• Title/Summary/Keyword: tumor suppressors

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MiR-186 Inhibited Migration of NSCLC via Targeting cdc42 and Effecting EMT Process

  • Dong, Ying;Jin, Xintian;Sun, Zhiqiang;Zhao, Yueming;Song, Xianjing
    • Molecules and Cells
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    • v.40 no.3
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    • pp.195-201
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    • 2017
  • In this study, qRT-PCR was employed to identify that miR-186 expression level in NSCLC tissues are highly associated with lymph node metastasis. In addition, through the application of western blotting, luciferase assay and qRT-PCR, it was found that miR-186 targeted 3'UTR of cdc42 mRNA and down-regulated cdc42 protein level in a post-transcriptional manner. Transwell assay indicated that cdc42 partially reversed the effect of miR-186 mimics. Besides, miR-186 was proved to regulate EMT by influencing biomarkers of this process and cell adhesion ability. Thus, miR-186 is a potential target for NSCLC therapy. miR-186 is proposed to be one of tumor-suppressors and may serve as a therapeutic target in NSCLC treatment.

JNK Regulation of Oncogenesis

  • Heasley, Lynn E.;Han, Sun-Young
    • Molecules and Cells
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    • v.21 no.2
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    • pp.167-173
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    • 2006
  • The literature provides strong precedent for both pro-tumorigenic and tumor suppressor roles for the c-Jun N-terminal kinases (JNKs) in the setting of oncogenesis. Clearly, JNKs are activated by numerous oncogenes and growth factors and the literature documents a role for these MAP kinases in cell proliferation and transformation. By contrast, JNKs mediate signals from diverse stimuli that result in cell death or differentiation and a role for JNKs as tumor suppressors has emerged. This enigmatic nature of the JNKs in the setting of oncogenesis is considered herein. Further illumination of the complex and context-dependent functions of the JNKs in cancer cells is of obvious importance for the rational use of small molecule JNK inhibitors as therapeutics.

Convergence of Cancer Metabolism and Immunity: an Overview

  • Van Dang, Chi;Kim, Jung-whan
    • Biomolecules & Therapeutics
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    • v.26 no.1
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    • pp.4-9
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    • 2018
  • Cancer metabolism as a field of research was founded almost 100 years ago by Otto Warburg, who described the propensity for cancers to convert glucose to lactate despite the presence of oxygen, which in yeast diminishes glycolytic metabolism known as the Pasteur effect. In the past 20 years, the resurgence of interest in cancer metabolism provided significant insights into processes involved in maintenance metabolism of non-proliferating cells and proliferative metabolism, which is regulated by proto-oncogenes and tumor suppressors in normal proliferating cells. In cancer cells, depending on the driving oncogenic event, metabolism is re-wired for nutrient import, redox homeostasis, protein quality control, and biosynthesis to support cell growth and division. In general, resting cells rely on oxidative metabolism, while proliferating cells rewire metabolism toward glycolysis, which favors many biosynthetic pathways for proliferation. Oncogenes such as MYC, BRAF, KRAS, and PI3K have been documented to rewire metabolism in favor of proliferation. These cell intrinsic mechanisms, however, are insufficient to drive tumorigenesis because immune surveillance continuously seeks to destroy neo-antigenic tumor cells. In this regard, evasion of cancer cells from immunity involves checkpoints that blunt cytotoxic T cells, which are also attenuated by the metabolic tumor microenvironment, which is rich in immuno-modulating metabolites such as lactate, 2-hydroxyglutarate, kynurenine, and the proton (low pH). As such, a full understanding of tumor metabolism requires an appreciation of the convergence of cancer cell intrinsic metabolism and that of the tumor microenvironment including stromal and immune cells.

DNA binding partners of YAP/TAZ

  • Kim, Min-Kyu;Jang, Ju-Won;Bae, Suk-Chul
    • BMB Reports
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    • v.51 no.3
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    • pp.126-133
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    • 2018
  • Hippo signaling plays critical roles in regulation of tissue homeostasis, organ size, and tumorigenesis by inhibiting YES-associated protein (YAP) and PDZ-binding protein TAZ through MST1/2 and LATS1/2 pathway. It is also engaged in cross-talk with various other signaling pathways, including WNT, BMPs, Notch, GPCRs, and Hedgehog to further modulate activities of YAP/TAZ. Because YAP and TAZ are transcriptional coactivators that lack DNA-binding activity, both proteins must interact with DNA-binding transcription factors to regulate target gene's expression. To activate target genes involved in cell proliferation, TEAD family members are major DNA-binding partners of YAP/TAZ. Accordingly, YAP/TAZ were originally classified as oncogenes. However, YAP might also play tumor-suppressing role. For example, YAP can bind to DNA-binding tumor suppressors including RUNXs and p73. Thus, YAP might act either as an oncogene or tumor suppressor depending on its binding partners. Here, we summarize roles of YAP depending on its DNA-binding partners and discuss context-dependent functions of YAP/TAZ.

MicroRNA Analysis in Normal Human Oral Keratinocytes and YD-38 Human Oral Cancer Cells

  • Kim, Hye-Ryun;Park, Eu-Teum;Cho, Kwang-Hee;Kim, Do-Kyung
    • International Journal of Oral Biology
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    • v.36 no.4
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    • pp.179-185
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    • 2011
  • MicroRNAs (miRNAs) are small non-coding RNAs that mediate gene expression at the post-transcriptional level by degrading or repressing targeted mRNAs. These molecules are about 21-25 nucleotides in length and exert their effects by binding to partially complementary sites in mRNAs, predominantly in the 3'-untranslated region (3'-UTR). Recent evidence has demonstrated that miRNAs can function as oncogenes or tumor suppressors through the modulation of multiple oncogenic cellular processes in cancer development, including initiation, cell proliferation, apoptosis, invasion and metastasis. In our present study, we examined the expression profile of miRNAs related to oral cancer cell growth inhibition using normal human oral keratinocytes (NHOK) and YD-38 human oral cancer cells. By miRNA microassay analysis, 40 and 31 miRNAs among the 1,769 examined were found to be up- and down-regulated in YD-38 cells compared with NHOK cells, respectively. Using qRT-PCR analysis, the expression levels of miR-30a and miR-1246 were found to be increased in YD-38 cells compared with NHOK cells, whereas miR-203 and miR-125a were observed to be decreased. Importantly, the overexpression of miR-203 and miR-125a significantly inhibited the growth of YD-38 cells. This finding and the microarray data indicate the involvement of specific miRNAs in the development and progression of oral cancer.

SOCS1 counteracts ROS-mediated survival signals and promotes apoptosis by modulating cell cycle to increase radiosensitivity of colorectal cancer cells

  • Ryu, Ji-Yoon;Oh, Jiyoung;Kim, Su-Min;Kim, Won-Gi;Jeong, Hana;Ahn, Shin-Ae;Kim, Seol-Hee;Jang, Ji-Young;Yoo, Byong Chul;Kim, Chul Woo;Lee, Choong-Eun
    • BMB Reports
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    • v.55 no.4
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    • pp.198-203
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    • 2022
  • As negative regulators of cytokine signaling pathways, suppressors of cytokine signaling (SOCS) proteins have been reported to possess both pro-tumor and anti-tumor functions. Our recent studies have demonstrated suppressive effects of SOCS1 on epithelial to mesenchymal signaling in colorectal cancer cells in response to fractionated ionizing radiation or oxidative stress. The objective of the present study was to determine the radiosensitizing action of SOCS1 as an anti-tumor mechanism in colorectal cancer cell model. In HCT116 cells exposed to ionizing radiation, SOCS1 over-expression shifted cell cycle arrest from G2/M to G1 and promoted radiation-induced apoptosis in a p53-dependent manner with down-regulation of cyclin B and up-regulation of p21. On the other hand, SOCS1 knock-down resulted in a reduced apoptosis with a decrease in G1 arrest. The regulatory action of SOCS1 on the radiation response was mediated by inhibition of radiation-induced Jak3/STAT3 and Erk activities, thereby blocking G1 to S transition. Radiation-induced early ROS signal was responsible for the activation of Jak3/Erk/STAT3 that led to cell survival response. Our data collectively indicate that SOCS1 can promote radiosensitivity of colorectal cancer cells by counteracting ROS-mediated survival signal, thereby blocking cell cycle progression from G1 to S. The resulting increase in G1 arrest with p53 activation then contributes to the promotion of apoptotic response upon radiation. Thus, induction of SOCS1 expression may increase therapeutic efficacy of radiation in tumors with low SOCS1 levels.

The Role of Hippo Pathway in Cancer Stem Cell Biology

  • Park, Jae Hyung;Shin, Ji Eun;Park, Hyun Woo
    • Molecules and Cells
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    • v.41 no.2
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    • pp.83-92
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    • 2018
  • The biological significance and deregulation of the Hippo pathway during organ growth and tumorigenesis have received a surge of interest in the past decade. The Hippo pathway core kinases, MST1/2 and LATS1/2, are tumor suppressors that inhibit the oncogenic nuclear function of YAP/TAZ and TEAD. In addition to earlier studies that highlight the role of Hippo pathway in organ size control, cell proliferation, and tumor development, recent evidence demonstrates its critical role in cancer stem cell biology, including EMT, drug resistance, and self-renewal. Here we provide a brief overview of the regulatory mechanisms of the Hippo pathway, its role in cancer stem cell biology, and promising therapeutic interventions.

Tumor-Suppression Mechanisms of Protein Tyrosine Phosphatase O and Clinical Applications

  • Kang, Man-Man;Shan, Shun-Lin;Wen, Xu-Yang;Shan, Hu-Sheng;Wang, Zheng-Jun
    • Asian Pacific Journal of Cancer Prevention
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    • v.16 no.15
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    • pp.6215-6223
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    • 2015
  • Tyrosine phosphorylation plays an important role in regulating human physiological and pathological processes. Functional stabilization of tyrosine phosphorylation largely contributes to the balanced, coordinated regulation of protein tyrosine kinases (PTKs) and protein tyrosine phosphatases (PTPs). Research has revealed PTPs play an important suppressive role in carcinogenesis and progression by reversing oncoprotein functions. Receptor-type protein tyrosine phosphatase O (PTPRO) as one member of the PTPs family has also been identified to have some roles in tumor development. Some reports have shown PTPRO over-expression in tumors can not only inhibit the frequency of tumor cell division and induce tumor cell death, but also suppress migration. However, the tumor-suppression mechanisms are very complex and understanding is incomplete, which in some degree blocks the further development of PTPRO. Hence, in order to resolve this problem, we here have summarized research findings to draw meaningful conclusions. We found tumor-suppression mechanisms of PTPRO to be diverse, such as controlling G0/G1 of the tumor cell proliferation cycle, inhibiting substrate phosphorylation, down-regulating transcription activators and other activities. In clinical anticancer efforts, expression level of PTPRO in tumors can not only serve as a biomarker to monitor the prognosis of patients, but act as an epigenetic biomarker for noninvasive diagnosis. In addition, the re-activation of PTPRO in tumor tissues, not only can induce tumor volume reduction, but also enhance the susceptibility to chemotherapy drugs. So, we can propose that these research findings of PTPRO will not only support new study ideas and directions for other tumor-suppressors, importantly, but also supply a theoretical basis for researching new molecular targeting agents in the future.

Pathological Implications of Cx43 Down-regulation in Human Colon Cancer

  • Ismail, Rehana;Rashid, Rabiya;Andrabi, Khurshid;Parray, Fazl Q.;Besina, Syed;Shah, Mohd Amin;Hussain, Mahboob Ul
    • Asian Pacific Journal of Cancer Prevention
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    • v.15 no.7
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    • pp.2987-2991
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    • 2014
  • Connexin 43 is an important gap junction protein in vertebrates and is known for its tumor suppressive properties. Cx43 is abundantly expressed in the human intestinal epithelial cells and muscularis mucosae. To explore the role of Cx43 in the genesis of human colon cancer, we performed the expression analysis of Cx43 in 80 cases of histopathologically confirmed and clinically diagnosed human colon cancer samples and adjacent control tissue and assessed correlations with clinicopathological variables. Western blotting using anti-Cx43 antibody indicated that the expression of Cx43 was significantly down regulated (75%) in the cancer samples as compared to the adjacent control samples. Moreover, immunohistochemical analysis of the tissue samples confirmed the down regulation of the Cx43 in the intestinal epithelial cells. Cx43 down regulation showed significant association (p<0.05) with the histological type and tumor invasion properties of the cancer. Our data demonstrated that loss of Cx43 may be an important event in colon carcinogenesis and tumor progression, providing significant insights about the tumor suppressive properties of the Cx43 and its potential as a diagnostic marker for colon cancer.

The Effects of Bee Venom Therapy on Melanoma of C57BL Mouse (봉독약침(蜂毒藥鍼)이 C57BL mouse의 흑색종(黑色腫)에 미치는 영향)

  • Oh, Gi-Nam;Lee, Jae-Dong;Park, Dong-seok
    • Journal of Acupuncture Research
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    • v.19 no.2
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    • pp.78-91
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    • 2002
  • Objective : This study was designed to investigate the anti-cancer effects of bee venom on melanoma in C57BL mice. Materials and Methods : For the induction of melanoma, C57BL mice were treated by DMBA(7, 12-dimethylbenz[a]anthracene). Each group of C57BL mouse was treated with DMBA $50{\mu}g$, $75{\mu}g$, $100{\mu}g$ respectively once a week for 15 weeks. Tumor generation in each group of 10 mice was observed. Cumulative curves were showed in the density and frequency of skin tumor generation. To know the effects of pre-treatment of bee venom on tumor generation by DMBA treatment(frequency of tumor generation), Each group of C57BL mouse was pretreated and treated with bee venom $5{\mu}{\ell}$, $25{\mu}{\ell}$, $50{\mu}{\ell}$ respectively once a week for 3 weeks, whereafter each mouse was treated with DMBA $100{\mu}g$ once a week for 15 weeks. Results and Conclusion (1) There was chemotherapeutic effect, but not chemopreventive effect. (2) Cpp32 activity was increased by $50{\mu}{\ell}$ bee venom treatment. (3) Bee venom treatment inhibited expression of cell-cycle regulating, growth-promoting genes such as c-Jun, c-Fos, and Cyclin Dl, and increased tumor suppressors p53 and p21/Wafl. (4) Bee venom treatment activated expression of a representative apoptosis-inducing gene Bax.

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