• 제목/요약/키워드: $NF-{\kappa}B$ activity

검색결과 722건 처리시간 0.035초

형질전환된 각질형성세포에서 생약추출물에 의한 $NF-{\kappa}B$ 활성화 억제효과 탐색 (Screening of Crude Drugs for the Inhibitory Effect on $NF-{\kappa}B$ Activation in Transfectant HaCaT Cells)

  • 안광석;김성기;문기영;한범수;강삼식;김영식
    • 생약학회지
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    • 제34권2호통권133호
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    • pp.156-160
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    • 2003
  • $NF-{\kappa}B$ (nuclear factor-kappa B) plays a particularly central role in epidermal biology. It has been established that ultraviolet radiation (UVR) is one of the mechanisms to induce the activation of $NF-{\kappa}B$ in human skin. We previously demonstrated that melanogenic inhibitors may act through the inhibition of $NF-{\kappa}B$ activation in keratinocytes. In order to find another type of melanogenic inhibitors of $NF-{\kappa}B$ activation, various kinds of the extracts from crude drugs $(30\;{\mu}g/ml)$ were preincubated with transfectant HaCaT cells for 3 hrs and then UVR $(60\;mj/cm^2)$ was irradiated. UVR-exposed cells were incubated for another 6 hrs to measure the $NF-{\kappa}B$ activity. $NF-{\kappa}B$ activation was measured with the secreatory alkaline phosphates (SEAP) reporter gene assay using a fluorescence detection method. Among natural products, Lycium chinense, Acanthopanax senticosus, Angelica koreana, Kalopanax pictus and Asparagus cochinchinensis were the most potent inhibitors of $NF-{\kappa}B$ activation by UVR. These observations suggest that some crude drugs might act partially through the modulation of the synthesis of melanotrophic factors to decrease melanogenesis in keratinocytes.

Mangiferin inhibits tumor necrosis factor-α-induced matrix metalloproteinase-9 expression and cellular invasion by suppressing nuclear factor-κB activity

  • Dilshara, Matharage Gayani;Kang, Chang-Hee;Choi, Yung Hyun;Kim, Gi-Young
    • BMB Reports
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    • 제48권10호
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    • pp.559-564
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    • 2015
  • We investigated the effects of mangiferin on the expression and activity of metalloproteinase (MMP)-9 and the invasion of tumor necrosis factor (TNF)-$\alpha$-stimulated human LNCaP prostate carcinoma cells. Reverse-transcription polymerase chain reaction (RT-PCR) and western blot analysis showed that mangiferin significantly reversed TNF-$\alpha$-induced mRNA and protein expression of MMP-9 expression. Zymography data confirmed that stimulation of cells with TNF-$\alpha$ significantly increased MMP-9 activity. However, mangiferin substantially reduced the TNF-$\alpha$-induced activity of MMP-9. Additionally, a matrigel invasion assay showed that mangiferin significantly reduced TNF-$\alpha$-induced invasion of LNCaP cells. Compared to untreated controls, TNF-$\alpha$-stimulated LNCaP cells showed a significant increase in nuclear factor-${\kappa}B$ (NF-${\kappa}B$) luciferase activity. However, mangiferin treatment markedly decreased TNF-$\alpha$-induced NF-${\kappa}B$ luciferase activity. Furthermore, mangiferin suppressed nuclear translocation of the NF-${\kappa}B$ subunits p65 and p50. Collectively, our results indicate that mangiferin is a potential anti-invasive agent that acts by suppressing NF-${\kappa}B$-mediated MMP-9 expression.

폐상피세포에서 Dexamethasone에 의한 NF-${\kappa}B$ Transactivation 억제기전에 관한 연구 (Inhibitory Mechanism on NF-${\kappa}B$ Transactivation by Dexamethasone in Pulmonary Epithelial Cells)

  • 이계영;김윤섭;고미혜;박재석;지영구;김건열;곽상준
    • Tuberculosis and Respiratory Diseases
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    • 제48권5호
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    • pp.682-698
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    • 2000
  • Glucocorticoid receptor (GR) functions as a suppressor of inflammation by inhibiting the expression of many cytokine genes activated by NF-${\kappa}B$. The goal of this study is to investigate the mechanism by which GR repress NF-${\kappa}B$ activation in lung epithelial cells. We used A549 and BEAS-2B lung epithelia! cell lines. Using Ig$G{\kappa}$-NF-${\kappa}B$ luciferase reporter gene construct, we found that dexamethasone significantly suppressed TNF-$\alpha$-induced NF-${\kappa}B$ activation and the overexpression of GR showed dose-dependent reduction of TNF-$\alpha$-induced NF-${\kappa}B$ activity in both cell lines. However, DNA binding of NF-${\kappa}B$ induced by TNF-$\alpha$ in electromobility shift assay was not inhibited by dexamethasone. Super shift assay with anti-p65 antibody demonstrated the existence of p65 in NF-${\kappa}B$ complex induced by $\alpha$ Western blot showed that $I{\kappa}B{\alpha}$ degradation induced by TNF-$\alpha$ was not affected by dexamethasone and $I{\kappa}B{\kappa}$ was not induced by dexamethasone, neither. To evaluate p65 specific transactivation, we adopted co-transfection study of Gal4-p65TA1 or TA2 fusion protein expression system together with 5xGal4-luciferase vector. Co-transfection of GR with Gal4-p65TA1 or TA2 repressed luciferase activity profoundly to the level of 10-20% of p65TA1- or TA2-induced transcriptional activity. And this transrepressional effect was abolished by co-transfection of CBP of SRC-1 expression vectors. These results suggest that GR-mediated transrepression of NF-${\kappa}B$ in lung epithelial cells is through competing for binding to limiting amounts of transcriptional coactivators, CBP or SRC-1.

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Gamma Irradiation Up-regulates Expression of B Cell Differentiation Molecule CD23 by NF-κB Activation

  • Rho, Hyun-Sook;Park, Soon-Suk;Lee, Choong-Eun
    • BMB Reports
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    • 제37권4호
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    • pp.507-514
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    • 2004
  • Gamma irradiation ($\gamma$-IR) is reported to have diverse effects on immune cell apoptosis, survival and differentiation. In the present study, the immunomodulatory effect of a low dose $\gamma$-IR (5~10 Gy) was investigated, focusing on the role of NF-${\kappa}B$ in the induction of the B cell differentiation molecule, CD23/FceRII. In the human B cell line Ramos, $\gamma$-IR not only induced CD23 expression, but also augmented the IL-4-induced surface CD23 levels. While $\gamma$-IR did not cause STAT6 activation in these cells, it did induce both DNA binding and the transcriptional activity of NF-${\kappa}B$ in the $I{\kappa}B$ degradation-dependent manner. It was subsequently found that different NF-${\kappa}B$ regulating signals modulated the $\gamma$-IR-or IL-4-induced CD23 expression. Inhibitors of NF-${\kappa}B$ activation, such as PDTC and MG132, suppressed the $\gamma$-IR-mediated CD23 expression. In contrast, Ras, which potentiates $\gamma$-IR-induced NF-${\kappa}B$ activity in these cells, further augmented the $\gamma$-IR- or IL-4-induced CD23 levels, The induction of NF-${\kappa}B$ activation and the subsequent up-regulation of CD23 expression by $\gamma$-IR were also observed in monocytic cells. These results suggest that $\gamma$-IR, at specific dosages, can modulate immune cell differentiation through the activation of NF-${\kappa}B$, and this potentially affects the immune inflammatory response that is mediated by cytokines.

Acetylshikonin Inhibits Human Pancreatic PANC-1 Cancer Cell Proliferation by Suppressing the NF-κB Activity

  • Cho, Seok-Cheol;Choi, Bu Young
    • Biomolecules & Therapeutics
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    • 제23권5호
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    • pp.428-433
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    • 2015
  • Acetylshikonin, a natural naphthoquinone derivative compound, has been used for treatment of inflammation and cancer. In the present study, we have investigated whether acetylshikonin could regulate the NF-${\kappa}B$ signaling pathway, thereby leading to suppression of tumorigenesis. We observed that acetylshikonin significantly reduced proliferation of several cancer cell lines, including human pancreatic PANC-1 cancer cells. In addition, acetylshikonin inhibited phorbol 12-myristate 13-acetate (PMA) or tumor necrosis-${\alpha}$ (TNF-${\alpha}$)-induced NF-${\kappa}B$ reporter activity. Proteome cytokine array and real-time RT-PCR results illustrated that acetylshikonin inhibition of PMA-induced production of cytokines was mediated at the transcriptional level and it was associated with suppression of NF-${\kappa}B$ activity and matrix metalloprotenases. Finally, we observed that an exposure of acetylshikonin significantly inhibited the anchorage-independent growth of PANC-1 cells. Together, our results indicate that acetylshikonin could serve as a promising therapeutic agent for future treatment of pancreatic cancer.

Ginsenoside compound K inhibits nuclear factor-kappa B by targeting Annexin A2

  • Wang, Yu-Shi;Zhu, Hongyan;Li, He;Li, Yang;Zhao, Bing;Jin, Ying-Hua
    • Journal of Ginseng Research
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    • 제43권3호
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    • pp.452-459
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    • 2019
  • Background: Ginsenoside compound K(C-K), a major metabolite of ginsenoside, exhibits anticancer activity in various cancer cells and animal models. A cell signaling study has shown that C-K inhibited nuclear factor-kappa B ($NF-{\kappa}B$) pathway in human astroglial cells and liver cancer cells. However, the molecular targets of C-K and the initiating events were not elucidated. Methods: Interaction between C-K and Annexin A2 was determined by molecular docking and thermal shift assay. HepG2 cells were treated with C-K, followed by a luciferase reporter assay for $NF-{\kappa}B$, immunofluorescence imaging for the subcellular localization of Annexin A2 and $NF-{\kappa}B$ p50 subunit, coimmunoprecipitation of Annexin A2 and $NF-{\kappa}B$ p50 subunit, and both cell viability assay and plate clone formation assay to determine the cell viability. Results: Both molecular docking and thermal shift assay positively confirmed the interaction between Annexin A2 and C-K. This interaction prevented the interaction between Annexin A2 and $NF-{\kappa}B$ p50 subunit and their nuclear colocalization, which attenuated the activation of $NF-{\kappa}B$ and the expression of its downstream genes, followed by the activation of caspase 9 and 3. In addition, the overexpression of Annexin A2-K320A, a C-K binding-deficient mutant of Annexin A2, rendered cells to resist C-K treatment, indicating that C-K exerts its cytotoxic activity mainly by targeting Annexin A2. Conclusion: This study for the first time revealed a cellular target of C-K and the molecular mechanism for its anticancer activity.

크로만-2-카르복실산 N-헤테로아릴아마이드 유도체 합성 및 NF-${\kappa}B$ 저해 활성 (Synthesis and Inhibitory Activity on NF-${\kappa}B$ Activation of Chroman-2-carboxylic Acid N-Heteroarylamide Derivatives)

  • 이원희;곽재환;한상배;김영수;정재경;이희순
    • 약학회지
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    • 제56권3호
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    • pp.186-190
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    • 2012
  • Nuclear factor-${\kappa}B$ (NF-${\kappa}B$) has been considered as one of the major targets for therapeutic agents of diverse human diseases. In the previous studies, 6-hydroxy-7-methoxychroman-2-carboxylic acid N-phenylamide (KL-1156) and chroman-2-carboxylic acid N-(4-chlorophenyl)amide were identified as good inhibitors of NF-${\kappa}B$ activation. In this continuous study, we describe the synthesis and NF-${\kappa}B$ inhibitory activities of chroman derivatives containing N-heteroaryl groups for exploration of SAR (structure-activity relationship). In addition, inhibitory effects of cell proliferation are evaluated against human cancer cell lines (NCI-H23 and PC-3).

lipopolysaccharide로 자극된 대식세포에서 금앵자의 Nitric Oxide 생성 및 $NF-{\kappa}B$ 활성 억제 효과 (Inhibitory Effect of Rosa laevigata on Nitric Oxide Synthesis and $NF-{\kappa}B$ Activity in lipopolysaccharide-stimulated Macrophages)

  • 하현희;박순영;고우신;장정수;김영희
    • 동의생리병리학회지
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    • 제22권2호
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    • pp.385-389
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    • 2008
  • Nitric oxide (NO) has been suggested to play an important role in endotoxin-mediated shock and inflammation. In this study, we investigated the effect of Rosa laevigata Michx. (Rosaceae) on the production of NO and the molecular mechanism of its action. Rosa laevigata inhibited NO generation and iNOS expression in LPS-stimulated murine macrophages. Activity of nuclear $factor{-\kappa}B\;(NF{-\kappa}B)$ and the degradation of $I{\kappa}B-{\alpha}$ were suppressed by Rosa laevigata. Furthermore, extracellular signal-stimulated kinase (ERK), which is known to be involved in $NF{-\kappa}B$ activation, is inhibited by Rosa laevigata. These results suggest that Rosa laevigata could exert its anti-inflammatory actions by suppressing the synthesis of NO through inhibition of $NF{-\kappa}B$ activity.

폐상피세포에서 Triptolide에 의한 NF-${\kappa}B$ 의존성 IL-8 유전자 전사활성 억제기전 (Triptolide-induced Transrepression of IL-8 NF-${\kappa}B$ in Lung Epithelial Cells)

  • 지영구;김윤섭;윤세영;김용호;최은경;박재석;김건열;채기남;곽상준;이계영
    • Tuberculosis and Respiratory Diseases
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    • 제50권1호
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    • pp.52-66
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    • 2001
  • 연구배경 : 폐상피세포가 능동적으로 IL-8을 분비한다는 것은 주지의 사실이다. NF-${\kappa}B$는 IL-8 발현 조절에 있어서 가장 중요한 역할을 담당하는 전사인자이다. Triptolide는 최근 밝혀진 NF-${\kappa}B$ 억제제로서 중국한약제인 뇌공등 (Tripterygium Wilfordii)에서 추출된약제이다. 연자들은 새로운 NF-${\kappa}B$ 억제제인 triptolide가 폐상피세포에서 NF-${\kappa}B$ 의존성 IL-8 유전자의triptolide가 염증성 폐질환에서 새로운 치료제로서의 가능성을 확인하기 위하여 본 연구를 시행하였다. 방법 : 폐상피세포로서 A549 사용하였고 triptolide는 미국의 Pharamagenesis(Palo Alto, CA)사로부터 제공받았다. NF-${\kappa}B$ 활성유도물질로는 IL-$1{\beta}$(R&D)와 PMA(Sigma)를 이용하였다. IL-8 유전자의 발현은 RT-PCR과 ELISA를 이용하여 측정 하였다. NF-${\kappa}B$의존성 IL-8 유전자의 전사활성을 평가하기 위하여는 IL-8 NF-${\kappa}B$ luciferase construct를 안정적으로 유전자주입한 A549 IL-8 NF-${\kappa}B$ luciferase 세포주를 제조해 사용하였고 NF-${\kappa}B$ DNA 결합은 electromobility shift assay(EMSA)를 이용하였다. p65 전사활성을 assay하기 위해서는 Gal4-p65 fusion protein expression system을 유전자주입과 luciferase assay를 통하여 시행하였다. Transcriptional coactivator의 역할을 규명 하가 위하여서는 CBP(CREB-binding protein)와 SRC-1(steroid receptor coactivator-1) 발현 벡터를 유전자 주입하고 luciferase assay를 이용하여 확인하였다. 결과 : Luciferase assay로 triptolide가 PMA와 IL-$1{\beta}$자극에 의한 IL-8 NF-${\kappa}B$ 활성을 의미있게 감소시킴을 확인하였다. IL-8 ELISA와 RT-PCR로 triptolide가 PMA와 IL-$1{\beta}$ 자극에 의해 유도되는 IL-8 발현을 각각 단백질과 mRNA 수준에서 억제함을 관찰하였다. Triptolide가 PMA와 IL-$1{\beta}$에 의한 IL-8 NF-${\kappa}B$의 전사활성을 억제시킨 반면 EMSA와 $I{\kappa}B{\alpha}$ Western blot을 이용한 실험에서는 triptolide가 NF-${\kappa}B$ DNA 결합과 $I{\kappa}B{\alpha}$의 분해에 전혀 영향을 미치지 못함을 확인하였다. 이러한 전사활성 억제와 DNA 결합 간의 불일치의 원인으로서는 DNA 결합 이후에 발생하는 핵내 에서의 transactivation에 triptolide가 영향을 미치리라고 생각되어 p65 transactivation study를 Gal4-p65T A(p65의 transactivation domain) fusion protein 발현 시스템과 luciferase assay를 이용하여 시행한 결과 triptolide가 p65 transactivation을 억제함으로써 NF-${\kappa}B$를 억제함을 확인하였다. 그러나 CBP나 SRC-1과 같은 coactivator의 역할을 규명하기 위한 유전자주입 실험에서 triptolide에 의한 p65 transactivation 억제에 대해 CBP나 SRC-1의 과발현이 별다른 영향을 미치지 못하였다. 결론 : Triptolide는 폐상피세포에서 NF-${\kappa}B$ 의존성 IL-8 유전자의 전사활성을 억제하고 그 기전은 $I{\kappa}B{\alpha}$ 경로가 아닌 핵내에서의 p65 transactivation 억제에 의해 발생하며 이에는 CBP나 SRC-1과 같은 coactivator가 관여하지 않음을 확인하였다.

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Rifampicin Inhibits the LPS-induced Expression of Toll-like Receptor 2 via the Suppression of NF-${\kappa}B$ DNA-binding Activity in RAW 264.7 Cells

  • Kim, Seong-Keun;Kim, Young-Mi;Yeum, Chung-Eun;Jin, Song-Hyo;Chae, Gue-Tae;Lee, Seong-Beom
    • The Korean Journal of Physiology and Pharmacology
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    • 제13권6호
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    • pp.475-482
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    • 2009
  • Rifampicin is a macrocyclic antibiotic which is used extensively for treatment against Mycobacterium tuberculosis and other mycobacterial infections. Recently, a number of studies have focused on the immune-regulatory effects of rifampicin. Therefore, we hypothesized that rifampicin may influence the TLR2 expression in LPS-activated RAW 264.7 cells. In this study, we determined that rifampicin suppresses LPS-induced TLR2 mRNA expression. The down-regulation of TLR2 expression coincided with decreased production of TNF-$\alpha$ Since NF-${\kappa}B$ is a major transcription factor that regulates genes for TLR2 and TNF-$\alpha$, we examined the effect of rifampicin on the LPS-induced NF-${\kappa}B$ activation. Rifampicin inhibited NF-${\kappa}B$ DNA-binding activity in LPS-activated RAW 264.7 cells, while it did not affect IKK$\alpha/\beta$ activity. However, rifampicin slightly inhibited the nuclear translocation of NF-${\kappa}B$ p65. In addition, rifampicin increased physical interaction between pregnane X receptor, a receptor for rifampicin, and NF-${\kappa}B$ p65, suggesting pregnane X receptor interferes with NF-${\kappa}B$ binding to DNA. Taken together, our results demonstrate that rifampicin inhibits LPS-induced TLR2 expression, at least in part, via the suppression of NF-${\kappa}B$ DNA-binding activity in RAW 264.7 cells. Thus, the present results suggest that the rifampicin-mediated inhibition of TLR2 via the suppression of NF-${\kappa}B$ DNA-binding activity may be a novel mechanism of the immune-suppressive effects of rifampicin.