in sarcoma-180 cells transplanted mice.

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Ginkgo biloba Leaf Extract Regulates Cell Proliferation and Gastric Cancer Cell Death

  • Kim, Da Hyun;Yang, Eun Ju;Lee, JinAh;Chang, Jeong Hyun
    • 대한의생명과학회지
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    • 제28권2호
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    • pp.92-100
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    • 2022
  • Ginkgo biloba Leaf Extract (GBE) is an extract from leaves of the Ginkgo biloba tree, widely used as a health supplement. GBE can inhibit the proliferation of several types of tumor cell. Although it is known to have anti-cancer effects in breast cancer and skin cancer, research related to gastric cancer is still insufficient. Based on results showing anti-cancer effects on solid cancer, we aimed to determine whether GBE has similar effects on gastric cancer. In this study, the anti-cancer effect of GBE in gastric adenocarcinoma was investigated by confirming the cell proliferation inhibitory effect of AGS cells. We also evaluated whether GBE regulates expression of the tumor suppressor protein p53 and Rb. GBE has apoptotic effects on AGS cells that were confirmed by changes in anti-apoptosis protein Bcl-2, Bcl-xl and pro-apoptosis protein Bax levels. Wound healing and cell migration were also decreased by treatment with GBE. Furthermore, we verified the effects of GBE on mitogenic signaling by investigating AKT target gene expression levels and revealed downregulated Sod2 and Bcl6 expression. We also confirmed that expression of inflammation-related genes decreased in a time-dependent manner. These results indicate that GBE has an anti-cancer effect on human gastric cancer cell lines. Further research on the mechanism of the anti-cancer effect will serve as basic data for possible anti-cancer drug development.

Tumor Cell Proliferation Inhibitory and Antioxidative Activities of Spore Forming Lactic Acid Bacteria (포자생성 유산균의 종양세포 증식 억제 활성과 지방산 산화 억제 활성)

  • 변정열;윤영호
    • Journal of Dairy Science and Biotechnology
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    • 제22권2호
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    • pp.99-106
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    • 2004
  • 포자형성 유산균주에 대하여 종양세포에 대한 증식 억제 활성과 항산화 활성 및 세포내 glutathione 함유율을 측정하였다. 종양세포에 대한 억제활성은 균주에 따라 큰 차이를 나타내었고 Bacillus coagulans KTCC 3675는 높은 수준의 특이한 수준의 억제 활성을 나타내었고 human lymphoma cell NCLH-1299에 대한 억제 활성은 미약한 수준인 것으로 확인되었다. TBA 방법에 의한 linoleic acid에 대한 항산화 활성은 5~25% 정도의 항산화 활성을 보였고 특별히 높은 수준의 항산화 활성을 보인균주는 Bacillus coagulans KTCC 625, Bacillus coagulans KTCC 1015 및 Lactobacillus sporogens CU 815인 것으로 확인되었다. 포자형성 유산균체 추출액의 linoleic acid과산화 억제 활성과 세포내 glutathione함유율과의 상관계수는 0.78로서 고도의 유의성이 인정되는 상관계수를 나타내었다.

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Expression, Purification, and Biological Characterization of The Amino-Terminal Fragment of Urokinase in Pichia pastoris

  • Li, Jianping;Lin, Yuli;Zhuang, Hongqin;Hua, Zi-Chun
    • Journal of Microbiology and Biotechnology
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    • 제23권9호
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    • pp.1197-1205
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    • 2013
  • Urokinase (uPA) and its receptor (uPAR) play an important role in tumor growth and metastasis. Targeting the excessive activation of this system as well as the proliferation of the tumor vascular endothelial cell would be expected to prevent tumor neovasculature and halt the tumor development. In this regard, the amino-terminal fragment (ATF) of urokinase has been confirmed as effective to inhibit the proliferation, migration, and invasiveness of cancer cells via interrupting the interaction of uPA and uPAR. Previous studies indicated that ATF expressed in Escherichia coli was mainly contained in inclusion bodies and also lacked posttranslational modifications. In this study, the biologically active and soluble ATF was cloned and expressed in Pichia pastoris. The recombinant protein was purified to be homogenous and confirmed to be biologically active. The yield of the active ATF was about 30 mg/l of the P. pastoris culture medium. The recombinant ATF (rATF) could efficiently inhibit angiogenesis, endothelial cell migration, and tumor cell invasion in vitro. Furthermore, it could inhibit in vivo xenograft tumor growth and prolong the survival of tumor-bearing mice significantly by competing with uPA for binding to cell surfaces. Therefore, P. pastoris is a highly efficient and cost-effective expression system for large-scale production of biologically active rATFs for potential therapeutic application.